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Diagnosis and Detection of Plant Virus and Viroid Diseases

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Abstract

Diagnosis / detection of virus and viroid diseases at the early stage of infection helps in further prevention of spread of the disease and also helps in routine screening. The use of one or more of the tests will help to detect infections before they become major problem. The diagnostic methods for plant virus and viroid diseases are being continuously improved. Virus diagnosis by bioassay on indicator hosts to prove the pathogenicity is well established but tedious and requires long time for symptom expression. Almost 50 years back outcherlony double diffusion technique was widely used for virus detection. In the recent years the most common detection method for viruses is ELISA which uses virus specific antibodies and is quite sensitive, reliable and quick. ELISA cannot be used for viroid disease detection since they lack specific encoded proteins. Therefore, viroid detection must rely on bioassays or by direct detection of the genomic viroid RNA. The most common method of molecular hybridization is the dot-blot hybridization technique and is being used widely in virus diagnosis in horticultural crops. Polymerase chain reaction (PCR) is universally practiced technology which is highly rapid, versatile, specific and sensitive molecular method that uses the nucleic acid of virus or viroid. DNA viruses use standard PCR and reverse transcriptase - PCR is for RNA viruses and viroids. Many forms of PCR viz., RT-PCR, Multiplex PCR, Taqman PCR, quantitative PCR, Immunocapture PCR, Competitive flourescence PCR etc., have been developed depending on virus-host combination. In 21st century DNA microarray technology is used for virus nucleic acid identification. Recently biosensors, rolling circle amplification, metagenomics and deep sequencing are also used for virus diagnosis. These advanced molecular tests for plant virus and viroid disease diagnosis would be highly useful at quarantine stations and also at disease diagnostic centers (DDCs). The application of recombinant DNA technology in plant virology has permitted using diagnostic methods based on the nucleotide sequences of the genome component of viruses. Among them molecular hybridization and polymerase chain reaction are used for virus and viroid diagnosis in field, lab and also in certification schemes.

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References

  • Abdullahi I, Ikotun T, Winter S, Thottappilly G, Atiri A (2001) Investigation on seed transmission of cucumber mosaic virus in cowpea. Afr Crop Sci J 9(4):677–684

    Google Scholar 

  • Abou-Jawdah Y, Sobh H, Cordahi N, Kawtharani H, Nemer G, Maxwell DP, Nakhla MK (2004) Immunodiagnosis of Prune dwarf virus using antiserum produced to its recombinant coat protein. J Virol Methods 121:31–38

    Article  PubMed  CAS  Google Scholar 

  • Acheche H, Fattouch S, M’hirsi S, Marzouki N, Marrakchi M (1999) Use of optimized PCR methods for the detection of GLRaV3: a closterovirus associated with grapevine leafroll in Tunisian grapevine plants. Plant Mol Biol Rep 17:31–42

    Article  CAS  Google Scholar 

  • Adams DB, Kuhn CW (1977) Seed transmission of peanut mottle virus. Phytopathology 67:1126–1129

    Article  Google Scholar 

  • Adams IP, Glover RH, Monger WA, Mumford R, Jackeviciene E, Navalinskiene M, Samuitiene M, Boonham N (2009) Next-generation sequencing and metagenomic analysis: a universal diagnostic tool in plant virology. Mol Plant Pathol 10:537–545

    Google Scholar 

  • Adkins S, Webb SE, Baker CA, Kousik CS (2008) Squash vein yellowing virus detection using nested polymerase chain reaction demonstrates that the weed Momordica charantia is a reservoir host. Plant Dis 92:1119–1123

    Article  CAS  Google Scholar 

  • Agindotan B, Perry KL (2008) Macroarray detection of eleven potato-infecting viruses and Potato spindle tuber viroid. Plant Dis 92:730–740

    Article  CAS  Google Scholar 

  • Agindotan B, Winter S, Lesemann B, Uwaifo A, Mignouna J, Hughes J, Thottappilly G (2006) Diversity of Banana streak—inducing viruses in Nigeria and Ghana: twice as many sources detected by immuno electron microscopy (IEM) than by TAS-ELISA or IC-PCR. Afr J Biotechnol 5:1194–1203

    CAS  Google Scholar 

  • Agindotan BO, Shiel PJ, Berger PH (2007) Simultaneous detection of potato viruses, PLRV, PVA, PVX and PVY from dormant potato tubers by TaqMan real-time RT-PCR. J Virol Methods 149:1–9

    Article  CAS  Google Scholar 

  • Agindoton B, Perry KL (2007) Macroarray detection of plant RNA viruses using randomly primed and amplified complementary DNAs from infected plants. Phytopathology 97:119–127

    Article  CAS  Google Scholar 

  • Aglave BA, Krishnareddy M, Patil FS, Andhale MS (2007) Molecular identification of a virus causing banana chlorosis disease from Marathwada region. Int Natl J Biotechnol Biochem 3:13–23

    Google Scholar 

  • Ahangaran A, Mohammadi GM, Habibi MK, Shahraeen N, Khezri S (2006) Rapid diagnosis of soybean mosaic virus N soybean by tissue-print immunoassay and DIBA in comparison to other serological methods. Commun Agric Appl Biol Sci 71(3 Pt B):1207–1212

    Google Scholar 

  • Ahangaran A, Mohammadi GM, Habibi MK, Khezri S, Shahraeen N (2009) Use of rapid serological and nucleic acid based methods for detecting Soybean mosaic virus. J Agric Sci Technol 11:91–97

    Google Scholar 

  • Ahlawat YS (2010) Diagnosis of plant viruses & allied pathogens. Studium Press (India), Pvt. Ltd., New Delhi, p 224

    Google Scholar 

  • Ahlawat YS, Pant RP (2003) Major virus and virus-like diseases of citrus in India, their diagnosis and management. Ann Rev Plant Pathol 2:447–474

    Google Scholar 

  • Ahlawat YS, Varma A, Pant RP, Shukla A, Lockhart BEL (1996) Partial Characterization of a badnavirus associated with citrus yellow mosaic disease in India. Thirteenth IOCV conference, Riverside, USA, pp 208–217

    Google Scholar 

  • Aiton MM, Harrison BD (1989) Monoclonal antibodies to Indian Cassava mosaic geminivirus (ICMV). Report of the Scottish crop research institute for 1988, p 175

    Google Scholar 

  • Akanda AM, Tsuno K, Wakimoto S (1991) Serological detection of four plant viruses in cucurbitaceous crops from Bangladesh. Ann Phytopathol Soc Jpn 57:499–505

    Article  Google Scholar 

  • Akinjogunla OJ, Taiwo MA, Kareem KT (2008) Immunological and molecular diagnostic methods for detection of viruses infecting cowpea (Vigna unquiculata). Afr J Biotechnol 7(13):2099–2103

    CAS  Google Scholar 

  • Alabi OJ, Kumar PL, Naidu RA (2008) Multiplex PCR method for the detection of African cassava mosaic virus and East African cassava mosaic Cameroon virus in cassava. J Virol Methods 154:111–120

    Article  PubMed  CAS  Google Scholar 

  • Ali A, Randles JW, John W, Hodgson RAJ (1998) Sensitive detection of Pea seed—borne and mosaic potyvirus by dot blot and tissue print hybridization assays. Aust J Agric Res 49:191–197

    Article  Google Scholar 

  • Ali MA, Winter S, Dafalla GA (2008) Tobacco streak virus infecting fababean (Vicia faba) reported for the first time. New Disease Reports, 17:17

    Google Scholar 

  • Alibi OJ, Ogbe FO, Bandyopadhyay R, Lava Kumar P, Dixon AGO, Hughes Jd, Naidu RA (2008) Alternate hosts of African cassava mosaic virus and East African cassava mosaic Cameron virus in Nigeria. Arch Virol 153:1743–1747

    Article  CAS  Google Scholar 

  • Al-Mrabeh A, Ziegler A, Cowan GH, Torrance L (2009) A fully recombinant ELISA using in vivo biotinylated antibody fragments for the detection of Potato leaf roll virus. J Virol Methods 159:200–205

    Article  PubMed  CAS  Google Scholar 

  • Alvarez AM (2004) Integrated approaches for detection of plant pathogenic bacteria and diagnosis of bacterial diseases. Annu Rev Phytopathol 42:339–366

    Article  PubMed  CAS  Google Scholar 

  • Alvarez M, Campbell RN (1978) Transmission and distribution of squash mosaic virus in seeds of cantaloupe. Phytopathology 68:257–263

    Article  Google Scholar 

  • Amayo R, Arinaitwe AB, Mukasa SB, Tusiime G, Kyamanywa S, Rubaihayo PR, Edema R (2012) Prevalence of viruses infecting cowpea in Uganda and their molecular detection. Afr J Biotechnol 11(77):14132–14139

    CAS  Google Scholar 

  • Anandhi J, Vijila C, Viswanath GS, Lokeswari TS (2007) Screening banana plants for banana bunchy top virus with primers specific to Indian isolates. J Plant Dis Prot 114:101–107

    CAS  Google Scholar 

  • Andayani WR, Sumardiyono YB, Hartono S, Yudono P (2011) Incidence of soybean mosaic disease in East Java Province. Agrivita 33(1):15–21

    Google Scholar 

  • Anfoka G, Haj Ahmad F, Abhary M, Hussein A (2009) Detection and molecular characterization of viruses associated with tomato yellow leaf curl disease in cucurbit crops in Jordan. Plant Pathol 58:754–762

    Article  CAS  Google Scholar 

  • Angly FE, Felts B, Breitbart M, Salamon P, Edwards RA, Carlson C, Chan AM, Haynes M, Kelley S, Liu H, Mahaffy JM, Mueller JE, Nulton J, Olson R, Parsons R, Rayhawk S, Suttle CA, Rohwer F (2006) The marine viromes of four oceanic regions. PLoS Biol 4:e368

    Article  PubMed  CAS  Google Scholar 

  • Anita K, Baranwal BK, Malathi VG, Pant RP, Ahlawat YS (2004) Banana streak virus from India and its detection by polymerase chain reaction. Indian J Biotechnol 3:409–413

    Google Scholar 

  • Anon (1983) First Inter-African symposium on rodents and grain-eating birds in agriculture in sylviculture and in the domain of public health. Report and recommendations, Inter-African Phytosanitary Council, Yaounde

    Google Scholar 

  • Anon (1984) Diseases of grain legumes. In: Rothamsted experimental station report for 1983. Harpenden, Herts, UK, pp 125–126

    Google Scholar 

  • Anon (2010) Biochip detects apple virus. In: Highlights in chemical technology. RSC Publishing, e-magazine. www.chemistryworld.org

  • Anthony Johnson AM, Saigopal DVR (2012) Mosaic disease of citrus—an emerging and endemic virus disease from India. In: Rao GP, Baranwal VK, Mandal B, Rishi N (eds) Recent trends in plant virology. Studium Press, LLC, pp 215–234

    Google Scholar 

  • Aramburu J, Crescenti A, Martì M (2002) Primera detecciòn de un aislado del TSWV en tomate que sobrepasa la resistancia conferida por el gen sw-5. XI Congreso de la Sociedad Espanola de Fitopatologia, 14–18 Octubre, 2002, Almeria, Spain

    Google Scholar 

  • Aritua V, Barg E, Adipala E, Gibson RW, Lesemann DE, Vetten HJ (2009) Host range, purification and genetic variability in sweet potato chlorotic fleck virus. Plant Dis 93:87–94

    Article  CAS  Google Scholar 

  • Ariyaratne I, Liyanage T (2002) Survey on incidences and severity of virus diseases of banana in Sri Lanka. Annals of the Sri Lanka Department of Agriculture 4: 245–254

    Google Scholar 

  • Arun Kumar N, Narasu ML, Zehr UB, Ravi KS (2008) Molecular characterization of tobacco streak virus causing soybean necrosis in India. Indian J Biotechnol 7:214–217

    Google Scholar 

  • Arya M, Baranwal VK, Ahlawat YS, Singh L (2006) RT-PCR detection and molecular characterization of Onion yellow dwarf virus associated with garlic and onion. Curr Sci 91:1230–1234

    CAS  Google Scholar 

  • Asensio M, Gorris MT, Sanz A, Camarasa E, Perez E, Carbonell EA, Cambra M (1995) Characterization and detection of plum pox virus using monoclonal antibodies. Acta Horticulturae 386:354–356

    Google Scholar 

  • Atzmon G, Van Oss H, Czosnek H (1998) PCR-Amplification of tomato yellow leaf curl virus (TYLCV) DNA from squashes of plants and whitefly vectors: application to the study of TYLCV acquisition and transmission. Eur J Plant Pathol 104:189–194

    Article  CAS  Google Scholar 

  • Avegelis A, Barba M (1986) Application of ELISA for indexing melon necrotic spot virus in melon seeds. Ann spermgitale Pathologia Vegerale, Rome 11:107–111

    Google Scholar 

  • Avegelis A, Katis N (1989) Identification of alfalfa mosaic virus in Greek alfalfa crops. J Phytopathol 125:231–237

    Article  Google Scholar 

  • Avijit R, Fayad A, Barthe G, Brlansky RH (2005) A multiplex polymerase chain reaction method for reliable, sensitive and simultaneous detection of multiple viruses in citrus trees. J Virol Methods 129:47–55

    Article  CAS  Google Scholar 

  • Avijit R, Ananthakrishnan G, Hartung JS, Brlansky RH (2010) Development and application of multiplex reverse transcription polymerase chain reaction assay for screening a global collection of Citrus tristeza virus isolates. Phytopathology 100:1077–1088

    Article  CAS  Google Scholar 

  • Awan AR, Haq IU, Babar ME, Nasir IA (2010) Molecular detection of Potato leaf roll polero virus through reverse transcription polymerase chain reaction in dormant potato tubers. Pak J Bot 42:3299–3306

    Google Scholar 

  • Babu B, Hegde V, Makesh Kumar T, Jeeva ML (2011) Characterization of the coat protein gene of Dasheen mosaic virus infecting Elephant foot yam. J Plant Pathol 93:199–203

    CAS  Google Scholar 

  • Bagherian SAA, AmidMotlagh MH, Izadapanah K (2009) A new sensitive method for detection of viroids. Iran J Virol 3(1):7–11

    Google Scholar 

  • Balamuralikrishnan M, Doraisamy S, Ganapathy T and Viswanathan R (2004) Comparison of antibody and genome based diagnostic techniques for sugarcane mosaic virus in sugarcane. Phytoparasitica 32: 52–56

    Google Scholar 

  • Ball EM (1973) Solid phase radioimmuno-assay for plant viruses. Virology 55:516–520

    Article  PubMed  CAS  Google Scholar 

  • Ball EM, Brakke MK (1968) Leaf-dip serology for electron microscopic identification of plant viruses. Virology 36:152–155

    Article  Google Scholar 

  • Banttari EE, Goodwin PH (1985) Detection of potato viruses S, X and Y by Enzyme-linked immunosorbent assay on nitrocellulose membranes (Dot-ELISA). Plant Dis 69:202–205

    Article  Google Scholar 

  • Banttari EE, Khurana SMP (1998) Serological procedures in plant virology. In: Khurana SMP (ed.) Pathological problems of economic crop plants and their management, Scientific Publishers, Jodhpur, pp 603–624

    Google Scholar 

  • Baranwal VK, Ahlawat YS (2008) Techniques in diagnosis of plant viruses. Studium Press LLC, Houston, pp 141–151

    Google Scholar 

  • Baranwal VK, Majumder S, Ahlawat YS, Singh RP (2003) Sodium sulphite yields improved DNA of higher stability for PCR detection of Citrus yellow mosaic virus from citrus leaves. J Virol Methods 112:153–156

    Article  PubMed  CAS  Google Scholar 

  • Baranwal VK, Majumder S, Ahlawat YS, Singh RP (2005) A novel approach for simultaneous detection of citrus yellow mosaic virus and citrus greening bacterium by multiplex polymerase chain reaction. Indian J Biotechnol 4:528–533

    CAS  Google Scholar 

  • Barba M, Hadidi A (2012) Microarray based detection and genotyping of Plumpox virus. In: Rao GP, Baranwal VK, Mandal B, Rishi N (eds) Recent trends in plant virology. Studium Press, LLC, pp 1–15, 483

    Google Scholar 

  • Barbara DJ, Morton A, Spence NJ, Miller A (1995) Rapid differentiation of closely related isolates of two plant viruses by polymerase chain reaction and restriction fragment length polymorphism analysis. J Virol Methods 55:121–131

    Article  PubMed  CAS  Google Scholar 

  • Barbarossa L, Savino V (2006) Sensitive and specific digoxigenin-labeled RNA probes for routine detection of Citrus tristeza virus by dot-blot hybridisation. J Phytopathol 154:329–335

    Article  CAS  Google Scholar 

  • Bar-Joseph M, Garnsey SM (1981) Enzyme-linked immunosorbent assay (ELISA): principles and applications for diagnosis of plant viruses. In: Maramoroch K, Harri KF (eds) Plant diseases and vectors, ecology and epidemiology. Academic Press, New York, pp 35–59, 368

    Google Scholar 

  • Bar-Joseph M, Garnsey SM, Gonsalves D, Moscovitz M, Purcifull DE, Clark MF, Loebenstein G (1979) The use of Enzyme linked immunosorbent assay for the detection of citrus tristeza virus. Phytopathology 69:190–194

    Article  Google Scholar 

  • Bar-Joseph M, Lee RF, Pappu HR (1995) The Closteroviruses. In: Singh RP, Singh US, Kohmoto K (eds) Pathogenesis and host-specificity in plant diseases, pp 65–85. Pergamon Press, Oxford

    Google Scholar 

  • Barker H, Webster KD, Reavy B (1993) Detection of potato virus Y in potato tubers: a comparison of polymerase chain reaction and Enzyme-linked immunosorbent assay. Potato Res 36:13–20

    Article  CAS  Google Scholar 

  • Bashir M, Hampton RO (1992) Biological characterization of pathotypes of blackeye cowpea mosaic and cowpea aphid-borne mosaic potyviruses. Phytopathology 82:1103 (abstract)

    Google Scholar 

  • Bashir M, Hampton RO (1993) Natural occurrence of 5 seed-borne cowpea viruses in Pakistan. Plant Dis 77:948–951

    Article  Google Scholar 

  • Bashir R, Javed F, Ahmed R, Mansoor S (2012) Use of rolling circle amplification for the identification of unknown components of Banana bunchytop virus from Pakistan. Pak J Life Soc Sci 10:1–7

    Google Scholar 

  • Benner HI, Hill JH, Durand DP (1990) Detection of soybean mosaic virus by Enzyme-linked fluorescent assay (ELFA). Seed Sci Technol 18:23–31

    Google Scholar 

  • Benscher D, Pappu SS, Niblett CL, Veron de Agudelo F, Morales F, Hodson E, Alvarez E, Acosta O, Lee RF (1996) A strain of Soybean mosaic virus infecting passiflora spp. in Columbia. Plant Dis 80:255–262

    Article  Google Scholar 

  • Ben-Shaul A, Guang Y, Mogilner N, Hadas R, Mawassi M, Gafny R, Bar-Joseph M (1995) Genomic diversity among populations of two viroids from different graft-transmissible dwarfing complexes in Israel. Phytopathology 85:359–364

    Article  CAS  Google Scholar 

  • Berger PH, Thornbury DW, Pirone TP (1984) Highly sensitive serological detection of potato virus Y. Phytopathology 84:847

    Google Scholar 

  • Bernard P, Drogat J, Maure JF, Dheur S, Vaur S, Genier S, Javerzat JP (2006) A screen for cohesion mutants uncovers Ssl3, the fission yeast counterpart of the cohesin loading factor Scc4. Curr Biol 16:875–881

    Article  PubMed  CAS  Google Scholar 

  • Berniak H, Malinowski T, Kaminska M (2009) Comparison of ELISA and RT-PCR assays for detection and identification of cucumber mosaic virus (CMV) isolates infecting horticultural crops in Poland. J Fruit Ornam Plant Res 17(2):5–20

    CAS  Google Scholar 

  • Berrie LC, Palmer K, Rybicki EP, Hiyadat SH, Maxwell DP, Rey MEC (1997) A new isolate of African cassava mosaic virus in South Africa. Afr J Root Tuber Crops 2:49–52

    Google Scholar 

  • Bertazzon N, Angelini E (2004) Advances in the detection of Grapevine leafroll-associated virus 2 variants. J Plant Pathol 86:283–290

    CAS  Google Scholar 

  • Bertolini E, Olmos A, Martinez MC, Gorris MT, Cambra M (2001) Single-step multiplex RT-PCR for simultaneous and colourimetric detection of six RNA viruses in olive trees. J Virol Methods 96:33–41

    Article  PubMed  CAS  Google Scholar 

  • Bertolini E, Penyalver R, Garcı′a A, Olmos A, Quesada JM, Cambra M, Lopez MM (2003) Highly sensitive detection of Pseudomonas savastanoi pv. savastanoi in asymptomatic olive plants by nested-PCR in a single closed tube. J Microbiol Methods 52:261–266

    Google Scholar 

  • Bhadramurthy V, Retheesh ST, Bhat AI, Madhubala R, Hareesh PS, Pant RP (2005) Development of ELISA based technique for the detection of a putative badnavirus infecting black pepper (Piper nigrum L.). Indian Phytopathol 58(3):314–318

    CAS  Google Scholar 

  • Bharatan N, Reddy DVR, Rajeswari R, Murthy VK, Rao VR (1984) Screening of peanut germplasm lines by Enzyme linked immunosorbent assay for seed transmission of peanut mottle virus. Plant Dis 68:757–758

    Google Scholar 

  • Bhardwaj SV, Khosla K, Thakur PD, Modgil M, Sharma DR (1994) Detection of apple mosaic virus (Malus domestica Borkh) using indirect ELISA from Himachal Pradesh, India. In: Rishi N, Ahuja KL, Singh BP (eds) Virology in the tropics. Malhotra Publishing House, New Delhi, pp 615–619, 769

    Google Scholar 

  • Bhaskara Reddy BV (1997) Characterization of Citrus mosaic virus and to develop methods for its quick detection. Doctoral Thesis submitted to Division of Plant Pathology, IARI, New Delhi, India

    Google Scholar 

  • Bhat AI, Siju S (2007) Development of a single tube multiplex RT-PCR for the simultaneous detection of Cucumber mosaic virus and Piper yellow mottle virus associated with stunt disease of black pepper. Curr Sci 93:973–976

    CAS  Google Scholar 

  • Bhat AI, Jain RK, Varma A, Chandra N, Lal SK (2001) Tospovirus (es) infecting grain legumes in Delhi—their identification by serology and nucleic acid hybridization. Indian Phytopathol 54:112–116

    Google Scholar 

  • Bhat AI, Jain RK, Ramiah M (2002) Detection of Tobacco streak virus from sunflower and other crops by reverse transcription polymerase chain reaction. Indian Phytopathol 55:216–218

    CAS  Google Scholar 

  • Bhat AI, Devasahayam S, Sarma YR, Pant RP (2003) Association of a badnavirus in black pepper (Piper nigrum L.) transmitted by mealy bug (Ferrsia virgata) in India. Curr Sci 84:1547–1550

    Google Scholar 

  • Bhat AI, Faisal TH, Madhubala R, Hareesh PS, Pant RP (2004) Purification, production of antiserum and development of Enzyme linked immunosorbent assay-based diagnosis for Cucumber mosaic virus infecting black pepper. (Piper nigrum L.) J. J Spices Aromat Crops 13:16–21

    Google Scholar 

  • Biju CN, Siljo A, Bhat AI (2010) Survey and RT-PCR Based Detection of Cardamom mosaic virus Affecting Small Cardamom in India. Indian J Virol 21:148–150

    Google Scholar 

  • Blahova L, Pidra M (2009) Real-time PCR of grapevine fanleaf virus. In: Extended abstracts, 16th meeting ICVG, 31 Aug–4 Sept, Dijon, France, pp 83–84

    Google Scholar 

  • Bode L, Beutin L, Kohler H (1984) Nitrocellulose-enzyme-linked immunosorbent assay (NC-ELISA)—a sensitive technique for the rapid visual detection of both viral antigens and antibodies. J Virol Methods 8:111–121

    Article  PubMed  CAS  Google Scholar 

  • Boltovets PM, Snopok BA, Boyko VR, Shevchenko TP, Dyachenko NS, Shirshov YM (2004) Detection of plant viruses using a surface plasmon resonance via complexing with specific antibodies. J Virol Methods 121:101–106

    Article  PubMed  CAS  Google Scholar 

  • Bonants P, De Weerdt M, Van Beckhoven J, Hilhorst R, Chan A, Boender P, Zijlstra C, Schoen C (2002) Multiplex detection of plant pathogens by microarrays: an innovative tool for plant health management. In: Proceedings agricultural biomarkers for array technology, Management Committee Meeting, Wadenswil 20

    Google Scholar 

  • Bonants PJM, Schoen CD, Szemes M, Speksnijder A, Klerks MM, van den Boogert PHJF, Waalwijk C, van der Wolf JM, Zijlstra C (2005) From single to multiplex detection of plant pathogens: pUMA, a new concept of multiplex detection using microarrays. Phytopathol Polonica 35:29–47

    Google Scholar 

  • Bonne M (2010) Biochip detects Apple virus. Chemical technology news from across RSC Publishing, Issue 3

    Google Scholar 

  • Boonham N, Wood KR (1998) Assaying levels of virus with local lesion hosts. Methods Mol Biol (Clifton, NJ) 81:487–496

    Google Scholar 

  • Boonham N, Smith P, Walsh K, Tame J, Morris J, Spence N, Benison J, Barker I (2002) The detection of Tomato spotted wilt virus (TSWV) in individual thrips vectors using real time fluorescent RT-PCR (TaqMan). J Virol Methods 101:37–48

    Article  PubMed  CAS  Google Scholar 

  • Boonham N, Walsh K, Smith P, Madagan K, Graham I, Barker I (2003) Detection of potato viruses using micro-array technology: towards a generic method for plant viral disease diagnosis. J Virol Methods 108:181–187

    Article  PubMed  CAS  Google Scholar 

  • Boonham N, Perez LG, Mendez MS, Peralta EL, Blockley A, Walsh K, Barker I, Mumford RA (2004) Development of a real-time RT-PCR assay for the detection of potato spindle tuber viroid. J Virol Methods 116(2):139–146

    Article  PubMed  CAS  Google Scholar 

  • Boonham N, Tomlinson J, Mumford R (2007) Microarrays for rapid identification of plant viruses. Ann Rev Phytopathol 45:307–328

    Article  CAS  Google Scholar 

  • Boonham N, Laurenson L, Weekes R, Mumford R (2009) Direct detection of plant viruses in potato tubers using real-time PCR. Methods Mol Biol 508:249–258

    Google Scholar 

  • Borah BK, Anthony Johnson AM, Saigopal DVR, Dagupta I (2008) A comparison of four DNA extraction methods for the detection of Citrus yellow mosaic badna virus from two species of citrus using PCR and Dot-Blot Hybridization. J Virol Methods 151:321–324

    Article  PubMed  CAS  Google Scholar 

  • Borah BK, Sai Gopal DVR, Dasgupta I (2009) PCR–RFLP shows high genetic diversity of citrus yellow mosaic virus in southern India. Indian J Virol 20(2):59–63

    Google Scholar 

  • Borja MJ, Ponz F (1992) An appraisal of different methods for the detection of the walnut strain of cherry leaf roll virus. J Virol Methods 36:73–83

    Article  PubMed  CAS  Google Scholar 

  • Bossennec JM, Maury Y (1978) Use of the ELISA technique for the detection of soybean mosaic virus in soybean seeds. Ann de Phytopathologie 10:263–268

    Google Scholar 

  • Breitbart M, Hoare A, Nitti A, Siefert J, Haynes M, Dinsdale E, Edwards R, Souza V, Rohwer F, Hollander D (2009) Metagenomic and stable isotopic analyses of modern freshwater microbialites in Cuatro Cienegas. Mexico Environ Microbiol 11:16–34. doi:10.1111/j.1462-2920.2008.01725.x

    Article  CAS  Google Scholar 

  • Brlansky RH, Derrick KS (1979) Detection of seed borne plant viruses using serologically specific electron microscopy. Phytopathology 69:96–100

    Article  Google Scholar 

  • Brown PO, Botstein D (1999) Exploring the new world of the genome with DNA microarrays. Nat Genetics 21:33–37

    Article  CAS  Google Scholar 

  • Brugidou C, Holt C, Yassi MN, Zhang S, Beachy R, Fauquet C (1995) Synthesis of an infectious full-length cDNA clone of Rice yellow mottle virus and mutagenesis of the coat-protein. Virology 108:115

    Google Scholar 

  • Bryant GR, Hill JH, Bailey TB, Tachibana H, Durand DP, Bennet HI (1982) Detection of soybean mosaic virus in seed by solid-phase radio-immunoassay. Plant Dis 66:693–695

    Article  Google Scholar 

  • Bryant GR, Durand DP, Hill JH (1983) Development of a solid radioimmunoassay for the detection of soybean mosaic virus. Phytopathology 73:623–629

    Article  CAS  Google Scholar 

  • Bulajic A, Djekic I, Jovic J, Krnjajic S, Vacurovic A, Krstic B (2009) Incidence and distribution of Iris yellow spot virus on onion in Serbia. Plant Dis 93:976–982

    Article  CAS  Google Scholar 

  • Burgermeister W, Koenig R (1984) Electro-blot immunoassay—a means for studying serological relationships among plant viruses? J Phytopathol 111(1):15–25

    Article  CAS  Google Scholar 

  • Byadgi AS (2008) Papaya ring spot virus. In: Rao GP, Myrta A, Ling K (eds) Characterization, diagnosis and management of plant viruses, vol 2: Horticultural crops. Studium Press LLC, Houston, pp 125–144

    Google Scholar 

  • Caciagli P, Bosco D (1996) Quantitative determination of tomato yellow leaf curl geminivirus DNA by chemiluminescent assay using digoxigenin-labeled probes. J Virol Methods 57:19–29

    Article  PubMed  CAS  Google Scholar 

  • Caciagli P, Bosco D (1997) Quantitative determination of tomato yellow leaf curl geminivirus DNA in its whitefly vector. Phytopathology 108:221–225

    Google Scholar 

  • Cai ZN, Xu ZY, Wang D, Yu SL (1986) Studies on the detection of peanut seed-borne viruses of Enzyme linked immunosorbent assay (ELISA). Acts Phytopathologica Sinica 16:23–28

    Google Scholar 

  • Cai L, Ma X, Kang L, Deng K, Zhao S, Li C (2003) Detecting Rice stripe virus (RSV) in the small brown plant hopper (Laodelphaxstriatellus) with high specificity by RT-PCR. J Virol Methods 112:115–120

    Article  CAS  Google Scholar 

  • Cambra M, Camarasa E, Gorris MT, Garnsey SM, Carbonell E (1991) Comparison of different immunosorbent assays for citrus tristeza virus (CTV) using CTV-specific monoclonal and polyclonal antibodies. In: Brlansky RH, Lee RF, Timme LW (eds) Proceedings of the 11th conference of the International Organization of Citrus Virologists (IOCV), 24–28 Oct 1989, Florida. University of California, Riverside, pp 38–45

    Google Scholar 

  • Cambra M, Asensio M, Gorris MT, Perez E, Camarasa E, Garcia JA, Moya JJ, Lopez-Abella D, Vela C, Sanz A (1994) Detection of plum pox potyvirus using monoclonal antibodies to structural and non-structural proteins. EPPO Bull 24:569–577

    Article  Google Scholar 

  • Cambra M, Gorris MT, Marroquín C, Roman MP, Olmos A, Martínez MC, Hermoso de Mendoza A, Lopez A, Navarro L (2000) Incidence and epidemiology of citrus tristeza virus in the Valencian Community of Spain. Virus Res 71:85–95

    Article  PubMed  CAS  Google Scholar 

  • Cancino M, Abouzid AM, Morales FJ, Purcifull DE, Polston JE, Hiebert E (1995) Generation and characterization of three monoclonal antibodies useful in detecting and distinguishing Bean golden yellow mosaic virus isolates. Phytopathology 85:484–490

    Article  CAS  Google Scholar 

  • Candresse T, Macquaire G, Dunez J, Grasseau N, Malinowski T (1995a) An immnocapture PCR assay adapted to detection and analysis of the molecular variability of Apple chlorotic leaf spot virus. Acta Hort 386:136–147

    CAS  Google Scholar 

  • Candresse T, Macquaire G, Lanneau M, Bousalem M, Quiot-Douine L, Quiot JB, Dunez J (1995b) Analysis of plum pox potyvirus variability and development of strain-specific PCR assays. Acta Horticulturae 386:357–369

    CAS  Google Scholar 

  • Candresse T, Cambra M, Dallot M, Lanneau M, Asensio M, Gorris MT, Revers F, Macquaire G, Olmos A, Boscia D, Quiot JB, Dunez J (1998a) Comparison of monoclonal antibodies and polymerase chain reaction assays for the typing of isolates belonging to the D and M serotypes of plum pox potyvirus. Phytopathology 88:198–204

    Article  PubMed  CAS  Google Scholar 

  • Candresse T, Hammond RW, Hadidi A (1998 b) Detection and identification of plant viruses and viroids using polymerase chain reaction (PCR). In: Hadidi A, Khetarpal RK, Koganezawa H (eds) Plant virus disease control. APS Press, St. Paul, pp 399–416, 684

    Google Scholar 

  • Candresse T, Kofalvi SA, Lanneau M, Dunez J (1998c) A PCR-ELISA procedure for the simultaneous detection and identification of Prunus necrotic ringspot (PNRSV) and Apple mosaic virus (ApMV) illarviruses. Acta Hort 472:219–225

    CAS  Google Scholar 

  • Canning ESG, Penrose MJ, Barker I, Coates D (1996) Improved detection of barley yellow dwarf virus in single aphids using RT-PCR. J Virol Methods 56:191–197

    Article  PubMed  CAS  Google Scholar 

  • Canto T, Ellis P, Bowler G, Lopez-Abella D (1995) Production of monoclonal antibodies to Potato virus Y helper component protease and their use for strain differentiation. Plant Dis 79:234–237

    Article  CAS  Google Scholar 

  • Carroll TW (1979) Methods of detecting seedborne plant viruses. J Seed Technol 4(2):82–95

    Google Scholar 

  • Carroll TW, Gossel PL, Hockett EA (1979) Inheritance of resistance to seed transmission of barley stripe mosaic virus in barley. Phytopathology 69:431–433

    Article  Google Scholar 

  • Carroll TW (1980) Barley stripe mosaic virus: its economic importance and control in Montana. Plant Dis 64:136–140

    Google Scholar 

  • Chalam VC, Khetarpal RK, Mishra A, Jain A, Gupta GK (2004) Seed transmission of soybean mosaic potyvirus in soybean cultivars. Indian J Mycol Plant Pathol 34:86–87

    Google Scholar 

  • Chalam VC, Khetarpal RK, Parakh DB, Maurya AK, Jain A, Singh S (2005a) Interception of seed transmitted viruses in French bean germplasm imported during 2002–2003. Indian J Plant Prot 33:134–138

    Google Scholar 

  • Chalam VC, Pappu HR, Druffel KL, Khetarpal RK (2005b) Detection of potyviruses in legume seeds by PCR and Real-time RT-PCR. Indian J Virol 16:52. ISSN: 0970-2822

    Google Scholar 

  • Chalam VC, Khetarpal RK, Parakh DB, Maurya AK, Jain A (2007a) Methodology involved in detection of exotic viruses in seed material imported into India. In: Proceedings of the 2nd Asian congress of mycology and plant pathology, Hyderabad (India), 19–22 Dec 2007, p 401 (abstract)

    Google Scholar 

  • Chalam VC, Khetarpal RK, Prasada Rao RDVJ, Parakh DB, Maurya A (2007b) Transboundary movement of plant viruses: a case study of India. Indian J Virol 19(1):97–98

    Google Scholar 

  • Chand D, Chalam VC, Pant RP, Khetrapal RK (2004) Detection and symptomatology of seed-transmitted black gram mottle virus in Vigna mango. J Mycol Plant Pathol 34:202–204

    Google Scholar 

  • Chatchen S, Juricek M, Rueda P, Kertbundit S (2006) Papaya ringspot virus coat protein gene for antigen presentation in Escherichia coli. J Biochem Mol Biol 39(1):16–21

    Article  PubMed  CAS  Google Scholar 

  • Chen L, Duan DP, Hill JH (1982) Detection of soybean mosaic virus pathogenic strains by Enzyme-linked immunosorbent assay using polystyrene plates and beeds as the solid phase. Phytopathology 72:117–118

    Article  Google Scholar 

  • Chen J, Wu R, Yang P, Huang J, Sher Y, Han M, Kao W, Lee P, Chiu T, Chang F, Chu Y, Wu C, Peck K (1998) Profiling expression patterns and isolating differentially expressed genes by cDNA microarray system with colorimetry detection. Genomics 51:313–324

    Article  PubMed  CAS  Google Scholar 

  • Chen J, Deng X, Liu S, Pu X, Li H, Civerolo E (2008) Detection of phytoplasma and Candidatus Liberibacter asiaticus in citrus showing Huanglongbing (yellow shoot disease) symptoms in Guangdong, P.R. China. Phytopathology 98:S35

    Google Scholar 

  • Chester IB, Hill SA, Wright DM (1983) Serological detection of ryegrass mosaic virus and ryegrass seed-borne virus. Ann Appl Biol 102:325–329

    Article  Google Scholar 

  • Childress AM, Ramsdell DC (1986) Direction of blueberry leaf mottle virus in highbush blueberry pollen and seed. Phytopathology 76:1333–1337

    Article  Google Scholar 

  • Chitra TR, Prakash HS, Albrechtsen SE, Shetty HS, Mathur SB (1999a) Infection of tomato and bell pepper of ToMV and TMV at different growth stages and establishment of virus in seeds. J Plant Pathology 81:123–126

    Google Scholar 

  • Chitra TR, Prakash HS, Albrechtsen SE, Shetty HS, Mathur SB (1999b) Seed transmission of mosaic viruses in tomato and bell pepper. Trop Sci 39:80–84

    Google Scholar 

  • Chitra TR, Prakash HS, Albrechtsen SE, Shetty HS, Mathur SB (2002) Indexing of leaf and seed samples of tomato and bell pepper for tobamoviruses. Indian Phytopathol 55:123–126

    Google Scholar 

  • Choi SH, Ryu KH (2003) Rapid screening of apple mosaic virus in cultivated apples by RT PCR. Plant Pathol J 19:159–161

    Article  Google Scholar 

  • Choi HS, Kim MK, Park JW, Lee SH, Kim KH, Kim JS, Were HK, Choi JK, Takanami Y (2006) First report of the Peanut stripe strain of Bean common mosaic virus (BCMV-PSt.) infecting mungbean in Korea. Plant Pathol J 22(1):46–50

    Google Scholar 

  • Cicek Y, Yorganci U (1991) Studies on the incidence of tobacco mosaic virus on certified seed of tomato, pepper and Egyptian in Aegean region. J Turkish Phytopathol 20:57–68

    Google Scholar 

  • Cillo F, Roberts IM, Palukaitis P (2002) In situ localization and tissue distribution of the replication associated proteins of cucumber mosaic virus in tobacco and cucumber. J Virol 76:10654–10664

    Article  PubMed  CAS  Google Scholar 

  • Ciuffo M, Kurowski C, Vivoda E, Copes B, Masenga V, Falk BW, Turina M (2009) A new Tospovirus sp. in cucurbit crops in Mexico. Plant Dis 93:467–474

    Article  CAS  Google Scholar 

  • Clackson T, Hoogenboom HR, Griffiths AD, Winter G (1991) Making antibody fragments using phage display libraries. Nature 352:624–628

    Article  PubMed  CAS  Google Scholar 

  • Clair D, Larrue J, Aubert G, Gillet J, Cloquemin G, Boudon-Padieu E (2003) A multiplex nested-PCR assay for sensitive and simultaneous detection and direct identification of phytoplasma in the Elm yellows group and Stolbur group and its use in survey of grapevine yellows in France. Vitis 42:151–157

    CAS  Google Scholar 

  • Clark MF, Adams AN (1977) Characteristics of the microplate method of Enzyme-linked immunosorbent assay for the detection of plant viruses. J Gen Virol 34:475–483

    Article  PubMed  CAS  Google Scholar 

  • Cockbain AJ, Bowen R, Vorra-urai S (1976) Seed transmission of broad bean stain virus and Echtes Ackerbohnenmosaik-Virus in field bean (Vicia faba). Ann Appl Biol 84:321–332

    Article  Google Scholar 

  • Cockerill FR, Smith TF (2002) Rapid-cycle real-time PCR: a revolution for clinical microbiology. ASM News 68:77–83

    Google Scholar 

  • Coetzee B (2010) A meta genomic approach using next generation sequencing for a viral profiling of a vineyard and genetic characterization of Grapevine virus E. MSc thesis submitted to Stellenbosch University

    Google Scholar 

  • Colariccio A, Chaves ALR, Eiras M, Chagas CM, Lenzi R, Roggero P (2003) Presence of lettuce big-vein disease and associated viruses in a subtropical area of Brazil. New Dis Rep 7:14

    Google Scholar 

  • Coons AH, Creech HJ, Jones RN, Berliner E (1942) The demonstration of pneumococcal antigen in tissues by the use of fluorescent antibody. J Immunol 45:159–170

    CAS  Google Scholar 

  • Cooper JI, Edwards ML (1986) In Developments and Applications in virus testing. pp 139–154. (RAC Jones and L Torrance. eds.). The Lavenham Press Ltd., Sudbury, Suffolk, Great Britain, p 300

    Google Scholar 

  • Cordoba-Selles MC, García-Randez A, Alfaro-Fernandez A, Jorda-Gutierrez C (2007) Seed transmission of Pepino mosaic virus and efficacy of tomato seed disinfection treatments. Plant Dis 91:1250–1254

    Article  Google Scholar 

  • Cotillon AC, Desbiez C, Bouyer S, Wipf-Scheibel C, Gros C, Delecolle B, Lecoq H (2005) Production of a polyclonal antiserum against the coat protein of Cucurbit yellow stunting disorder cultivars expressed in Escherichia coli. OEPP/EPPO Bulletin 35:99–103

    Article  Google Scholar 

  • Coutts BA, Prince RT, Jones RAC (2009) Quantifying effects of seedborne inoculum on virus spread, yield losses and seed infection in the pea seed-borne mosaic virus-field pea pathosystem. Phytopathology 99:1156–1167

    Article  PubMed  CAS  Google Scholar 

  • Crosslin JM, Hamlin LL (2011) Standardized RT-PCR conditions for detection and identification of eleven viruses of potato and potato spindle tuber viroid. Am J Potato Res 88:333–338

    Article  Google Scholar 

  • Crowe FJ, Pappu HR (2005) Out break of Iris yellow spot virus in onion seed crops in Central Oregon. Plant Dis 89:105

    Article  Google Scholar 

  • Culver JN, Sherwood JL (1988) Detection of peanut stripe virus in peanut seed by an indirect Enzyme-linked immunosorbent assay using monoclonal antibody. Plant Dis 72:676–679

    Article  Google Scholar 

  • Damayanti TA, Naidu RA (2009) Identification of Peanut bud necrosis virus and Tomato spotted wilt virus in Indonesia for the first time. New Dis Rep 19:6

    Google Scholar 

  • Damayanti TA, Putra LK, Giyanto (2010) Hot water treatment of cutting-cane infected with sugarcane streak mosaic virus (SCSMV). J. ISSAAS 16(2):17–25

    Google Scholar 

  • Danks C, Barker I (2000) On site detection of plant pathogens using lateral flow devices. EPPO Bulletin 30:421–426

    Article  Google Scholar 

  • Dassanayake EM (2001) Detection of banana bract mosaic potyvirus by immuno capture polymerase chain reaction (IC-PCR). Ann Sri Lanka Dep Agric 3:19–25

    Google Scholar 

  • Davis RF, Hampton RO (1986) Cucumber mosaic virus isolates seed-borne in Phaseolus vulgaris: serology, host pathogen relationships and seed transmission. Phytopathology 76:999–1004

    Article  Google Scholar 

  • de Bokx JE, Maat DZ (1979) Detection of potato virus in tubers with the Enzyme-linked immunosorbent assay (ELISA). Fac Landbown Rijsuniv Gent, Med 44

    Google Scholar 

  • de Bokx JA, Prion PGM, Cother E (1980) Enzyme-linked immunosorbent assay (ELISA) for the detection of potato viruses S and M in potato tubers. Neth J Plant Pathol 86:285–290

    Article  Google Scholar 

  • de Silva DPP, Jones P, Shaw MW (2002) Identification and transmission of piper yellow mottle virus and cucumber mosaic virus infecting Black pepper (Piper nigrum) in Sri Lanka. Plant Pathol 51:537–545

    Article  Google Scholar 

  • De Stefano L, Rea I, Armenante A, Giardina P, Giocondo M, Rendina I (2007) Selfassembled Biofilm of Hydrophobins Protect the Silicon Surface in the KOH Wet Etch Process. Langmuir 23:7920–7922

    Article  PubMed  CAS  Google Scholar 

  • Delanoy M, Salmon M, Kummert J, Frison E, Lepoivre P (2003) Development of real-time PCR for the rapid detection of episomal banana streak virus (BSV). Plant Dis 87:33–38

    Article  CAS  Google Scholar 

  • Delfosse P, Reddy AS, Legreve A, Devi PS, Devi KT, Maraite H, Reddy DVR (1999) Indian peanut clump virus (IPCV) infection on wheat and barley: symptoms, yield loss and transmission through seed. Plant Pathol 48:278–282

    Article  Google Scholar 

  • Demski JW, Warwick D (1986) Testing peanut seeds for peanut stripe virus. Peanut Sci 13:38–40

    Article  Google Scholar 

  • Deng D, McGrath PF, Robinson DJ, Harrison BD (1994) Detection and differentiation of whitefly-transmitted geminiviruses in plants and vector insects by the polymerase chain reaction with degenerate primers. Ann Appl Biol 125:327–336

    Article  CAS  Google Scholar 

  • Derrick KS (1973) Quantitative assay for plant viruses using serologically specific electron microscopy. Virology 56:562–563

    Google Scholar 

  • Dhanya MK, Rajagopalan B, Uma Maheswaran K, Ayisha R (2007) Comparison of detection methods for banana bract mosaic virus in banana. World J Agric Sci 3:659–662

    Google Scholar 

  • Dhar AK, Singh RP (1994) Improvement in the sensitivity of PVYN detection by increasing the cDNA probe size. J Virol Methods 50:197–210

    Article  PubMed  CAS  Google Scholar 

  • Dheepa R, Paranjothi S (2010) Transmission of Cucumber Mosaic Virus (CMV) infecting banana by aphid and mechanical methods. Emir J Food Agric 22(2):117–129

    Google Scholar 

  • Diaco R, Hill JH, Hill IK, Tachibana H, Durand DP (1985) Monoclonal antibody-based biotin-avidin ELISA for the detection of soybean mosaic virus in soybean seeds. J Gen Virol 66:2089–2094

    Article  CAS  Google Scholar 

  • Didenko VV (2001) DNA probes using fluorescence resonance energy transfer (FRET): designs and applications. Biotechniques 31:1106–1121

    PubMed  CAS  Google Scholar 

  • Dieryck B, Otto G, Doucet D, Legreve A, Delfosse P, Bragard C (2009) Seed, soil and vegetative transmission contribute to the spread of pecluviruses in Western Africa and the Indian Sub-continent. Virus Res 141:184–189

    Article  PubMed  CAS  Google Scholar 

  • Dietzgen RG, Xu Z, Teycheney P-Y (1994) Digoxigenin-labeled cRNA probes for the detection of two potyviruses infecting peanut (Arachis hypogaea). Plant Dis 78:708–711

    Article  CAS  Google Scholar 

  • Dietzgen RG, Thomas JE, Smith GR, Maclean I (1999) PCR- based detection of viruses in banana and sugarcane. Curr Top Virol 1:105–118

    CAS  Google Scholar 

  • Dietzgen RG, Callaghan B, Higgins CM, Birch RG, Chen K, Xu Z (2001) Differentiation of Peanut seed-borne poty viruses and cucumoviruses by RT-PCR. Plant Dis 85:989–992

    Article  CAS  Google Scholar 

  • Dietzgen RG, Twin J, Talty J, Selladurai S, Carroll ML, Coutts BA, Berryman DI, Jones RAC (2005) Genetic variability of tomato spotted wilt virus in Australia and validation of real time RT-PCR for its detection in single and bulked leaf samples. Ann Appl Biol 146(4):517–530

    Article  CAS  Google Scholar 

  • Digiaro M, Elbeaino T, Martelli GP (2007) Development of degenerate and species-specific primers for the differential and simultaneous RT-PCR detection of grapevine-infecting nepoviruses of subgroups A, B and C. J Virol Methods 141:34–40

    Article  PubMed  CAS  Google Scholar 

  • Dolores IM, Bajet NB (1995) Isolation and transmission of tomato leaf curl virus in the Philippines. Philipp Phytopathol 31:40–51

    Google Scholar 

  • Dilip Ghosh, Das AK (2012) Duplex PCR-based assay for simultaneous detection of tristeza and greening diseases in citrus. Indian Phytopath 65:328–333

    Google Scholar 

  • Dolores-Talens AC, Hills JH, Durand DP (1989) Application of enzyme-linked fluorescent assay (ELFA) to detection of lettuce mosaic virus in lettuce seeds. J Phytopathol 124:149–154

    Article  Google Scholar 

  • Dovas CI, Katis NI (2003a) A spot multiplex nested RT-PCR for the simultaneous and generic detection of viruses involved in the aetiology of grape leaf roll and rugose wood of grape vine. J Virol Methods 109:217–226

    Article  PubMed  CAS  Google Scholar 

  • Dovas CI, Katis NI (2003b) A spot nested RT-PCR method for the simultaneous detection of members of the vitivirus and Forea virus genera in grape vine. J Virol Methods 107:99–106

    Article  PubMed  CAS  Google Scholar 

  • Dovas CI, Spinthiropoulou H, Stavrakakis N, Katis NI (2003) Sanitary status of wine grape varieties (Vitis vinifera L.) in northern Greece originating from clonal selection for preservation. In: Extended abstracts 14th meeting ICVG, Locorotondo, Italy, 13–17 Sept 2003. Department of plant protection and Applied Microbiology, University Bari (Italy), pp 169–170

    Google Scholar 

  • Du Z, Jin B, Liu W, Chen L, Chen J (2007) Highly sensitive fluorescent-labelled probes and Glass Slide Hybridization for the detection of plant RNA viruses and a viroid. Acta Biochim Biophys Sin 39:326–334

    Article  PubMed  Google Scholar 

  • Duran-Vila N, Roistacher CN, Rivera-Bustamente R, Semancik JS (1988) A definition of citrus viroids groups and their relationship to the exocortis disease. J Gen Virol 69:3069–3080

    Article  Google Scholar 

  • Dusi AN, Carvalho MG, Zambolim EM (1988) Use of ELISA and single radial diffusion to detect bean common mosaic virus on bean seeds. Fitopatologia Brasileira 13:282–283

    Google Scholar 

  • Edwards ML, Cooper JI (1985) Plant virus detection using a new form of Indirect ELISA. J Virol Methods 11:309–319

    Article  PubMed  CAS  Google Scholar 

  • Edwards RA, Rodriguez-Brito B, Wegley L, Haynes M, Breitbart M, Peterson DM, Saar MO, Alexander S, Alexander EC Jr, Rohwer F (2006) Using pyrosequencing to shed light on deep mine microbial ecology. BMC Genomics 7:57

    Article  PubMed  CAS  Google Scholar 

  • El El-Beaino T, Sabanadzovic S, Digiaro M, Abou Ghanem-Sabanadzovic N, Rowhani A, Kyriakopoulou PE, Martelli GP (2001) Molecular detection of Grapevine fleck virus-like virus. Vitis 40:65–68

    CAS  Google Scholar 

  • El-Dougdoug KA, Taha RM, Mousa AA (1999) Studies on some faba bean seed-borne viruses. J Agric Sci 7:381–390

    Google Scholar 

  • Eni AO, Hughes Jd’A, Rey MEC (2008a) Survey of the incidence and distribution of five viruses infecting yam in the major yam producing zones in Benin. Ann Appl Biol 153(2):223–232

    Google Scholar 

  • Eni AO, Lava Kumar P, Asiedu R, Alabi OJ, Naidu RA, Hughes Jd’A, Rey MEC (2008b) First report of cucumber mosaic virus in yams (Dioscorea spp.) in Ghana, Togo, and Republic of Benin in West Africa. Plant Dis 92:833

    Google Scholar 

  • Eni AO, Hughes Jd’A, Asiedur R, Rey MEC (2012) Re-evaluation of Yam mosaic virus (YMV) detection methods. Acad J Plant Sci 5:18–22

    Google Scholar 

  • Eppler A, Kheder MA (1988) Seedborne viruses in locally produced Vicia faba seeds from the A.R. of Egypt. Med Fac Landbouww Rijksuniv Gent 53/2a:461–471

    Google Scholar 

  • Erdiller G, Akbas B (1996) Seed transmission of some viruses in chickpea and lentil. J Turkish Phytopathol 25:93–101

    Google Scholar 

  • Ertunc F (1992) Direction of cucumber mosaic virus in seeds of some cucumbits by ELISA assays. Ankara Universities Ziraat Facultesi YaYinlazi, No: 1251, 13 pp

    Google Scholar 

  • Eun AJC, Wong SM (2000) Molecular beacons: a new approach to plant virus detection. Phytopathology 90:269–275

    Article  PubMed  CAS  Google Scholar 

  • Eun AJ-C, Seoh M-L, Wong S-M (2000) Simultaneous quantitation of two orchid viruses by the TaqMan real time RT-PCR. J Virol Methods 87:151–160

    Article  PubMed  CAS  Google Scholar 

  • Eun AJC, Huang LQ, Chew FT, Li SFY, Wong SM (2002) Detection of two orchid viruses using quartz crystal microbalance (QCM) immunosensors. J Virol Methods 99:71–79

    Article  PubMed  CAS  Google Scholar 

  • Faggioli F, La Starza S (2006) One-step multiplex RT-PCR for simultaneous detection of eight grapevine viruses and its application in a sanitary selection programme. In: Extended abstracts, 15th meeting ICVG, 3–7 April, Stellenbosch, South Africa, pp 120–121

    Google Scholar 

  • Falk BW, Guzman VL (1984) Differential detection of seedborne lettuce mosaic virus (LMV) in LMV susceptible and resistant lettuce breeding lines. Proc Fla State Hort Soc 97:179–181

    Google Scholar 

  • Falk BW, Purcifull DE (1983) Development and application of an Enzyme linked immunosorbent assay (ELISA) test to index lettuce seeds for lettuce mosaic virus in Florida. Plant Dis 67:413–416

    Article  Google Scholar 

  • Fang S, Yu J, Feng J, Han C, Li D, Liu Y (2001) Identification of rice black-streaked dwarf fijivirus in maize with rough dwarf disease in China. Arch Virol 146(1):167–170

    Article  PubMed  CAS  Google Scholar 

  • Fauquet C, Thouvenel JC (1977) Isolation of rice yellow mottle in ivorycoast. Plant Dis Rep 61:443–446

    Google Scholar 

  • Fessehaie ASH, Boer D, Levesque CA (2003) An oligonucleotide array for the identification and differentiation of bacteria pathogenic on potato. Phytopathology 93:262–269

    Article  PubMed  CAS  Google Scholar 

  • Finetti-Sialer M, Ciancio A, Gallitelli D (2000) Use of fluorogenic scorpions for fast and sensitive detection of plant viruses. EPPO Bulletin 30:437–440

    Article  Google Scholar 

  • Finetti-Sialer M, Lanave C, Padula M, Vovlas C, Gallitelli D (2002) Occurrence of two distinct Tomato spotted wilt virus (TSWV) subgroups in Southern Italy. J Plant Pathol 84(3):145–152

    Google Scholar 

  • Fisher L, Bennett S, Tennant P, Laughlin WMc (2011) Detection of citrus virus and viroid species in Jamaica. Acta Hort 894:117–122

    Google Scholar 

  • Flores R (1986) Detection of citrus exocortis viroid in crude extracts by dot-blot hybridization: conditions for reducing spurious hybridization results and for enhancing the sensitivity of the technique. J Virol Methods 13:161–169

    Article  PubMed  CAS  Google Scholar 

  • Fonseca ME, Marcellino LH, Gander E (1996) A rapid and sensitive dot-blot hybridization assay for the detection of citrus exocortis viroid in Citrus medica with digoxigeninlabelled RNA probes. J Virol Methods 57:203–207

    Article  PubMed  CAS  Google Scholar 

  • Forster RL, Seifers DL, Strausbaugh CA, Jensen SG, Ball EM, Harvey TL (2001) Seed transmission of the High Plains virus in sweet corn. Plant Dis 85:696–699

    Article  Google Scholar 

  • Foster GD, Mills PR (1990) Detection of strains of potato virus S by nucleic acid spot hybridization (NASH). Potato Res 33(4):487–495

    Article  CAS  Google Scholar 

  • Franken AAJ, Maat DZ, Kamminga GC (1990) Detection of squash mosaic virus in seeds of melon (cucumis melo) by Enzyme linked immunosorbent assay (ELISA). Neth J Plant Pathol 96:91–102

    Article  Google Scholar 

  • Franke-Whittle IH, Klammer SH, Insam H (2005) Design and application of an oligonucleotide microarray for the investigation of compost microbial communities. J Microbiol Methods 62:37–56

    Article  PubMed  CAS  Google Scholar 

  • Franssen JM, van der Hulst CThC (1985) The possible application of monoclonal antibodies in ELISA for detection of tulip breaking virus. Acta Horticulturae 177:111–114

    Google Scholar 

  • Fratamico PM, Strobaugh TP, Medina MB, Gehring AG (1998) Detection of Escherichia coli 0157:H7 using a surface plasmon resonance biosensor. Biotechnol Tech 12:571–576

    Article  CAS  Google Scholar 

  • Fuji S, Ohishi K, Nakamae H (1998) Detection of tomato spotted wilt virus in chrysanthemum by immunocapture RT-PCR assay. Proc Kansai Plant Prot 40:111–112

    Google Scholar 

  • Fukuta S, Iida T, Mizukami Y, Ishida A, Ueda J, Kanbe M, Ishimoto Y (2003a) Detection of Japanese yam mosaic virus by RT-LAMP. Arch Virol 148:1713–1720

    Article  PubMed  CAS  Google Scholar 

  • Fukuta S, Kato S, Yoshida K, Mizukami Y, Ishida A, Ueda J, Kanbe M, Ishimoto Y (2003b) Detection of tomato yellow leaf curl virus by loop-mediated isothermal amplification reaction. J Virol Methods 112(1–2):35–40

    Article  PubMed  CAS  Google Scholar 

  • Galal AM (2007) Use of polymerase chain reaction for detecting Banana bunchy top nano virus. Biotechnology 6:53–56

    Article  CAS  Google Scholar 

  • Gallitelli D (2004) Nucleic acid-based assay for the diagnosis of viral pathogens. Phytopathol Mediterr 43:221–227

    CAS  Google Scholar 

  • Gambino G, Gribaudo I (2006) Simultaneous detection of nine grapevine viruses by multiplex reverse transcription polymerase chain reaction with coamplification of a plant RNA as internal control. Phytopathology 96:1223–1229

    Article  PubMed  CAS  Google Scholar 

  • Gao C, Mao S, Lo CH, Wirsching P, Lerner RA, Janda KD (1999) Making artificial antibodies: a format for phage display of combinatorial heterodimeric arrays. Proc Natl Acad Sci U S A 96(11):6025–6030

    Article  PubMed  CAS  Google Scholar 

  • Garcia-Arenal F, Fraile A, Malpica JM (2001) Variability and genetic structure of plant virus populations. Ann Rev Phytopathol 39:157–186

    Article  CAS  Google Scholar 

  • Garg ID, Khurana SMP (1992) Factors influencing immune electron microscopy of flexuous potato viruses. Acta Virol 36:435–442

    PubMed  CAS  Google Scholar 

  • Garg ID, Khurana SMP (1994) ISEM: Dislodging of PVY/PVA virions upon incubation with antisera to PVS/PVM. In: Shekhawat GS, Paul Khurana SM, Pandey SK, Chandla VK (eds) Potato: present and future. Indian Potato Association, Shimla, pp 325–327

    Google Scholar 

  • Garg ID, Hegde V, Paul Khurana SM (2000) Effect of pH of antisera, bovine serum albumin and ions on the stability of immunosorbed flexuous potato viruses. Acta Virol 44:67–72

    PubMed  CAS  Google Scholar 

  • Garland S, Sharman M, Persley AD, McGrath D (2005) The development of an improved PCR-based marker system for Sw-5, an important TSWV resistance gene of tomato. Aust J Agric Res 56:285–289

    Article  CAS  Google Scholar 

  • Garnsey SM, Gonsalves D, Purcifull DE (1979) Rapid diagnosis of citrus tristeza virus infections by sodium dodecyl sulfate SDS-immunodiffusion procedures. Phytopathology 69:88–95

    Google Scholar 

  • Garnsey SM, Cambra M (1991) Enzyme-linked immunosorbent assay (ELISA) for citrus pathogens. In: Roistacher CN (ed) Graft-transmissible diseases of citrus-handbook for detection and diagnosis. FAO, Rome, pp 193–216

    Google Scholar 

  • Garnsey SM, Permar TA, Cambra M, Henderson CT (1993) Direct tissue blot immunoassay (DTBIA) for detection of citrus tristeza virus (CTV). In: Moreno P, Da Graca J, Timmer L (eds) Proceedings of the 12th conference on International Organization of Citrus Virologists. IOCV, Riverside, pp 39–50

    Google Scholar 

  • Gaur RK, Rao GP, Singh M (2003) Molecular characterization of sugarcane mosaic virus isolate from North Eastern region of India. Sugar Technol 5:149–153

    Article  CAS  Google Scholar 

  • Gawande SJ, Kaundal P, Kaushal N, Garg ID (2007) Print capture PCR—a simple technique for the detection of Tomato leaf curl New Delhi virus—causal agent of potato apical leaf curl disease in India. Potato J 34:87–88

    Google Scholar 

  • Gawande SJ, Shukla A, Chimote VP, Kaushal N, Kaundal P, Garg ID, Chimote KP (2011) Development of PCR-based techniques for the detection of immobilized Potato virus Y virions. J Plant Pathol 93:127–132

    Google Scholar 

  • Geering ADW, Thomas JE (1996) A comparison of four serological tests for the detection of banana bunchy top virus in banana. Aust J Agric Res 47:403–412

    Article  Google Scholar 

  • Geering ADW, Mc Michael LA, Dietzgen RG, Thomas JE (2000) Genetic diversity among banana streak virus isolates from Australia. Phytopathology 90:921–927

    Article  PubMed  CAS  Google Scholar 

  • Ghabrial SA, Shepherd RJ (1980) A sensitive radioimmunosorbent assay for the detection of plant viruses. Journal of General Virology 48:311–317

    Google Scholar 

  • Ghabrial SA, Li D, Shepherd RJ (1982) Radio-immunosorbent assay for detection of lettuce mosaic virus in lettuce seed. Plant Dis 66:1037–1040

    Article  Google Scholar 

  • Gilbertson RL, Rojas MR, Russell D, Maxwell DP (1991) The use of the asymmetric polymerase chain reaction and DNA sequencing to determine genetic variability among isolates of bean golden mosaic geminiviruses in the Dominican Republic. J Gen Virol 72:2843–2848

    Article  PubMed  CAS  Google Scholar 

  • Gillaspie AG Jr, Pittman RN, Pinnow DL, Cassidy BG (1994) Testing peanut seed lots for peanut stripe and peanut mottle potyvirus-infection by IC-RT-PCR. Phytopathology 84:54

    Google Scholar 

  • Gillaspie AGJr, Hajimorad MR, Ghabrial SA (1998a) Characterization of a severe strain of cucumber mosaic cucumovirus seed borne in cowpea. Plant Dis 82:419–422

    Article  Google Scholar 

  • Gillaspie AG Jr, Pappu HR, Jain RK, Rey MEC, Hopkins MS, Pinnow DL, Morris JB (1998b) Characteristics of a latent poty seed-borne in guar and of Guar green-sterile virus. Plant Dis 82:765–770

    Article  Google Scholar 

  • Gillaspie AG Jr, Pittman RN, Pinnow DL, Cassidy BG (2000) Sensitive method for testing peanut seed lots for Peanut stripe and Peanut mottle viruses by immunocapture-reverse transcription-Polymerase chain reaction. Plant Dis 84:559–561

    Article  CAS  Google Scholar 

  • Gillaspie AG Jr, Pio-Ribeiro G, Andrade GP, Pappu HR (2001) RT-PCR detection of seed-borne cowpea aphid-borne mosaic virus in peanut. Plant Dis 85:1181–1182

    Article  CAS  Google Scholar 

  • Gil-Salas FM, Colyer A, Boonham N, Cuadrado IM, Janssen D (2009) Resistance screening against cucumber vein yellowing virus using a reatime (Taqman) RT-PCR assay in cucumber (Cucumis sativas). Crop Prot 28:109–112

    Article  CAS  Google Scholar 

  • Glasa M, Malinowski T, Predajna L, Pupola N, Dekena D, Michalczuk L, Candresse T (2011) Sequence variability recombination analysis and specific detection of the W strain of plum pox virus. Phytopathology 101:980–985

    Article  PubMed  CAS  Google Scholar 

  • Golnaraghi AR, Shahraeen N, Pourrahim R, Farzadfar Sh, Ghasemi A (2004) Occurrence and relative incidence of viruses infecting soybeans in Iran. Plant Dis 88:1069–1074

    Article  Google Scholar 

  • Goncalves MC, Klerks MM, Verbeek M, Vega J, van den Heuvel JFJM (2002) The use of molecular beacons combined with NASBA for the sensitive detection of sugarcane yellow leaf virus. Eur J Plant Pathol 108(5):401–407

    Google Scholar 

  • Goncalves MC, Pinto LR, Souza SC, Landell MGA (2012) Virus diseases of sugarcane: a constant challenge to sugarcane breeding in Brazil. Funct Plant Sci Biotech 6(Special Issue 2):108–116 (Global Science Books)

    Google Scholar 

  • Gopal K, Sudarsan S, Gopi V, Naidu LN, Ramaiah M, Sreenivasulu Y, Wesley E (2009) Detection of Huanglongbing (Citrus Greening) Disease by Nucleic Acid Spot Hybridization. Z Naturforsch 64c: 711–716

    Google Scholar 

  • Gori M, Monnani R, Buiatti M, Goti E, Carnevale S, Da Prota L, Bertaccini A, Biriclti S (2007) Establishing a real-time PCR detection procedure of “flavescence doree” and “bois noir” phytoplasmas for mass screening. Bull Insectology 60:255–256

    Google Scholar 

  • Gribnau TCJ, Roeles F, Van De Biezen J, Leuverling J, Schuurs A (1982) The application of colloidal dye particles as label immunoassays: disperse dye immunoassay (DIA). In: Gribnam TCJ, Visser J, Nivard RJF (eds) Affinity chromatography and related techniques. Elsevier, Amsterdam, pp 411–424

    Google Scholar 

  • Gribnau T, van Sommeren A, van Dinther F (1983) DIA—Disperse dye immunoassay. In: Chaiken I, Wilchek M, Parikh I (eds) Affinity chromatography and biological recognition. Academic Press Inc., New York, pp 375–380

    Chapter  Google Scholar 

  • Gupta KN, Buddi P, Arya M, Pant RP, Gopal K, Baranwal VK (2007) Simultaneous detection of Citrus mosaic virus and Indian citrus ringspot virus by duplex polymerase chain reaction. Abstracts of the papers presented at the international conference of Indian Virological Society held at IARI, New Delhi, India, 11–14 Dec 2007

    Google Scholar 

  • Gusenleitner J (1985) Seed testing for lettuce mosaic virus. Pflanzenschutz, No. 8, 9 (RPP 482, 1986)

    Google Scholar 

  • Haack I (1990) Detection of seed transmissible viruses in seeds of faba beans and peas by means of ELISA. Archiv Phytopath, Phytopathology Schurtz 26:337–342

    Article  CAS  Google Scholar 

  • Hadidi A (1995) Sensitive detection of apple chlorotic leafspot virus from infected apple or peach tissue using RT-PCR, IC-RT-PCR or multiplex IC-RT-PCR. Acta Hort 386:51–62

    Google Scholar 

  • Hadidi A, Barba M (2008) DNA microarrays: 21st century pathogen detection. Acta Hort 781:331–339

    CAS  Google Scholar 

  • Hadidi A, Yang X (1990) Detection of pome fruit viroids by enzymatic cDNA amplification. J Virol Methods 30:261–270

    Article  PubMed  CAS  Google Scholar 

  • Hadidi A, Hansen AJ, Parish CL, Yang X (1991) Scar skin and dapple apple viroids are seed borne and persistant in infected apple trees. Res Virol 142:289–296

    Article  PubMed  CAS  Google Scholar 

  • Hadidi A, Terai Y, Powell CA, Scott SW, Desvignes JC, Ibrahim LM, Levy L (1992) Enzymatic cDNA amplification of hop stunt viroid variants from naturally infected fruit crops. Acta Horticulhlrae 309:339–344

    Google Scholar 

  • Hadidi A, Montasser MS, Levy L, Goth RW, Converse RH, Madkour MA, Skrzeckowski LJ (1993) Detection of potato leafroll and strawberry mild yellow edge luteoviruses by reverse transcription-polymerase chain reaction amplification. Plant Dis 77:595–601

    Article  CAS  Google Scholar 

  • Hadidi A, Levy L, Podleckis EV (1995) Polymerase chain reaction technology in plant pathology. In: Singh RP, Singh US (eds) Molecular methods in plant pathology. CRC Press, Boca Raton, pp 167–187

    Google Scholar 

  • Hadidi A, Giunchedi L, Shamloul AM, Poggi-Pollini C, Amer MA (1997) Occurrence of peach latent mosaic viroid in stone fruits and its transmission with contaminated blades. Plant Dis 81:154–158

    Article  CAS  Google Scholar 

  • Hadidi A, Czosnek H, Barba M (2004) DNA microarrays and their potential applications for the detection of plant viruses, viroids and phytoplasmas. J Plant Pathol 86:97–104

    CAS  Google Scholar 

  • Hagita T, Tamada T (1984) Detection of bean common mosaic virus in French bean seeds by immuno electron microscopy. Bull Hokkaido Prefect Agric Exp Stn 51:83–93

    Google Scholar 

  • Haible D, Kober S, Jeske H (2006) Rolling circle amplification revolutionizes diagnosis and genomics of geminiviruses. J Virol 135:9–16

    CAS  Google Scholar 

  • Hamilton RI (1964) Serodiagnosis of barley stripe mosaic facilitated by detergent. Phytopathology 54:1290–1291

    Google Scholar 

  • Hamilton RI (1965) An embryo test for detecting seed-borne barley stripe mosaic virus in barley. Phytopathology 55:798–799

    Google Scholar 

  • Hamilton RI, Nichols C (1978) Serological methods for detection of pea seed-borne mosaic virus in leaves and seeds of Pisum sativum. Phytopathology 68:539–543

    Article  Google Scholar 

  • Hampton RO, Francki RIB (1992) RNA-1 dependent seed transmissibility of cucumber mosaic virus in Phaseolus vulgaris. Phytopathology 82:127–130

    Article  CAS  Google Scholar 

  • Hampton R, Ball E, De Boer S (1990) Serological methods for detection and identification of viral and bacterial plant pathogens. APS Press, St. Paul 389 pp

    Google Scholar 

  • Hampton RO, Albrechtsen SE, Mathur SB (1992) Seed health (viruses) of vigna unguiculata selections from developing countries. Seed Sci Technol 20:23–38

    Google Scholar 

  • Hao NB, Albrechtsen SE, Nicolaisen M (2001) Detection and identification of the blackeye cowpea mosaic strain of bean common mosaic virus in seeds of Vigna unguiculata sspp from North Vietnam. Aust Plant Pathol 32:505–509

    Article  Google Scholar 

  • Harding RM (2008) Taro bacilliform virus. In: Paul Khurana SM, Lenardon S, Rao GP (eds) Plant pathogens series: characterization, diagnosis and management of plant viruses. Studium Press, Houston, pp 341–347

    Google Scholar 

  • Hareesh PS, Bhat AI (2010) Seed transmission of Piper yellow mottle virus in black pepper (Piper nigrum L.). J Plant Crops 38:62–65

    Google Scholar 

  • Harper K, Creamer R (1995) Hybridization detection of insect-transmitted plant viruses with digoxigenin-labeled probes. Plant Dis 79:563–567

    Google Scholar 

  • Harper G, Ganesh D, Thottappilly G, Hull R (1999a) Detection of episomal banana streak badna virus by IC-PCR. Virol Methods 79:1–8

    Article  CAS  Google Scholar 

  • Harper G, Osuji J, Heslop-Harrison JS, Hull R (1999b) Integration of banana streak badnavirus into the Musa genome: molecular and cytogenic evidence. Virology 255:207–213

    Article  PubMed  CAS  Google Scholar 

  • Harper G, Hart D, Moult S, Hull R (2002) Detection of Banana streak virus in field samples of banana from Uganda. Ann Appl Biol 141:247–257

    Article  Google Scholar 

  • Harrison BD, Muniyappa V, Swanson MM, Roberts IM, Robinson DJ (1991) Recognition and differentiation of seven whitefly-transmitted geminiviruses from India, and their relationships to African cassava mosaic and Thailand mung bean yellow mosaic viruses. Ann Appl Biol 118(2):299–308

    Article  Google Scholar 

  • Harrison BD, Liu YL, Zhou X, Robinson DJ, Calvert L, Munoz C, Otim-Nape GW (1997) Properties, differentiation and geographical distribution of geminiviruses that cause cassava mosaic disease. Afr J Root Tuber Crops 2:19–22

    Google Scholar 

  • Hassan M, Polak J, Paprstein F (2008a) Detection and distribution of four pome fruit viruses in germplasm collection in the Czech Republic. Acta Horticulturae 781:113–118

    CAS  Google Scholar 

  • Hassan M, Rysanek P, Alioto D, Malfitano M (2008b) Identification and molecular characterization of peach latent mosaic viroid isolate infecting peach in Egypt. Acta Horticulturae 781:551–556

    CAS  Google Scholar 

  • Heide M, Lange L (1988) Detection of potato leaf roll virus and potato viruses M, S, X and Y by dot immunobinding on plain paper. Potato Res 31:367–373

    Google Scholar 

  • Helias V, Jacquot E, Gullet M, Le Hingrat Y, Giblot-Ducray D (2003) Production of recombinat Potato mop top virus coat protein in escherichia coli and generation of antisera recognizing native virus protein. J Virol Methods 110:91–97

    Article  PubMed  CAS  Google Scholar 

  • Hema M, Venkatramana M, Savithri HS, Sreenivasulu P (1999) Biological, antigenic and genomic relationships among the virus isolates causing mosaic disease of sugarcane in South India. Curr Sci 77(5):698–702

    CAS  Google Scholar 

  • Hema M, Kirthi N, Sreenivasulu P, Savithri HS (2003) Development of recombinant coat protein antibody based IC-RT-PCR for detection and discremination of sugarcane streak mosaic virus isolates from Southern India. Arch Virol 148:1185–1193

    Article  PubMed  CAS  Google Scholar 

  • Hema M, Subba Reddy ChV, Savithri HS, Sreenivasulu P (2008) Sugarcane streak mosaic virus (chap 5). In: Rao GP, Paul Khurana SM, Lenardon SL (eds) Characterization, diagnosis and management of plant viruses. Industrial crops, vol I. Studium Press LLC, Houstan, pp 145–168

    Google Scholar 

  • Hemalatha V, Pradnya G, Anjali AK, Krishnareddy M, Savithri HS (2008) Monoclonal antibodies to the recombinant nucleocapsid protein of a Groundnut bud necrosis virus infecting tomato in Karnataka and their use in profiling the epitopes of Indian tospovirus isolates. Curr Sci 95:952–957

    Google Scholar 

  • Herranz MC, Sanchez-Navarro JA, Aparicio F, Pallas V (2005) Simultaneous detection of six stone fruit viruses by non-isotopic molecular hybridization using a unique riboprobe or ‘polyprobe’. J Virol Methods 124:49–55

    Article  PubMed  CAS  Google Scholar 

  • Hibino H, Kimura I (1982) Detection of rice ragged stunt virus in insect vectors by Enzyme-linked immunosorbent assay. Phytopathology 72:656–659

    Article  CAS  Google Scholar 

  • Hide M, Tsutsui T, Sato H, Nishimura T, Morimoto K, Yamamoto S, Yoshizato K (2002) Real-time analysis of ligand-induced cell surface and intracellular reactions of living mast cells using a surface plasmon resonance-based biosensor. Anal Biochem 302:28–37

    Article  PubMed  CAS  Google Scholar 

  • Hill JH (1981) Importance and detection of soybean mosaic virus in seed. Iowa Seed Sci 3:8–10

    Google Scholar 

  • Hill JH, Durand DP (1986) Soybean mosaic virus In: Bergmeyer HU, Bergmeyer J, Grassl M (eds) Methods in enzyme analysis Antigens and Antibodies, vol II, 3rd edn. Verlags gessellschaft mbll, Wemheim, pp 455–475

    Google Scholar 

  • Hill JH, Martinson CA, Russell WA (1974) Seed transmission of maize dwarf mosaic and wheat streak mosaic viruses in maize and response to inbred lines. Crop Sci 14:232–235

    Article  Google Scholar 

  • Hinrichs J, Berger S, Shaw JG (1997) Induction of antibodies to plant viral proteins by DNA-based immunization. J Virol Methods 66:195–202

    Article  PubMed  CAS  Google Scholar 

  • Hoa NV, Ahlawat YS (2004) Characterisation of four isolates of Indian citrus ringspot virus. Indian Phytopathol 57(3):296–302

    Google Scholar 

  • Hobbs HA, Reddy DVR, Rajeswari R, Reddy AS (1987) Use of direct antigen coating and protein A coating of ELISA procedures for detection of three peanut viruses. Plant Dis 71:747–749

    Article  Google Scholar 

  • Holland PM, Abramson RD, Watson R, Gelfand DH (1991) Detection of specific polymerase chain reaction product by utilizing the 5′-3′ exonuclease activity of Thermus aquaticus DNA polymerase. Proc Natl Acad Sci U S A 88:7276–7280

    Article  PubMed  CAS  Google Scholar 

  • Holmes FO (1939) Handbook of phytopathogenic viruses. Burgess, Minneapolis

    Google Scholar 

  • Homola J (2003) Present and future of surface plasmon resonance biosensors. Anal Bioanal Chem 377:528–539

    Article  PubMed  CAS  Google Scholar 

  • Hooftman R, Arts MJ, Shamloul AM, Van Zaayen A, Hadidi A (2001) Detection of chrysanthemum stunt viroid by reverse transcription-polymerase chain reaction and by tissue blot hybridization. Acta Hort 432:88–94

    Google Scholar 

  • Horn NM, Saleh N, Baladi Y (1991) Cowpea mild mottle virus could not be detected by ELISA in soybean and groundnut seeds in Indonesia. Neth J Plant Pathol 91:125–127

    Article  Google Scholar 

  • Horn NM, Reddy SV, van den Heuvel JFJM, Reddy DVR (1996) Survey of chickpea (cicer arietinum L.) for chickpea stunt disease and associated viruses in India and Pakistan. Plant Dis 80:286–290

    Article  Google Scholar 

  • Hosseini S, Mosahebi GH, Habibi MK, Okhovvat SM (2007) Characterization of the Zucchini yellow mosaic virus from squash in Tehran Province. J Agric Sci Technol 9:137–143

    Google Scholar 

  • Hren M, Boben J, Rotter A, Kralj P, Gruden K, Ravnikar M (2007) Real-time PCR detection systems for flavescence doree and Bois noir phytoplasmas in grape vine: comparison with conventional PCR detection and application in diagnosis. Plant Pathol 56:785–796

    Article  CAS  Google Scholar 

  • Hsu HT, Lawson RH (1991) Direct tissue blotting for detection of tomato spotted wilt virus in Impatiens. Plant Dis 75:292–295

    Article  CAS  Google Scholar 

  • Hu JS, Wang M, Maixner M, Gonsalves D (1991) Mechanical transmission and characterization of a closterovirus from a grapevine leafroll diseased grapevine. In: Proceedings of 10th Meeting of ICVG, Volos, Greece, p 411

    Google Scholar 

  • Hu JS, Li HP, Barry K, Wang M (1995) Comparison of dot blot, ELISA and RT-PCR assays for the detection of two cucumber mosaic virus isolates infecting banana in Hawaii. Plant Dis 79:902–906

    Article  CAS  Google Scholar 

  • Hu JS, Wang M, Sether D, Xie W, Leonhardt KW (1996) Use of polymerase chain reaction (PCR) to study transmission of banana bunchy top virus by the banana aphid (Pentalonia nigronervosa). Ann Appl Biol 128:55–64

    Article  CAS  Google Scholar 

  • Hu Y, Feldstein PA, Hammond J, Hammond RW, Bottino PJ, Owens RA (1997) Destabilization of potato spindle tuber viroid by mutations in the left terminal loop. J Gen Virol 78:1199–1206

    PubMed  CAS  Google Scholar 

  • Hu WW, Wong SM (1998) The use of DIG-labelled cRNA probes for the detection of Cymbidium mosaic potexvirus (CymMV) and Odontoglossum ring spot tobamovirus (ORSV) in orchids. J Virol Methods 70:193–199

    Google Scholar 

  • Huang KS, Lee SE, Yeh Y, Shen GS, Mei E, Chang CM (2010) Taqman real-time quantitative PCR for identification of western flower thrip (Frankliniella occidentalis) for plant quarantine. Biol Lett 6(4):555–557

    Google Scholar 

  • Hull R (1993) Nucleic acid hybridization procedures. In: Matthews REF (ed) Diagnosis of plant virus diseases. CRC Press, Boca, Raton, pp 253–272

    Google Scholar 

  • Hull R (2002) Matthews’ plant virology, 4th edn. Academic Press, San Diego

    Google Scholar 

  • Hurtt SS, Podleckis EV (1995) Apple scar skin viroid is not seed transmitted or transmitted at a low rate in oriental pear. Acta Hortic 386:544–547

    Google Scholar 

  • Huth W (1988) Use of ELISA for detection of barley stripe mosaic virus in barley seeds. Nachrichtenblatt des Deutschen Pflanzenschutzdienstes 40(8–9):128–132

    Google Scholar 

  • Inoue T, Murai T, Natsuaki T (2010) An effective system for detecting Iris yellow spot virus transmission by Thrips tabaci. Plant Pathol 59:422–428

    Article  Google Scholar 

  • Ipach U, Altmayer B, Eichhorn KW (1992b) New detection method for arabis mosaic virus using polymerase chain reaction (PCR). Mitt Biol Bundesanstalt, f Lund-u Forstwirtscaft Berlin-Dahlem 283:222

    Google Scholar 

  • Ito T, Ieki H, Ozaki K (2002) Simultaneous detection of six citrus viroids and apple stem grooving virus from citrus plants by multiplex reverse transcription polymerase chain reaction. J Virol Methods 106:235–239

    Article  PubMed  CAS  Google Scholar 

  • Ivars P, Alonso M, Borja M, Hernandez C (2004) Development of a non-radioactive dot-blot hybridisation assay for the detection of Pelargonium flower break virus and Pelargonium line pattern virus. Eur J Plant Pathol 110:275–283

    Article  CAS  Google Scholar 

  • Iwai H, Ito T, Sato K, Wakimoto S (1985) Distribution pattern of soybean mosaic virus strains B and D in soybean seeds at different growth stages. Ann Phytopathol Soc Jpn 51:475–481

    Article  Google Scholar 

  • Iwaki M (1986) Soybean crinkle leaf and cowpea mild mottle viruses. International symposium on virus diseases of rice and leguminous crops in the tropics, pp 92-100

    Google Scholar 

  • Jacobi V, Bachand GD, Hamelin RC, Castello JD (1998) Development of a multiplex immunocapture RT-PCR assay for detection of tomato and tobacco mosaic tobamoviruses. J Virol Methods 74:167–178

    Article  PubMed  CAS  Google Scholar 

  • Jafarpour B, Shepherd RJ, Gorgan RG (1979) Serological detection of bean common mosaic and lettuce mosaic viruses in seed. Phytopathology 69:1125–1129

    Article  Google Scholar 

  • Jagadish MN, Ward CW, Gough KH, Tulloch PA, Whittaker LA, Shwkla DD (1991) Expression of potyvirus coat protein in Escherichia coli and yeast and its assembly into virus-like particles. J Gen Virol 72:1543–1550

    Article  PubMed  CAS  Google Scholar 

  • Jain RK, Pappu HR, Culbreath AK, Pappu SS, Todd JW (1997) Detection of tomato spotted wilt tospovirus infection of groundnut by immunocapture RT-PCR. Int Arachis News 17:38–39

    Google Scholar 

  • Jain RK, Pappu HR, Pappu SS, Krishnareddy M, Vani A (1998a) Watermelon bud necrosis tospovirus is a distinct virus species belonging to sero group IV. Arch Virol 143:1637–1644

    Article  PubMed  CAS  Google Scholar 

  • Jain RK, Pappu SS, Pappu HR, Culbreath AK, Todd JW (1998b) Molecular diagnosis of Tomato spotted wilt tospo virus infection of peanut and other field and greenhouse crops. Plant Dis 82:900–904

    Article  CAS  Google Scholar 

  • Jain RK, Pappu HR, Pappu SS, Varma A, Ram RD (1998c) Molecular characterization of papaya ringspot potyvirus isolates from India. Ann Appl Biol 132:413–425

    Article  CAS  Google Scholar 

  • Jain RK, Bhat AI, Byadgi AS, Nagaraju HS, Halkeri AV, Hanahosur KH, Varma A (2000) Association of a tospovirus with sunflower necrosis disease. Curr Sci 79:1703–1705

    Google Scholar 

  • Jain RK, Pandey NA, Krishnareddy M, Mandal B (2005) Immunodiagnosis of groundnut and watermelon bud necrosis viruses using polyclonal antiserum to recombinant nucleocapsid protein of Groundnut bud necrosis virus. J Virol Methods 130:162–164

    Google Scholar 

  • James D, Jelkmann W, Upton C (1999) Specific detection of Cherry mottle leaf virus using digoxigenin-labeled cDNA probes and RT-PCR. Plant Dis 83:235–239

    Google Scholar 

  • James AP, Fowler AR, Hekmeijer S, Braithwaite KS, Whittle PJL, Smith GR (2001) Implementation of molecular assays for the routine screening of quarantined germplasm. In: Hogarth DM (ed) Proceedings of the 24th international society of sugarcane technologists congress, vol II. ASSCT, Brisbane, pp 604–606

    Google Scholar 

  • James AC, Peraza-Echeverria S, Herrera-Valencia V, Martinez O (2004) Application of the amplified fragment length polymorphism (AFLP) and the methylation sensitive amplification polymorphism (MSAP) techniques for the detection of DNA polymorphisms and changes in DNA methylation in micropropagated bananas. In: Jain SM, Swennen R (eds) Banana improvement, cellular, molecular biology, and induced mutations. Science Publishers, Inc., Enfield, pp 287–305

    Google Scholar 

  • James D, Varga A, Pallas V, Candresse T (2006) Strategies for simultaneous detection of multiple plant viruses. Can J Plant Pathol 28:16–29

    Article  CAS  Google Scholar 

  • James AP, Geijskes RJ, Dale JL, Harding RM (2011a) Development of a novel rolling-circle amplification technique to detect Banana streak virus that also discriminates between integrated and episomal virus sequences. Plant Dis 95:57–62

    Article  CAS  Google Scholar 

  • James AP, Geijskes RJ, Dale JL, Harding RM (2011b) Molecular characterization of six badna virus species associated with leaf streak disease of banana in East Africa. Ann Appl Biol 158:346–353

    Article  CAS  Google Scholar 

  • Jan AT, Azam M, Mohiuddin K, Warsi MK, Ali A, Haq QMR (2012) Technical advancement in plant virus diagnosis—an appraisal. Arch Phytopathol Plant Prot 45:909–921

    Article  CAS  Google Scholar 

  • Janse JD (2005) Standardization, validation and approval of test methods for quarantine bacteria: examples of harmonization in plant health laboratories in Europe. Phytopathol Polonica 35:19–27

    Google Scholar 

  • Jarosova J, Gadiou S, Kumar JK (2010) Real-time RT-PCR quantitative analysis of plant viruses in stone fruit tissues. Julius-Kuhn-Archiv 427:61–64

    Google Scholar 

  • Jensen SG, Wysong DS, Ball EM, Highley PM (1991) Seed transmission of maize chlorotic mottle virus. Plant Dis 75:497–498

    Article  Google Scholar 

  • Jeyanandarajah P (1992) Seed-borne viruses infecting three important leguminous crops in Srilanka. Seed Sci Technol 20:629–641

    Google Scholar 

  • Jin D, Cheng J, Huang T, Zheng X, Wu Y (2012) A multiplex reverse transcription PCR assay for simultaneous detection of five tobacco viruses in tobacco plants. J Virol Methods 183:57–62

    Article  CAS  Google Scholar 

  • Jones RAC, Torrance L (1985) Developments and applications in virus testing. Association of Applied Biologists (AAB), Wellesbourne, pp 1–300

    Google Scholar 

  • Jones RAC, Coutts BA, Mackie AE, Dwyer GI (2005) Seed transmission of wheat streak mosaic virus shown unequivocally in wheat. Plant Dis 89:1048–1050

    Article  Google Scholar 

  • Jordan R, Hammond J (1991) Comparison and differentiation of potyvirus isolates and identification of strain-, virus-, subgroup-specific and potyvirus group-common epitopes using monoclonal antibodies. J Gen Virol 72:25–36

    Article  PubMed  Google Scholar 

  • Joseph J, Savithri HS (1999) Determination of 3V-terminal nucleotide sequence of pepper vein banding virus RNA and expression of its coat protein in Escherichia coli. Arch Virol 144(9):1679–1687

    Article  PubMed  CAS  Google Scholar 

  • Joshi R, Kumar V, Dasgupta I (2003) Detection of molecular variability in rice tungro bacilliform viruses from India using polymerase chain reaction-restriction fragment length polymorphism. J Virol Methods 109:89–93

    Article  PubMed  CAS  Google Scholar 

  • Karan M, Harding RM, Dale JL (1994) Evidence for two groups of banana bunchy top virus isolates. J Gen Virol 75:3541–3546

    Article  PubMed  CAS  Google Scholar 

  • Karande AA, Savithri HS, Khurana SMP (1998) Monoclonal antibodies—production and application for the detection and diagnosis of potato viruses. In: Khurana SMP, Chandra R, Upadhya MD (eds) Comprehensive potato biotechnology. Malhotra Publishing House, New Delhi, pp 163–186, 352 p

    Google Scholar 

  • Karunakaran S, Ramiah M, Samiyappan R, Velazhahan R, Merin Babu RA, Sindhu RV (2008) Illarvirus from cowpea. In: Rao GP, Lava Kumar P, Ramon JHP (eds) Characterization, diagnosis and management of plant viruses, vol 3: Vegetables and pulse crops. Studium Press LLC, Houstan, pp 259–277

    Google Scholar 

  • Kashif M, Pietila S, Artola K, Jones RAC, Tugume AK, Makinen V, Valkonen JPT (2012) Detection of viruses in sweetpotato from Honduras and Guatemala augmented by deep-sequencing of small-RNAs. Plant Dis 96:1430–1437

    Article  CAS  Google Scholar 

  • Katoch M, Raja Ram Zaidi AA, Garg ID (2002) Status of Bean yellow mosaic virus on gladiolus. Crop Prot 21:861–865

    Article  Google Scholar 

  • Kato-maeda M, Gao Q, Small PM (2001) Microarray analysis of pathogens and their interaction with hosts. Technorev Cell Microb 3:713–719

    Article  CAS  Google Scholar 

  • Kaushal N, Gawande SJ, Kaundel P, Garg ID (2007) Reverse transcriptase polymerase chain reaction (RT-PCR) based detection of PVS0 and PVSa strains by using degenerate primers. Potato J 34:85–86

    Google Scholar 

  • Kawai A, Kimura S, Nishio T, Nagao N (1985) Detection for cucumber green mottle mosaic virus in cucumber seeds using Enzyme-linked immunosorbent assay. Res Bull Plant Prot Serv, Jpn 21:47–53

    Google Scholar 

  • Khan MA, Slack SA (1978) Studies of the sensitivity of a latex agglutination test for the serological detection of potato virus S and Potato virus X in Wisconsin. Am Potato J 55:627–637

    Article  Google Scholar 

  • Khan MA, Slack SA (1980) Detection of Potato virus S and X in dormant potato tubers by the latex agglutination test. Am Potato J 57:213–218

    Article  Google Scholar 

  • Khan JA, Sohrab S, Aminuddin A (2003) Guar leaf curl disease from India is caused by Tomato leaf curl virus. New Dis Rep 7:18

    Google Scholar 

  • Khan S, Timmermann C, Hoque MI, Sarker RH, Muhlbach HP (2009) Detection of potato spindle tuber viroid (PSTVd) in minute amounts of potato (Solanum tuberosum L.) leaf tissue by hybridization techniques and, together with potato viruses, by multiplex RT-PCR. J Plant Dis Prot 116:97–105

    CAS  Google Scholar 

  • Khatab Eman AH, Zein Salwa N, Ahmed Amal A (2012) Purification, serology and prevalence of Broad bean true mosaic comovirus (BBTMV). Int J Virol 8:224–233

    Article  Google Scholar 

  • Kheder MA, Eppler A (1988) Seed borne viruses in locally produced pea seeds from the A.R of Egypt. Med Fac Land bouw Rijksuniv 53/2a:449–459

    Google Scholar 

  • Khetarpal RK, Maury Y (1990) Seed transmission of pea seed-borne mosaic virus in peas: early and late expression of the virus in the progeny. J Phytopathol 129:265–270

    Article  Google Scholar 

  • Khetarpal RK, Chalam VC, Prasada Rao RDVJ, Varaprasad KS (2006) Transboundary movement of plant viruses and their potential spread threat by native vectors: implications under WTO regime. International symposium on management of vector-borne viruses, Feb 7–10 (2006) International Crop Research Institute for the Semi-Arid Tropics. Patancheru, India, pp 31–32

    Google Scholar 

  • Khetarpal RK, Prakash DB, Singh S, Nath R (1992) ELISA detection of Soybean mosaic virus in testas, embryos and seedlings from mottled and unmottled seeds of imported soybean germplasm. Indian J Virol 8:106–110

    Google Scholar 

  • Khetarpal RK, Prakash DB, Singh S, Ramnath JRK, Varma A (1994) Bean common mosaic virus detection by DAC-indirect ELISA in exotic Phaseolus bulgaris L. Indian J Virol 10:13–16

    Google Scholar 

  • Khetarpal RK, Singh S, Parakh DB, Mawrya AK, Celia Chalam V (2001) Viruses intercepted in exotic germplasm during 1991–2000 in quarantine. Indian J Plant Genet Resour 14:127–129

    Google Scholar 

  • Khurana SMP, Garg ID (1993) New techniques for detection of viruses and viroids. In: Chadha KL, Grewal JS (eds) Advances in horticulture: Potato, vol 7. Malhotra Publishing House, New Delhi, pp 529–566

    Google Scholar 

  • Khurana SMP, Garg ID, Singh MN, Kumar S (1993) Storage and preservation affect immune electron microscopy of flexuous potato viruses. Asian Potato J 3:33–36

    Google Scholar 

  • Kierks MM, Leone GO, Verbeek M, van den Heuvel JF, Schoen CD (2001) Development of a multiplex AmpliDet RNA for the simultaneous detection of Potato leafroll virus and Potato virus Y in potato tubers. J Virol Methods 93:115–125

    Article  Google Scholar 

  • Kim HR, Lee SH, Lee DH, Kim JS, Park JW (2006) Transmission of apple scar skin viroid by grafting, using contaminated pruning equipment, and planting infected seeds. Plant Pathol J 22:63–67

    Google Scholar 

  • Kinard GR, Scott SW, Barnett OW (1996) Detection of apple chlorotic leaf spot and apple stem grooving virus using RT-PCR. Plant Dis 80:616–621

    Article  CAS  Google Scholar 

  • Kiranmai G, Sreenivasulu P, Nayudu MV (1996) Comparison of three different tests for detection of cucumber mosaic cucumovirus (CMV) in banana (Musa paradisiaca). Curr Sci 71:764–767

    CAS  Google Scholar 

  • Kitazima EW (2004) Electron microscopy in plant virology: past, present and future. Microsc Microanal 10(suppl-2):212–213

    Google Scholar 

  • Klein RE, Wyatt SD, Kaiser WJ, Mink GI (1992) Comparative immuno assays of bean common mosaic virus in individual bean Phaseolus seed and bulked bean seed samples. Plant Dis 76:57–59

    Article  Google Scholar 

  • Klerks MM, Leone G, Lindner JL, Schoen CD, van den Heuvel JFJM (2001) Rapid and sensitive detection of Apple stem pitting virus in apple trees through RNA amplification and probing with fluorescent molecular beacons. Phytopathology 91:1085–1091

    Article  PubMed  CAS  Google Scholar 

  • Knapp E, da Camara Machado A, Pohringer H, Wang Q, Hanzer V, Weiss H, Weiss B, Katinger H, Laimer da Camara Machado M (1995) Localisation of fruit tree viruses by immuno tissue printing in infected shoots of Malus and Prunus sp. J Virol Methods 55:157–173

    Article  PubMed  CAS  Google Scholar 

  • Koenig R, Paul HL (1982) Variants of ELISA in plant virus diagnosis. J Virol Methods 5:113–125

    Article  PubMed  CAS  Google Scholar 

  • Koenig R, Fribourg CE, Jones RAC (1979) Symptomatological, serological and electrophoretic diversity of isolates of Andean potato latent virus from different regions of Andes. Phytopathology 69:748–752

    Article  Google Scholar 

  • Koenig R, Lesemann DE, Adam G, Winter S (2008) Diagnostic techniques for plant viruses. Encycl Virol 2:18–28

    Article  Google Scholar 

  • Kohnen PD, Dougherty WG, Hampton RO (1992) Detection of Pea seed borne mosaic poty virus by sequence specific enzymatic amplification. J Virol Methods 37:253–258

    Article  PubMed  CAS  Google Scholar 

  • Kokkinos CD, Clark CA (2006) Real-Time PCR assays for detection and quantification of sweet potato viruses. Plant Dis 90:783–788

    Article  CAS  Google Scholar 

  • Kokko HI, Kivineva M, Karenlampi SO (1996) Single-step immunocapture RT-PCR in the detection of Raspberry bushy dwarf virus. Bio Techn 20:842–846

    CAS  Google Scholar 

  • Konate G, Neya BJ (1996) Rapid detection of cowpea aphid-borne mosaic virus in cowpea seeds. Ann Appl Biol 129:261–266

    Article  Google Scholar 

  • Konate G, Barro N, Fargette D, Swanson MM, Harrison BD (1995) Occurrence of whitefly transmitted geminiviruses in crops in Burkina Faso and their serological detection and differentiation. Ann Appl Biol 126:121–129

    Google Scholar 

  • Kopecky J, Moravcova K, Pidra M (2004) Isolation of viral RNA and identification of GFkV (grapevine fleck virus) by RT-PCR. Acta Virol 47:199–200

    Google Scholar 

  • Korimbocus J, Coates D, Barker I, Boonham N (2002) Improved detection of Sugarcane yellowleaf virus using a real-time fluorescent (TaqMan) RT-PCR assay. J Virol Methods 103:109–120

    Article  PubMed  CAS  Google Scholar 

  • Korschineck I, Himmler G, Sagl R, Steinkellner H, Katinger HW (1991) A PCR membrane spot assay for the detection of plum pox virus RNA in bark of infected trees. J Virol Methods 31:139–145

    Article  PubMed  CAS  Google Scholar 

  • Kositratana W, Weathers LG, Gumpi DJ (1986) Comparative sensitivity of three serological methods for plant virus detection. In: Proceedings of the first international conference on the impact of viral diseases on the development of Asian Countries. Prasant Thongcharoen and Edoward Krustak, pp 472–474

    Google Scholar 

  • Koubova V, Brynda E, Karasova L, Skvor J, Homola J, Dostalek J, Tobiska P, Rosicky J (2001) Detection of foodborne pathogens using surface plasmon resonance biosensors. Sens Actuators, B 74:100–105

    Article  CAS  Google Scholar 

  • Krell RK, Pedigo LP, Hill JH, Rice ME (2003) Potential primary inoculum sources of Bean pod mottle virus in Iowa. Plant Dis 87:1416–1422

    Article  Google Scholar 

  • Kreuziger DK, Lamprecht S, Martin RR, Jelkmann W (1995) Immunocapture polymerase chain reaction assay and ELISA for the detection of strawberry mild yellow edge associated potexvirus. Acta Hort 385:33–38

    Google Scholar 

  • Krishnareddy M (1989) Studies on yellow mosaic and leaf crinkle diseases of blackgram. PhD Thesis submitted to the P.G. School. IARI, New Delhi, India, pp 263

    Google Scholar 

  • Krishnareddy M, Varma A (1994) Immuno diagnosis of Black gram mottle virus and Blackgram mild mottle virus from blackgram (Vigna mungo L. Hepp). In: Rishi N, Ahuja KL, Singh BP (eds) Virology in the tropics. Malhotra Publishing House, New Delhi, pp 601–614, 769

    Google Scholar 

  • Krishnareddy M, Jalali S, Samuel DK (2003) Occurrence of fruit distortion mosaic disease of Okra in India. Plant Dis 87:1395

    Article  Google Scholar 

  • Krishnareddy M, Usha Rani R, Anilkumar KS, Madhavi Reddy K, Pappu HR (2008) Capsicum chlorosis virus (Genus Tospovirus) infecting chilli pepper Capsicum annuum in India. Plant Dis 92:469

    Article  Google Scholar 

  • Kruse M, Koenig R, Hoffmann A, Kaufmann A, Commandeur U, Solovyev AG, Savenkov I, Burgermeister W (1994) Restriction fragment length polymorphism analysis of reverse transcription-PCR products reveals the existence of two major strain groups of beet necrotic yellow vein virus. J Gen Virol 75:1835–1842

    Article  PubMed  CAS  Google Scholar 

  • Kuan C-P, Wu M-T, Lu Y-L, Huang H-C (2010) Rapid detection of squash leaf curl virus by loop-mediated isothermal amplification. J Virol Methods 169(1):61–65

    Article  PubMed  CAS  Google Scholar 

  • Kumar PL (2009) Methods of diagnosis of plant virus diseases: a laboratory mannual. IITA, Ibadan 90 pp

    Google Scholar 

  • Kumar PL, Sharma K (2010) DNA barcodes for pathogens of African food crops. R4D Review 4:51–53

    Google Scholar 

  • Kumar S, Srivastava A, Raj SK (2005) Molecular diagnosis of cucumber mosaic virus in chrysanthemum. Indian J Virol 16:16

    Google Scholar 

  • Kumar PL, Prasada Rao RDVJ, Reddy AS, Madhavi KJ, Anitha K, Waliyar F (2008) Emergence and spread of Tobacco streak virus menace in India and control strategies. Indian J Plant Prot 36:1–8

    Google Scholar 

  • Kumari SG, Makkouk KM, Katul L, Vetten HJ (2001) Polyclonal antibodies to the bacterially expressed coat protein of Faba bean nectrotic yellows virus. J Phytopathol 149:543–550

    Google Scholar 

  • Kumari SG, Makkouk KM, Altar N, Ghulam W, Lesemann D-E (2004) First report of Chickpea chlorotic dwarf virus infecting spring chickpea in Syria. Plant Dis 88:424

    Article  Google Scholar 

  • Kundu JK, Svoboda J, Polak J (2003) Detection of Apple stem grooving virus in different tissues of apple trees throughout the tear. Plant Protect Sci 39:93–96

    Google Scholar 

  • Kundu JK, Yoshikawa N (2008) Apple stem pitting virus. In: Rao GP, Myrta A, Ling K-L (eds) Characterization, diagnosis & management of plant viruses, vol 2., Horticultural Crops, Chapter 1. Studium Press, Houstan, pp 1–15

    Google Scholar 

  • Kunkalikar SR, Poojari S, Rajagopalan P, Zehr UB, Naidu RA, Kankanallu RS (2007) First report of Capsicum chlorosis virus in tomato in India. Plant Health Progress (online). doi:10.1094/PHP-2007-1204-01-BR

    Google Scholar 

  • Kunkalikar SR, Poojari S, Arun BM, Rajagopalan TA, Chen TC, Yeh SD, Naidu RA, Zehr UB, Ravi KS (2011) Importance and genetic diversity of vegetable-infecting tospoviruses in India. Phytopathology 101:367–376

    Article  PubMed  Google Scholar 

  • La YJ, Bak WC, Oh JH (1983) Immunochemical detection of soybean mosaic virus infections in the seeds of soybean cultivars in Korea. Korean J Plant Prot 22:26–29

    Google Scholar 

  • Ladhalakshmi D, Ramiah M, Ganapathy T, Krishnareddy M, Khabbaz SE, Karunakaran S, Kamalakannan A (2005) Occurrence of new necrosis viral disease of blackgram (Vigna mungo) and identification using electron microscopy and ELISA technique. Acta Phytopath Hungarica 40:213–223

    Article  Google Scholar 

  • Lafferty KJ, Oertelis S (1961) Attachment of antibody to influenza virus. Nature (London) 192:764

    Google Scholar 

  • Lakshmi V, Hallan V, Ram R, Ahmed N, Zaidi AA, Varma A (2011) Diversity of Apple mosaic virus Isolates in India Based on Coat Protein and Movement Protein Genes. Indian J Virol 22(1):44–49

    Article  PubMed  Google Scholar 

  • Lange L (1986) The practical application of new developments in test procedures for the detection of viruses in seed. In: Jones RAC, Torrance L (eds) Developments and applications in virus testing. Lavenham Press, Sadbury, pp 269–281, 300 p

    Google Scholar 

  • Lange L, Heide M (1986) Dot immuno binding (DIB) for detection of virus in seed. Can J Plant Pathol 8:373–379

    Article  Google Scholar 

  • Lange L, Tien P, Begtrup J (1983) The potential of ELISA and ISEM in seed health testing. Seed Sci Technol 11:477–490

    Google Scholar 

  • Lange L, Jomantor A, Heide M (1989) Testing seeds for viruses dot immuno binding (BIB) directly on plain paper. Tidsskrift for planteavl 93:93–96

    Google Scholar 

  • Lapidot M (2002) Screening common bean (Phaseolus vulgaris) for resistance to Tomato yellow leaf curl virus. Plant Dis 86:429–432

    Google Scholar 

  • Lapidot M, Guenoune-Gelbart D, Leibman D, Holdengreber V, Davidovitz M, Machbash Z, Klieman-Shoval S, Cohen S, Gal-On A (2010) Pelargonium zonate spot virus is transmitted vertically via seed and pollen in tomato. Phytopathology 100:798–804

    Article  PubMed  CAS  Google Scholar 

  • Lareu M, Phillips C, Torres M, Brion M, Carracedo A (2003) Typing Y-chromosome single nucleotide polymorphisms with DNA microarray technology. Int Congr Ser 1239:21–25

    Article  CAS  Google Scholar 

  • Latvala Kilby S, Arura JM, Pupola N, Hannukkala A, JPT Valkonen (2009) Detection of potato mop-top virus in potato tubers and sprouts: combinations of RNA 2 and RNA 3 variants and incidence of symptomless infections. Phytopathology 99:519–531

    Article  PubMed  CAS  Google Scholar 

  • Le Provost G, Iskra-Caruana ML, Acina I, Teycheney PY (2006) Improved detection of episomal Banana streak viruses by multiplex immunocapture PCR. J Virol Methods 137:7–13

    Article  PubMed  CAS  Google Scholar 

  • Leamkhang S, Riangwong L, Chatchawankanphanich O (2005) Detection of tomato yellow leaf curl Thailand virus by PCR without DNA extraction. Mol Biotechnol 31:233–238

    Article  Google Scholar 

  • Lee LG, Connell CR, Bloch W (1993) Allelic discrimination by nic-translation PCR with fluoregenic probes. Nucleic Acids Res 21:3761–3766

    Article  PubMed  CAS  Google Scholar 

  • Lee GP, Min BE, Kim CS, Choi SH, Harn CH, Kim SU, Ryu KH (2003) Plant virus cDNA chip hybridization for detection and differentiation of four cucurbit-infecting Tobamoviruses. J Virol Methods 9; 110(1):19–24

    Google Scholar 

  • Lee BY, Lim HR, Choi JY, Ryu KH (2004) Development of molecular detection of three species of seed-transmissible viruses useful for plant quarantine. Plant Pathol J 20(4):312–317

    Google Scholar 

  • Lee SH, Lee DG, Woo HS, Lee KW, Kim DH (2006) Production of transgenic orchardgrass via Agrobacterium-mediated transformation of seed-derived callus tissues. Plant Sci 171:408–414

    Article  PubMed  CAS  Google Scholar 

  • Lee JS, Cho WK, Choi HS, Kim KH (2011a) RT-PCR detection of five quarantine plant RNA viruses belonging to poty- and tospoviruses. Plant Pathol J 27:291–296

    Article  CAS  Google Scholar 

  • Lee JS, Cho WK, Lee SH, Choi HS, Kim KH (2011b) Development of RT-PCR based method for detecting five non reported quarantine plant viruses infecting the family cucurbitaceae or solanaceae. Plant Pathol J 27:93–97

    Article  CAS  Google Scholar 

  • Leisova-Svobodova L, Karlova-Smekalova K (2011) Detection of garlic viruses using SYBR green real time reverse transcription-polymerase chain reaction. J Phytopathol 159:429–434

    CAS  Google Scholar 

  • Levy L, Hadidi A (1994) A simple and rapid method for processing tissue infected with plum pox potyvirus for use with specific 3′ non-coding region RT-PCR assays. EPPO Bull 24:595–604

    Article  Google Scholar 

  • Li RH, Zettler FW, Elliott MS, Petersen MA, Still PE, Baker CA, Mink GI (1991) A strain of Peanut mottle virus seed-borne in bambarra groundnut. Plant Dis 75:130–133

    Article  Google Scholar 

  • Li R, Salih S, Hurtt S (2004) Detection of geminiviruses in sweetpotato by polymerase chain reaction. Plant Dis 88:1347–1351

    Article  CAS  Google Scholar 

  • Li Li, Wang X, Zhou G (2007) Analysis of maize embryo invasion by sugarcane mosaic virus. Plant Sci 172:131–138

    Article  CAS  Google Scholar 

  • Ligat JS, Cartwright D, Randles JW (1991) Comparison of some Pea seed borne mosaic isolates and their detection of dot-immuno binding assay. Aust J Agric Res 42:441–451

    Article  CAS  Google Scholar 

  • Lima JAA, Purcifull DE (1980) Immunochemical and microscopical techniques for detecting blackeye cowpea mosaic and soybean mosaic viruses in hypocotyls of germinated seeds. Phytopathology 70:142–147

    Article  Google Scholar 

  • Lin NS, Chen YK, Hsu YH (1989) Immunological detection of Passion fruit Woodiness virus. Bot Bull Academia Sinica 30:31–37

    Google Scholar 

  • Lin NS, Hsu YH, Hsu HT (1990) Immunological detection of plant viruses and a mycoplasma-like organism by direct tissue blotting on nitrocellulose membranes. Phytopathology 80:824–828

    Article  CAS  Google Scholar 

  • Ling KS, Zhu HY, Petrovic N, Gonsalves D (2001) Comparative effectiveness of ELISA and RT-PCR for detecting grapevine leafroll-associated closterovirus-3 in field samples. Am J Enol Vitic 52:21–27

    CAS  Google Scholar 

  • Ling KS, Zhu HY, Gonsalves D (2008) Resistance to Grapevine leafroll-associated virus-2 is conferred by post-transcriptional gene silencing in transgenic Nicotiana benthamiana. Transgenic Res 17:733–740

    Article  PubMed  CAS  Google Scholar 

  • Lister RM (1978) Application of Enzyme-linked immunosorbent assay for detecting viruses in soybean seed and plants. Phytopathology 68:1393–1400

    Article  Google Scholar 

  • Lister RM, Carroll TW, Zaske SK (1981) Sensitive serologic detection of barley stripe mosaic virus in barley seed. Plant Dis 65:809–814

    Article  Google Scholar 

  • Liu Y, Cady NC, Batt CA (2007) A plastic microchip for nucleic acid purification. Biomed Microdevices 9:769–776

    Article  PubMed  CAS  Google Scholar 

  • Livak KJ, Flood SJA, Marmaro JK, Giusti W, Deetz K (1995) Oligonucleotides with fluorescent dyes at opposite ends provide a quenched probe system useful for detecting PCR product and nucleic acid hybridization. PCR Methods Appl 4:357–362

    Article  PubMed  CAS  Google Scholar 

  • Lockhart DJ, Dong H, Byrne MC, Follettie MT, Gallo MV, Chee MS, Mittmann M, Wang C, Kobayashi M, Horton H, Brown EL (1996) Expression monitoring by hybridisation to highdensity oligonucleotide arrays. Nat Biotechnol 14:1675–1680

    Article  PubMed  CAS  Google Scholar 

  • Lockhart BEL, Kirtisak KA, Jones P, Padmini DS, Olsziewski NE, Lockhart N, Nuarchan D, Sangalang J (1997) Identification of Piper yellow mottle virus a mealybug-transmitted badna virus infecting piper spp. in South East Asia. Eur J Plant Pathol 103:303–311

    Article  CAS  Google Scholar 

  • Loconsole G, Fatone MT, Savino V (2009) Specific digoxigenin-labelled riboprobes for detection of Citrus psorosis virus and Citrus variegation virus by molecular hybridization. J Plant Pathol 91(2):311–319

    CAS  Google Scholar 

  • Lopez MM, Cambra M (1996) Diagnostico de bacterias fitopatogenas. In: Llacer G, Lopez MM, Trapero A, Bello A (eds) Patologia Vegetal. SEF-M.V. Phytoma-Espana, Madrid, pp 587–625

    Google Scholar 

  • Lopez MM, Bertolini E, Olmos A, Caruso P, Gorris MT, Llop P, Penyalver R, Cambra M (2003) Innovative tools for detection of plant pathosenic viruses and bacteria. Int Microbiol 6(4):233–243

    Article  PubMed  CAS  Google Scholar 

  • Lopez MM, Bertolini E, Marco-Noales E, Llop P, Cambra M (2006) Update on molecular tools for detection of plant pathogenic bacteria and viruses. In: Fleming CC, Moore JE (eds) Molecular diagnostics: current. Horizon Bioscience, Wymondham, pp 1–46

    Google Scholar 

  • Lopez-Moya JJ, Cubero J, Lopez-Abella D, Diaz-Ruiz JR (1992) Detection of Cauliflower mosaic virus (CaMV) in single aphids by the polymerase chain reaction (PCR). J Virol Methods 37:129–138

    Article  PubMed  CAS  Google Scholar 

  • Lorenzen JH, Piche LM, Gudmestad NC, Meacham T, Shiel P (2006) A multiplex PCR assay to characterize Potato virus Y isolates and identify strain mixtures. Plant Dis 90:935–940

    Article  CAS  Google Scholar 

  • Louro D (1995) Use of tissue-print immunoassay for the practical diagnosis of tomato spotted wilt tospovirus. EPPO Bull 25(1–2):277–281

    Article  Google Scholar 

  • Loy A, Lehner A, Lee N, Adamczyk J, Meier H, Ernst J, Schleifer KH, Wagner M (2002) Oligonucleotide microarray for 16S rRNA genebased detection of all recognized lineages of sulfate-reducing prokaryotes in the environment. Appl Environ Microbiol 68:5064–5081

    Article  PubMed  CAS  Google Scholar 

  • Loy A, Schulz C, Lucker S, Schopfer-Wendels A, Stoecker K, Baranyi C, Lehner A, Wagner M (2005) 16S rRNA gene-based oligonucleotide microarray for environmental monitoring of the betaproteobacterial order “Rhodocyclales”. Appl Environ Microbiol 71:1373–1386

    Article  PubMed  CAS  Google Scholar 

  • Lundsgaard T (1976) Routine seed health testing for barley stripe mosaic virus in barley seeds using the latex-test. Z Pfl Krankh Pfl Schutz 83:278–283

    Google Scholar 

  • Lundsgaard T (1983) Immunosorbent electron microscopy in testing bean seed for bean common mosaic virus. Seed Sci Technol 11:515–521

    Google Scholar 

  • Lundsgaard T (1985) Indexing of a barley germplasm collection for presence of barley stripe mosaic virus. Z Pfl Krankh Pfl Schutz 92:320–321

    Google Scholar 

  • Lutting M, Manicom BQ (1999) Application of a highly sensitive Avacodo sunblotch viroid indexing method. S Afr Avocado Growers Assoc Yearb 22:55–60

    Google Scholar 

  • Mack M, Gruber R, Schmidt S, Riethmuller G, Kufer P (1997) Biological properties of a bispecific single-chain antibody directed against 17–1A (EpCAM) and CD3. J Immunol 158:3965–3970

    PubMed  CAS  Google Scholar 

  • Mackay IM, Arden KE, Nitsche A (2002) Survey and summary, realtime PCR in virology. Nucl Acid Res 30:1292–1305

    Article  CAS  Google Scholar 

  • Madhubala R, Bhadramurthy V, Bhat AI, Hareesh PS, Retheesh ST, Bhai RS (2005) Occurrence of Cucumber mosaic virus on vanilla (Vanilla planifolia Andrews) in India. J Biosci 30:339–350

    Article  PubMed  CAS  Google Scholar 

  • Mahgoub HA, Wipf Scheibel C, Delecolle B, Pitrat M, Dafalla G, Lecoq H (1997) Melon rugose mosaic virus: characterization of an isolate from Sudan and seed transmission in melon. Plant Dis 81:656–660

    Article  Google Scholar 

  • Makesh Kumar T, Anoop Sankar, Nair RR, Edison S (2005) Detection of Cassava mosaic virus in India: using polymerase chain reaction and nucleic acid hybridization technique. J Root Crops 31(1):1–6

    Google Scholar 

  • Makkouk K, Attar N (2003) Seed transmission of cucumber mosaic virus in Lentil seeds in Syria. Eighth Arab congress of plant protection, El-Beida, Libya (abstract)

    Google Scholar 

  • Makkouk KM, Azzam OI (1986) Detection of broad bean stain virus in lentil seed group. LENS Newsl 13(2):37–38

    Google Scholar 

  • Makkouk KM, Comeau A (1994) Evaluation of various methods for the detection of barley yellow dwarf virus by the tissue blot immunoassay and its use for virus detection in cereals inoculated at different growth stages. Eur J Plant Pathol 100:71–80

    Article  Google Scholar 

  • Makkouk KM, Kumari SG (1996) Detection of ten viruses by the tissue-blot immunoassae (TBIA). Arab J Plant Prot 14:3–9

    Google Scholar 

  • Makkouk K, Kumari S (2006a) Molecular diagnosis of plant viruses. Arab J Plant Prot 24(2):135–138

    Google Scholar 

  • Makkouk KM, Kumari SG (2006b) Molecular diagnosis of plant viruses. Arab J Plant Prot 24:135–138

    Google Scholar 

  • Makkouk KM, Bos L, Azzam OI, Katul L, Rizkallah A (1987) Broad bean strain virus: identification, detectability with ELISA in faba bean leaves and seeds. Occurrence in East Asia and North Africa and possible wild hosts. Neth J Plant Path 93:97–106

    Article  Google Scholar 

  • Makkouk KM, Kumari SG, Al-Daoud R (1992) Survey of virus affecting lentil (Lens culinaries Med) in Syria. Phytopathol Medit 31:188–190

    Google Scholar 

  • Makkouk KM, Hsu HT, Kumari SG (1993) Detection of three plant viruses by Dot-Blot and Tissue-Blot immunoassays using chemiluminescent and chromogenic substrates. J Phytopathol 139:97–102

    Article  CAS  Google Scholar 

  • Makkouk KM, Erskine W, Attar N (1997) Detection of seed-borne viruses in lentil mother plants as compared to harvested seeds. Lens Newsl 24:49–51

    Google Scholar 

  • Malathi VG, Varma A, Nambisan B (1988) Detection of Indian cassava mosaic virus by ELISA. Curr Sci 58:149–150

    Google Scholar 

  • Malinowski T (1997) Silicacapture-reverse transcription-polymerase chain reaction (SC-RT-PCR): application for the detection of several plant viruses. In: Dehne H-W (ed) Diagnosis and identification of plant pathogens. Kluwer Academic Publishers, Dordrecht, pp 445–448

    Chapter  Google Scholar 

  • Malorny B, Hoorfar J, Bunge C, Helmuth R (2003) Multicenter validation of the analytical accuracy of Salmonella PCR: towards an international standard. Appl Environ Microbiol 69:290–296

    Article  PubMed  CAS  Google Scholar 

  • Mangrauthia SK, Malathi P, Krishnaveni D, Reddy CS, Viraktamath BC, Balachandran SM, Neeraja CN, Biswal AK (2010) Rapid detection of Rice tungro spherical virus by RT-PCR and Dot-blot hybridization. J Mycol Plant Pathol 40:445–449

    CAS  Google Scholar 

  • Manju Sharma, Thakur PD, Dharmesh Gupta, Thakur AK (2013) Identification of viruses and screening of summer squash (Cucurbita pepo) germplasm against viral disease under controlled conditions. Indian J Agr Sci 83(4):426–430

    Google Scholar 

  • Manjunatha L (2008) Studies on bud blight disease of tomato caused by groundnut bud necrosis virus. M.Sc thesis submitted to University of Agricultural Sciences, Dharwad (India)

    Google Scholar 

  • Manoranjitham SK, Kavino M, Thribhuvanamala G, Ganapathi T, Rabindran R, Kumar N (2012) Detection of Banana streak virus (BSV) Tamilnadu isolate (India) and its serological relationship with other banana viruses. Afr J Biotechnol 11(14632):14637

    Google Scholar 

  • Manoussopoulos IN, Maiss E, Tsagris M (2000) Native electrophoresis and Western blot analysis (NEWeB): a method for characterization of different forms of potyvirus particles and similar nucleoprotein complexes in extracts of infected plant tissues. J Gen Virol 81:2295–2298

    Google Scholar 

  • Margaria P, Rosa C, Marzachi C, Turina M, Palmano S (2007) Detection of flavescence doree phytoplasma in grapevine by reverse-transcription PCR. Plant Dis 91:1496

    Article  CAS  Google Scholar 

  • Margaria P, Turina M, Palmano S (2009) Detection of Flavescence doree and Bios noir Phytoplasmasmas, Grapevine leaf roll associated virus-1 and virus-3 and grapevine virus-A from the same crude extract by reverse transcription-Real time Taqman assays. Plant Pathol 58:838–845

    Article  Google Scholar 

  • Martin RR, James D, Levesque CA (2000) Impacts of molecular diagnostic technologies on plant disease management. Ann Rev Phytopathol 38:207–239

    Article  CAS  Google Scholar 

  • Martinez EIC, Pinto GT (2001) First report of Cassava virus X in cassava in Venezuela. Plant Dis 85(10):119.4

    Google Scholar 

  • Martinez-culebras PV, Font I, Jorda C (2001) A rapid PCR method to discriminate between tomato leaf curl virus isolates. Ann Appl Biol 139:251–258

    Article  CAS  Google Scholar 

  • Marzachi C, Galetto L, Bosco D (2003) Real-time PCR detection of bois noir and flavescence doree from field collected symptomatic grapevines. In: Extended abstracts of 14th meeting of ICVG, Sept 2003, Locorotondo, Italy, pp 56–57

    Google Scholar 

  • Mas P, Sanchez-Navarro JA, Sanchez-Pina MV, Pallas V (1993) Chemiluminescent and colorigenic detection of cherry leaf roll virus with digoxigenin-labelled RNA probes. J Virol Methods 45:93–102

    Article  PubMed  CAS  Google Scholar 

  • Mason G, Caciagli P, Accotto AC, Noris E (2007) Real time PCR for the quantification of tomato yellow leaf curl Sardinia virus in tomato plants and in Bemisia tabaci. J Virol Methods 147:282–289

    Article  PubMed  CAS  Google Scholar 

  • Matic S, Al-Raahnih M, Myrta A (2005) Occurence of stone fruit viroids. Bosnia Herzegovina Phytopath Mediterr 44:285–290

    Google Scholar 

  • Matic S, Minafra A, Boscia D, da Cunha ATP, Martelli GP (2009) Production of antibodies to little cherry virus 1 coat protein by DNA prime and protein boost immunization. J Virol Methods 155:72–76

    Article  PubMed  CAS  Google Scholar 

  • Matsumoto AK, Kopicky BJ, Carter RH, Tuveson DA, Tedder TF, Fearon DT (1991) Intersection of the complement and immune systems: a signal transduction complex of the B lymphocyte-containing complement receptor type 2 and CD19. J Exp Med 173:55–64

    Article  PubMed  CAS  Google Scholar 

  • Matthews REF (1993) Diagnosis of plant virus diseases. CRC Press Boca Raton, p 374. ISBN 0849342848, 9780849342844

    Google Scholar 

  • Maule AJ, Hull R, Donson J (1983) The application of spot hybridazation to the detection of DNA and RNA viruses in plant tissues. J Virol Methods 6:214–225

    Article  Google Scholar 

  • Maury Y, Bossennec JM, Boudazin G, Duby C (1983) The potential of ELISA in testing soybean seed for soybean mosaic viruses. Seed Sci Technol 11:491–503

    Google Scholar 

  • Maury Y, Duby C, Bossennec JM, Boudazin G (1985) Group analysis using ELISA: determination of the level of transmission of soybean mosaic viruses in soybean seed. Agronomic 5:405–415

    Article  Google Scholar 

  • Maury Y, Bossennec JM, Boudazin G (1987) Virus transmis par les granis de legumineuses methods d’evaluation rapide du taux de transmission d’un lot de graines. Bull OEPP/EPPO Bull 17:149–155

    Article  Google Scholar 

  • Maxwell DP, Martin Ch (2005) Detection methods for viruses of banana, citrus, cucumber, grape, potato, stone fruits and tomato. Developed by MERC scientists, Department of Plant Pathology, UW-Madison, USA, 157 pp

    Google Scholar 

  • Meenakshi Arya S, Majumder S, Baranwal VK (2009) Partial characterization of coat protein gene of shallot latent virus associated with garlic in India. Indian J Virol 20(1):9–11

    Google Scholar 

  • Mehta P, Wyman JA, Nakhla MK, Maxwell DP (1994) Transmission of tomato yellow leafcurl geminivirus by Bymisia tabaci (Homoptera: Heyrodidae). J Econ Entomol 87:1291–1297

    Google Scholar 

  • Mehta P, Brlansky RH, Gowda S, Yokomi RK (1997) Reverse transcription polymerase chain reaction detection of Citrus tristeza virus in aphids. Plant Dis 81:1066–1069

    Article  CAS  Google Scholar 

  • Melcher U, Heinv RA, Gardner CO, Shockey MW Jr., Essenberg RC (1980) An indirect radioimmunoassay of Cauliflower mosaic virus. Phytopathol 70:954–957

    Google Scholar 

  • Mendoza LG, McQuary P, Mongan A, Gangadharan R, Brignac S, Eggers M (1999) High throughput microarray- based Enzyme-linked immunosorbent assay (ELISA). Biotechniques 27:778–788

    PubMed  CAS  Google Scholar 

  • Mikel MA, D’Arcy CJ, Ford RE (1984) Seed transmission of maize dwarf mosaic virus in sweet corn. Phytopathologische Zeitschrift 110(3):185–191

    Article  Google Scholar 

  • Miller RV, Carroll TW, Sands DC (1986) Effect of chemical seed treatments on symptoms caused by seed-borne barley stripe mosaic virus in Vantage barley. Can J Microbiol 32(2):189–192

    Article  CAS  Google Scholar 

  • Miller JS, Wesley SV, Naidu RA, Reddy DVR, Mayo MA (1996) The nucleotide sequence of RNA-1 of Indian peanut clump virus complicates its taxonomy but offers broad spectrum diagnostics. In: Sherwood JL, Rush CM (eds) Proceedings of the third symposium on international working group on plant viruses with fungal vectors. West Park Conference Centre, Dundee, pp 73–76

    Google Scholar 

  • Milne RG, Luisoni E (1975) Rapid high-resolution immune electronmicroscopy of plant viruses. Virology 68:270–274

    Article  PubMed  CAS  Google Scholar 

  • Minafra A, Hadidi A (1994) Sensitive detection of Grapevine virus A, B or leafroll associated-III from viruliferous mealybugs and infected tissue. J Virol Methods 47:175–187

    Article  PubMed  CAS  Google Scholar 

  • Mnari-Hattab M, Gauthier N, Zouba A (2009) Biological and molecular characterization of the Cucurbit aphid-borne yellows virus affecting cucurbits in Tunisia. Plant Dis 93:1065–1072

    Article  CAS  Google Scholar 

  • Moreno A, Bertolini E, Olmos A, Cambra M, Fereres A (2007) Estimation of vector propensity for Lettuce mosaic virus based on viral detection in single aphids. Spanish J Agric Res 5(3):376–384

    Google Scholar 

  • Mori Y, Nagamine K, Tomita N, Notomi T (2001) Detection of loopmediated isothermal amplification reaction by turbidity derived from magnesium pyrophosphate formation. Biochem Biophys Res Commun 289:150–154

    Article  PubMed  CAS  Google Scholar 

  • Moriones E, Garcia-Andres S (2008) Diagnosis of Begomo viruses. In: Rao GP, Valverde RA, Dovas CI (eds) Techniques in diagnosis of plant viruses. Studium Press, LLC, Houstan, pp 165–187, 302 p

    Google Scholar 

  • Morrison TB, Weis JJ, Wittwer CT (1998) Quantification of low-copy transcripts by continuous SYBR® Green I monitoring during amplification. Biotechniques 24:954–962

    PubMed  CAS  Google Scholar 

  • Mukasa SB, Rubai Hayo PR, Valkonen JPT (2003) Incidence of viruses and virus-like diseases of sweet potato in Uganda. Plant Dis 87:329–335

    Article  Google Scholar 

  • Mukhayyish SF, Makkouk KM (1983) Detection of four seed-borne plant viruses by the Enzyme-linked immunosorbent assay (ELISA). Phytopath Z 106:108–114

    Article  Google Scholar 

  • Mulholland V (2009) Immuno capture-PCR for plant virus detection. Methods Mol Biol 508:183–192

    Article  PubMed  CAS  Google Scholar 

  • Muller E, Jacquot E, Yot P (2001) Early detection of Cacao swollen shoot virus using the polymerase chain reaction. J Virol Methods 93:15–22

    Article  PubMed  CAS  Google Scholar 

  • Mullis KB, Faloona FA (1987) Specific synthesis of DNA in vitro via a polymerase-catalyzed chain reaction. Methods Enzymol 155:335–350

    Article  PubMed  CAS  Google Scholar 

  • Mumford RA, Barker I, Wood KR (1996) An improved method for the detection of Tospoviruses using the polymerase chain reaction. J Virol Methods 57:109–115

    Article  PubMed  CAS  Google Scholar 

  • Mumford RA, Walsh K, Boonham N (2000a) A comparison of molecular methods for the routine detection of viroids. EPPO Bull 30:431–435

    Article  Google Scholar 

  • Mumford RA, Walsh K, Barker I, Boonham N (2000b) Detection of Potato mop top virus and Tobacco mottle virus using a multiplex real time fluorescent reverse-transcription polymerase chain reaction assay. Phytopathology 90:448–453

    Article  PubMed  CAS  Google Scholar 

  • Muniyappa V, Venkatesh HM, Ramappa HK, Kulkarni RS, Zeidan M, Tarba CY, Ghanim M, Czosnek H (2000) Tomato leaf curl virus from Bangalore (ToLCV-Ban4): sequence comparison with Indian ToLCV isolates, detection in plants and insects, and vector relationships. Arch Virol 145:1583–1598

    Article  PubMed  CAS  Google Scholar 

  • Nagamine K, Hase T, Notomi T (2002) Accelerated reaction by loop-mediated isothermal amplification using loop primers. Mol Cell Probes 16:223–229

    Article  PubMed  CAS  Google Scholar 

  • Nagaraj AN, Black LM (1961) Localization of would-tumor virus antigen in plant tumors by the use of fluorescent antibodies. Virology 15:289–294

    Article  PubMed  CAS  Google Scholar 

  • Naghavi A, Habibi MK, Firouzavadi FN (2008) Detection and identification of some soybean mosaic viruses using molecular techniques in Lorestan Province, South West of Iran. Asian J Plant Sci 7:557–562

    Google Scholar 

  • Naidu RA, Hughes JDA (2003) Methods for the detection of plant viral diseases in plant virology in Sub-Saharan Africa. In: Hughes JDA, Odu B (eds) Proceedings of plant virology, I.I.T.A., Ibadan, Nigeria, pp 233–260

    Google Scholar 

  • Naidu RA, Mayo MA, Reddy SV, Jolly CA, Torrance L (1997) Diversity among the coat proteins of luteoviruses associated with chickpea stunt disease in India. Ann Appl Biol 130:37–47

    Article  CAS  Google Scholar 

  • Naidu RA, Bottenberg H, Subrahmanyam P, Kimmins FM, Robinson DJ, Thresh JM (1998) Epidemiology of groundnut rosette virus disease: current status and future research needs. Ann Appl Biol 132(3):525–548

    Article  Google Scholar 

  • Naidu RA, Miller JS, Mayo MS, Wesley SV, Reddy AS (2000) The nucleotide sequence of Indian Peanut clump virus RNA 2: sequence comparisons among pecluviruses. Arch Virol 145:1857–1866

    Article  PubMed  CAS  Google Scholar 

  • Nakaune R, Nakano M (2006) Efficient methods for sample processing cDNA synthesis by RT-PCR for the detection of grapevine viruses and viroids. J Virol Methods 134:244–248

    Article  PubMed  CAS  Google Scholar 

  • Nalini MS, Prakash HS, Snylaja MD, Setty HS (2004) Indexing French bean (Phaseolus vilgaris L) for bean common mosaic virus infection. Seed Res 32:200–206

    Google Scholar 

  • Nalini MS, Prakash HS, Shetty HS, Prabhakar M (2006a) Reaction of French bean accessions and varieties to Bean common mosaic potyvirus and seed transmission of the virus. Legume Res 29:126–129

    Google Scholar 

  • Nalini MS, Shylaja MD, Prakash HS, Shetty HS (2006b) Production of polyclonal antibody to Bean common mosaic virus and its application in seed health testing. Indian J Microbiol 46:97–108

    CAS  Google Scholar 

  • Narayanasamy P (2011) Microbial pathogens-detection and disease diagnosis: Viral and Viroid pathogens, Vol. 3. Springer publishers, Dordrecht, pp 321. ISBN: 978-90-481-9753-8.

    Google Scholar 

  • Navot N, Zeidan M, Pichersky E, Zamir D, Czosnek H (1992) Use of polymerase chain reaction to amplify tomato yellow leaf curl virus DNA from infected plants and viruliferous whiteflies. Phytopathology 82:1199–1202

    Article  CAS  Google Scholar 

  • Nayudu MV (2008) Plant viruses. Tata Mc Graw-Hill Publishing company Limited, New Delhi, p 1249

    Google Scholar 

  • Ndiaye M, Bashir M, Keller KE, Hampton RO (1993) Cowpea viruses in Senegal, West Africa: identification, distribution, seed transmission and sources of genetic resistance. Plant Dis 77:999–1003

    Article  Google Scholar 

  • Ndunguru J, Kapinga R, Sseruwagi P, Sayi B, Mwanga R, Tumwegamire S, Rugutu C (2009) Assessing the sweetpotato virus disease and its associated vectors in northwestern Tanzania and central Uganda. Afr J Agric Res 4(4):334–343

    Google Scholar 

  • Nemchinov L, Hadidi A, Verderevskaya T (1995a) Detection and partial characterization of plum pox isolate from infected sour cherry. Acta Hortic 386:226–237

    CAS  Google Scholar 

  • Nemchinov L, Hadidi A, Candresse T, Foster JA, Verdervskaya TD (1995b) Sensitive detection of Apple chlorotic leafspot virus from infected apple or peach tissue using RT-PCR, IC-RT-PCR, or multiplex IC-RT-PCR. Acta Hortic 386:51–62

    CAS  Google Scholar 

  • Nemchinov LG, Hammond J, Jordan R, Hammond RW (2004) The complete nucleotide sequence, genome organization, and specific detection of Beet mosaic virus. Arch Virol 149(6):1201–1214

    Article  PubMed  CAS  Google Scholar 

  • Niazi FR, Dasgupta I, Singh J, Mathur S, Varma A (2005) Characterization of new strains in rice tungro viruses. Indian Phytopathol 58(3):308–313

    Google Scholar 

  • Nickel O, Targon MLPN, Fajardo TVM, Machado MA, Trivilin AP (2004) Polyclonal antibodies to the coat protein of Apple stem grooving virus expressed in Escherichia coli: production and use in immunodiagnosis. Fitopatol Bras 29:558–562

    Article  Google Scholar 

  • Nickel H, Kawchuk L, Twyman RM, Zimmermann S, Junghans H, Winter S (2008) Plantibody-mediated inhibition of the Potato leafroll virus P1 protein reduces virus accumulation. Virus Res 136:140–145

    Article  PubMed  CAS  Google Scholar 

  • Nicolaisen M, Rasmussen HN, Husted K, Nielsen SL (2001) Reverse transcription detectionof immobilized, amplified product in a one-phase system (RT-DIAPOPS) for the detection of potato virus Y. Plant Pathol 50:124–129

    Article  CAS  Google Scholar 

  • Nie X (2005) Reverse transcription loop-mediated isothermal amplification of DNA for detection of potato virus Y. Plant Dis 89(6):605–610

    Article  CAS  Google Scholar 

  • Nie X, Singh RP (2001) A novel usage of random primers for multiplex RT–PCR detection of virus and viroids in aphids, leaves and tubers. J Virol Methods 91:37–49

    Article  PubMed  CAS  Google Scholar 

  • Niu JX, Chen P, Ma BG (2004) Studies on multiple RT-PCR detection technology of viral disease in grapevine. J Fruit Sci 21(2):120–123

    Google Scholar 

  • Njau PJR, Lyimo HFJ (2000) Incidence of Bean common mosaic virus and Bean common mosaic necrosis virus in bean (Phaseolus vulgaris L.) and wild legume seed lots in Tanzania. Seed Sci Technol 28:85–92

    Google Scholar 

  • Nolan PA, Campbell RN (1984) Squash mosaic virus detection in individual seeds and seed lots of cucurbits by Enzyme-linked immunosorbent assay. Plant Dis 68:971–975

    Google Scholar 

  • Nolasco G, De Blas C, Torres V, Ponz F (1993) A method combining immunocapture and PCR amplification in a microtiter plate for the detection of plant viruses and subviral pathogens. J Virol Methods 45:210–218

    Article  Google Scholar 

  • Nolasco G, Sequeira Z, Soares C, Mansinho A, Bailey AM, Niblett CL (2002) Asymmetric PCR ELISA: increased sensitivity and reduced costs for the detection of plant viruses. Eur J Plant Pathol 108:293–298

    Google Scholar 

  • Notomi T, Okayama H, Masubuchi H, Yonekawa T, Watanabe K, Amino N, Hase T (2000) Loop-mediated isothermal amplification of DNA. Nucleic Acids Res 28:E63

    Article  PubMed  CAS  Google Scholar 

  • Nuovo GJ (1992) PCR in situ hybridization: protocols and applications. Raven Press, New York 237 pp

    Google Scholar 

  • O’Donnell IJ, Shukla DD, Gough KH (1982) Electro-bolt radio immuno assay of virus infected plant sap—a powerful new technique for detecting plant viruses. J Virol Methods 4:19–26

    Article  PubMed  Google Scholar 

  • Ochasan JM, Amoy ML, Guerrero MB, Verzola EA (1996) Occurrence of graft-transmissible diseases of citrus in the highlands of Northern Luzon, Philippines. Thirteenth IOCV conference, pp 291–296

    Google Scholar 

  • OEPP/EPPO (1984) Quarantine procedures No. 21, potato viruses (non-European) and potato spindle tuber viroid. Bulletin OEPP/EPPO Bulletin 14:73–76

    Google Scholar 

  • Ogbe FO, Thottappilly G, Quin FM (1997) Implementation in Africa of serological diagnostic test for Cassava mosaic geminiviruses. Afr J Root Tuber Crops 2:33–36

    Google Scholar 

  • Ojuederie OB, Odu BO, Olori CO (2009) Serological detection of seed borne viruses in cowpea regenerated germplasm using protein A sandwitch Enzyme linked immunosorbent assay. Afr Crop Sci J 17:125–132

    Google Scholar 

  • Olmos A, Dasi MA, Candresse T, Canbra M (1996) Print-capture-PCR: a simple and highly sensitive method for the detection of plum pox virus in plant tissue. Nucleic Acid Res 24:2192–2193

    Article  PubMed  CAS  Google Scholar 

  • Olmos A, Cambra M, Dasi MA, Candresse T, Esteban O, Gorris MT, Asensio M (1997) Simultaneous detection and typing of plum pox potyvirus (PPV) isolates by Heminested-PCR and PCR-ELISA. J Virol Methods 68:127–137

    Article  PubMed  CAS  Google Scholar 

  • Olmos A, Bertolini E, Cambra M (2002) Simultaneous and cooperational amplification (Co-PCR): a new concept for detection of plant viruses. J Virol Methods 106:51–59

    Article  PubMed  CAS  Google Scholar 

  • Olmos A, Bertolini E, Cambra M (2007a) Isothermal amplification coupled with rapid flow through hybridization for sensitive diagnosis of Plum pox virus. J Virol Methods 139:111–115

    Article  PubMed  CAS  Google Scholar 

  • Olmos A, Capote N, Bertolini E, Cambra M (2007b) Molecular diagnostic methods for plant viruses. In: Punja ZK, De Boer SH, Sanfacon H (eds) Biotechnology and plant disease management. CAB International, Oxfordshire, pp 227–249

    Google Scholar 

  • Omunyin ME, Hill JH, Miller WA (1996) Use of unique RNA sequence - specific oligonucleotide primers for RT-PCR to detect and differentiate Soybean mosaic virus strains. Plant Dis 80:1170–1174

    Google Scholar 

  • Orawu M, Melis R, De Milliano W, Laing M, Adipala E (2005) Occurrence and prevalence of Cowpea virus diseases in Uganda. Afr Crop Sci Conf Proc 7:1279–1283

    Google Scholar 

  • Osman F, Leutenegger C, Golino D, Rowhani A (2007) Real-time RT-PCR (TaqMan) assays for the detection of Grapevine Leafroll associated viruses 1–5 and 9. J Virol Methods 141:22–29

    Article  PubMed  CAS  Google Scholar 

  • Osman F, Olineka T, Hodzic E, Golino D, Rowhani A (2012) Comparative procedures for sample processing and quantitative PCR detection of grapevine viruses. J Virol Methods 179:303–310

    Google Scholar 

  • Otto F, Fuchs E, Hermann G (1991) Detection of prune dwarf virus and prune necrotic ring spot virus by means of rapid variant of the dot immuno binding assay. Archiv Fur Phytopathologie und pflanzenschutz 27:273–278

    Article  Google Scholar 

  • Oudin J (1952) Specific precipitation in gels and its application to immunochemical analysis. Methods Med Res 5:335–378

    PubMed  CAS  Google Scholar 

  • Owens RA, Diener TO (1981) Sensitive and rapid diagnosis of potato spindle tuber viroid by nucleic acid spot hybridization. Science 213:67–672

    Article  Google Scholar 

  • Owens RA, Sano T, Duran-Vila N (2012) Plant viroids: isolation, characterization/detection, and analysis. Methods Mol Biol 894:253–271

    Google Scholar 

  • Pacifico D, Caciagli P, Mannini F, Veratti F, Marzachi C (2009) Preliminary results on the quantification of different grapevine viruses in a typical North-western Italian cultivar. In: Extended abstracts, 16th meeting ICVG, 31 Aug–4 Sept 2009, Dijon, France, pp 106–107

    Google Scholar 

  • Padma R, Chenulu VV (1985) Seed health testing for seed-borne viruses—an urgent need. Indian J Plant Phytopathol, 3(1): 33–37

    Google Scholar 

  • Padmavathi M, Srinivas KP, Subba Reddy CV, Ramesh B, Navodayam K, Krishnaprasadji, Baba Ratan P, Sreenivasulu P (2011) Konjac mosaic virus naturally infecting three aroid plant species in Andhra Pradesh. Indian J Phytopathol 159:133–135

    Google Scholar 

  • Palermo S, Margaria P, Marzachi C, Turina M (2007) Detection of “flavescence doree” in grapevines by RT-PCR. Bull Insectology 60:253–254

    Google Scholar 

  • Pallas V, Mas P, Sanchez-Navarro JA (1998a) Detection of plant RNA viruses by nonisotopic dot-blot hybridization. Methods Mol Biol 81:461–468

    PubMed  CAS  Google Scholar 

  • Pallas V, Sanchez-Navarro JA, Mas P, Canizares MC, Aparicio F, Marcos JF (1998b) Molecular diagnostic techniques and their potential role in stone fruit certification schemes. Options Mediterr 19:191–208

    Google Scholar 

  • Pallas V, Gomez G, Duran-Vila N (2003) Viroids in Europe. In: Viroids, Hadidi, A., R. Flores, J.W. Randles and J.S. Semanick (Eds.), CS/RO, Collingwood, Australia, pp:268–274

    Google Scholar 

  • Papayiannis LC, Hunter SC, Lacovides T, Brown JK (2010) Detection of cucurbit yellow stunting disorder virus in cucurbit leaves using Sap extracts and real time Taqman Reverse transcription (RT) polymerase chain reaction (PCR). J Phytopathol 158:487–495

    Article  CAS  Google Scholar 

  • Pappu HR, Pappu S, Jain RK, Bertrand P, Culbreath A, McPherson R, Csinos A (1998) Sequence characteristics of natural populations of tomato spotted wilt tospovirus infecting flue-cured tobacco in Georgia. Virus Genes 17:167–175

    Article  Google Scholar 

  • Parakh DR, Shamloul AM, Hadidi A, Waterworth HE, Seott SW, Howell HE, Mink GI (1995) Detection of Prune dwarf illarvirus from infected stone fruits using reverse transcription-polymerase chain reaction. Acta Horticulturae 386:421–430

    CAS  Google Scholar 

  • Parakh DB, Chalam VC, Khetarpal RK, Maurya AK, Jain A, Singh S (2005a) Interception of seed transmitted viruses in soybean germplasm imported during 2003 and 2004. Indian J Plant Prot 33:119–124

    Google Scholar 

  • Parakh DB, Khetarpal RK, Chalam VC, Maurya AK, Singh S (2005b) Risk of Seed-transmitted viruses associated with exchange of soybean germplasm and the South Asian Scenario. Indian J Plant Genetic Resour 18(1):63–64

    Google Scholar 

  • Parakh DB, Chalam VC, Maurya AK, Khetarpal RK, Singh S, Kaur A (2006) Interception of Pea seed-borne mosaic virus in pea germplasm imported during 2003. Indian J Virol 17:35–38

    Google Scholar 

  • Parakh DB, Khetarpal RK, Chalam VC (2008) Risk of seed transmitted viruses associated with exchange of soybean germplasm and the South Asian scenario. Indian J Virol 19:47–49

    Google Scholar 

  • Parveen R, Fani I, Rasheed I, Chohan S, Rehman A, Haider S (2010) Identification of cotton leaf curl begomovirus in Pakistan different symptomatic and Asymptomatic Plants through Enzyme-linked Immunosorbent Assay (ELISA). Eur J Soc Sci 14(4):502-507

    Google Scholar 

  • Pasquini G, Barba M (1991) Production and application of monoclonal antibodies against Apple mosaic virus. Petria 1:31–36

    Google Scholar 

  • Pasquini G, Barba M, Hadidi A, Faggioli F, Negri R, Sobol I, Tiberini A, Caglayan K, Mazyad H, Anfoka G, Ghanim M, Zeidan M, Czosnek H (2008) Oligonucleotide microarray-based detection and genotyping of Plum pox virus. J Virol Methods 147:118–126

    Article  PubMed  CAS  Google Scholar 

  • Peplies J, Glockner FO, Amann R (2003) Optimization strategies for DNA microarray-based detection of bacteria with 16S rRNA-targeting oligonucleotide probes. Appl Environ Microbiol 69:1397–1407

    Article  PubMed  CAS  Google Scholar 

  • Perdikaris A, Vassilakos N, Yiakoumettis I, Kektsidou O, Kintzios S (2011) Development of a portable, high throughput biosensor system for rapid plant virus detection. J Virol Methods 177(1):94–99

    Article  PubMed  CAS  Google Scholar 

  • Periasamy M, Niazi FR, Malathi VG (2006) Multiplex RT-PCR, a novel technique for the simultaneous detection of the DNA and RNA viruses causing rice tungro disease. J Virol Methods 134:230–236

    Article  PubMed  CAS  Google Scholar 

  • Peruski LF, Peruski AH (2003) Rapid diagnostic assay in the genomic biology era: detection and identification of infectious disease and biological weapons agents. Biotechniques 35(4):840–846

    PubMed  CAS  Google Scholar 

  • Pesic Z, Hiruki C (1986) Different rates of Alfalfa mosaic virus incidence in seed coat and embryo of alfalfa seed. Can J Plant Pathol 8:39–42

    Article  Google Scholar 

  • Petrenko VA, Vodyanoy VJ (2003) Phage display for detection of biological threat agents. J Microbiol Methods 53:253–262

    Article  PubMed  CAS  Google Scholar 

  • Phan TTH, Khetarpal RK, Le TAH, Maury Y (1997) Comparison of immuno capture PCR and ELISA in quality control of pea seed for Pea seed borne mosaic potyvirus. In: Hutchins JD, Reeves JC (eds) Seed health testing. CAB International, Wallingford, pp 193–199

    Google Scholar 

  • Phatak HC (1974) Seed-borne plant viruses-identification and diagnosis in seed health testing. Seed Sci Technol 2:3–155

    Google Scholar 

  • Pluckthun A, Pack P (1997) New protein engineering approaches to multivalent and bispecific antibody fragments. Immunotechnology 3:83–106

    Article  PubMed  CAS  Google Scholar 

  • Podleckis EV, Hammond RW, Hurtt SS, Hadidi A (1993) Chemiluminescent detection of potato and pome fruit viroids by digoxigenin-labeled dot blot and tissue blot hybridization. J Virol Methods 43:147–158

    Article  PubMed  CAS  Google Scholar 

  • Poggi Pollini C, Giunchedi L, Bissani R (1997) Immunoenzymatic detection of PCR products for the identification of phytoplasmas in plants. J Phytopathol 145:371–374

    Article  Google Scholar 

  • Polston JE, Dodds JA, Perring TA (1989) Nucleic acid probes for detection and strain discrimination of cucurbit geminiviruses. Phytopathology 79:1123–1127

    Article  CAS  Google Scholar 

  • Powell CA (1984) Comparison of Enzyme-linked immunosorbent assay procedures for detection of tomato ringspot virus in woody and herbaceous hosts. Plant Dis 68:908–909

    Google Scholar 

  • Prakash S, Singh SJ (2010) Molecular based techniques for diagnosis of viruses, viroids and phytoplasmas. In: Gangawane LV, Khilare VC (eds) Molecular biology of plant pathogens. Washington State University Cooperative Extension Publication, Pullman

    Google Scholar 

  • Prakash DP, Ramakrishnappa K, Viswanath M, Sujatha NT, Nagaraj SK, Gangadhara Swamy S (2010) Virus diagnosis in suckers and tissue culture of banana. Acta Hort 865:241–246

    CAS  Google Scholar 

  • Prakasha TL (2009) Serodiagnosis and molecular characterization of Bhendi yellow vein mosaic virus. MSc Thesis in Plant Pathology, University of Agricultural Sciences, Dharwad, India

    Google Scholar 

  • Prasada Rao RDVJ, Reddy AS, Chander Rao S, Varaprasd KS, Thirumala Devi K, Nagaraju V, Muniyappa V, Reddy DVR (2000) Tobacco Streak Ilarvirus as causal agent of sunflower necrosis disease in Indian. J Oil Seeds Res 17(2):401–402

    Google Scholar 

  • Prasada Rao RDVJ, Reddy AS, Reddy SV, Tirumala Devi K, Chander Rao S, Manoj Kumar V, Subramanyam K, Yellamanda Reddy T, Nigam SN, Reddy DVR (2003a) The host range of tobacco streak virus in India and transmission by thrips. Ann Appl Biol 142:365–368

    Article  Google Scholar 

  • Prasada Rao RDVJ, Reddy DVR, Nigam SN, Reddy AS, Waliyar F, Yellamanda Reddy T, Subramanyam K, John Sudheer M, Naik KSS, Bandyopadhyay A, Desai S, Ghewande MP, Basu MS, Somasekhar (2003b) Peanut stem necrosis: a new disease of groundnut in India. Information bulletin No. 67, CRIDA, Hyderabad and ICRISAT, Patancheru (India), 16 pp

    Google Scholar 

  • Prasada Rao RDVJ, Reddy AS, Chakravarthy SK, Snitha K (2004) Interception of seed transmitted viruses in peanut germplasm imported into India during 1986–2003. Indian J Plant Prot 32:102–104

    Google Scholar 

  • Premachandra WTSD, Borgemeister C, Maiss E, Knierim D, Poehling H-M (2005) Ceratothripoides claratris, a new vector of a Capsicum chlorosis virus isolate infecting tomato in Thailand. Phytopathology 95:659–663

    Article  PubMed  CAS  Google Scholar 

  • Puchta H, Sanger HL (1989) Sequence analysis of minute amounts of viroid RNA using the polymerase chain reaction (PCR). Arch Virol 106:335–340

    Article  PubMed  CAS  Google Scholar 

  • Punja ZK, Boer S De (2007) Biotechnology and plant disease management. CABI Publications, Wallingford, 624 p

    Google Scholar 

  • Purcifull DE, Christie SR, Lima JAA (1981) Detection of four isometric plant viruses in sodium dodecyl sulfate immunodiffusion tests. Phytopathology 71:1221–1224

    Google Scholar 

  • Puttaraju HR, Prakash HS, Albrechtsen SE, Shetty HS, Mathur SB (1999) Detection of Bean common mosaic potyvirus in French bean seed samples from Karnataka. Indian J Virol 15:27–29

    Google Scholar 

  • Puttaraju HR, Prakash HS, Shetty HS (2001) Detection of peanut mottle poty virus in leaf and seed of peanut and its effect on yield. Indian Phytopathol 54:479–480

    Google Scholar 

  • Puttaraju HR, Prakash HS, Shetty HS (2002) Contribution of seed borne Black eye cowpea mosaic potyvirus to disease dynamics and loss of yield. Trop Sci 42:147–152

    Google Scholar 

  • Puttaraju HR, Prakash HS, Shetty HS (2003) Detection of Black eye cowpea mosaic potyvirus (BCLMV) in leaves and seeds of Cowpea. Indian J Microbiol 43:45–48

    Google Scholar 

  • Puttaraju HR, Shylaja H, Dharmesh M, Prakash HS, Shetty HS (2004) Black eye cowpea mosaic potyvirus-polyclonal antibody production and its application in seed health testing. J Mycol Plant Pathol 14:810–815

    Google Scholar 

  • Qiu B, Xie H, Rei M (1982) On the barley stripe mosaic virus from China. I. Ensyme linked immunosorbent assay to detect barley stripe mosaic virus in seeds of wheat and barley. Acta Phytopathologica Sinica 12(3):29–32

    Google Scholar 

  • Quainoo AK, Wetten AC, Allainguillaume J (2008) Transmission of Cocoa swollen shoot virus by seeds. J Virol Methods 150:45–49

    Article  PubMed  CAS  Google Scholar 

  • Quinn JG, O’Neill S, Doyle A, McAtamney C, Diamond D, MacCraith BD, O’Kennedy R (2000) Development and application of surface plasmon resonance-based biosensors for the detection of cell-ligand interactions. Anal Biochem 281:135–143

    Article  PubMed  CAS  Google Scholar 

  • Raizada RK, Albrechtsen SE, Lange L (1990) Detection of bean common mosaic virus in dissected portions of individual bean seeds using immunosorbent electron microscopy. Seed Sci Technol 18:559–565

    Google Scholar 

  • Raizada RK, Aslam M, Singh BP (1991) Immunological detection of bean yellow mosaic virus in seeds of faba bean (Vicia faba L.). Indian J Virol 7:179–183

    Google Scholar 

  • Raj SK, Snehi SK, Khan MS, Tiwari AK, Rao GP (2010) First report of Pepper leaf curl Bangladesh virus affecting M. charantia in India. Australas Plant Dis Notes 5:14–16

    Article  CAS  Google Scholar 

  • Rajasulochana P, Damotharan R, Sreenivasulu P (2008) Comparison of Dac-ELISA and Dot blot ELISA for the detection of Cucumber mosaic and Banana streak viruses infecting banana. J Am Sci 4:18–27

    Google Scholar 

  • Ramachandran P, Anirban Roy, Mathur S, Agarwal J, Ahlawat YS (2003) Diagnostics for citrus exocortis and hop stunt viroids associated with yellow corky vein disease in citrus. Indian Phytopathol 56:428–433

    Google Scholar 

  • Ramiah M, Bhat AI, Jain RK, Pant RP, Ahlawat YS, Prabhakar K, Varma A (2001) Partial characterization of an isometric virus causing sunflower necrosis disease. Indian Phytopathol 54:246–250

    Google Scholar 

  • Rampitsch C, Eastwell KC, Hall J (1995) Setting confidence limits for the detection of Prune dwarf virus in Prunus avium with a monoclonal antibody based Triple antibody sandwich ELISA. Ann Appl Biol 126:485–491

    Article  Google Scholar 

  • Rao GP, Gaur RK, Maneesha Singh, Srivastava AK, Virk KS, Singh N, Viswanathan R, Patil AS, jain RK (2000) Occurrence of sugarcane yellow leaf virus in India. Sugar Tech 2(4):37–38

    Google Scholar 

  • Rao GP, Maneesha Singh (2008) Techniques in diagnosis of plant viruses. In: Rao GP, Varverde RA, Dovas CI (eds) Techniques in diagnosis of plant viruses. Studium Press LLC, Houstan, pp 1–47

    Google Scholar 

  • Rao GP, Singh Maneesha, Rishi N, Bhargava KS (2002a) Century status of sugarcane virus diseases research in India, pp 223–254. In: Singh SB, Rao GP, Easwaramoorthy S (eds) Sugarcane crop management. SCI Tech Publishing LLC, Houstan, p 734

    Google Scholar 

  • Rao GP, Viswanathan R, Singh SB (2002b) Current situation of sugarcane diseases in India. In: Singh SB, Rao GP, Easwaramoorthy S (eds) Sugarcane crop management. SCI Tech Publishing LLC, Houstan, pp 1–9, 734

    Google Scholar 

  • Rao GP, Chateret M, Gigard JG, Rott P (2006) Distribution of Sugarcane mosaic and Sugarcane streaked mosaic virus in India. Sugar Tech 8(1):79–81

    Article  Google Scholar 

  • Rao GP, Kumar PL, Pena RJH (2008) Characterization, diagnosis and management of plant viruses, vol III: Vegetable and pulse crops. Studium Press, LLS, Houstan, 408 p

    Google Scholar 

  • Ravi KS, Butt Gereitt A, Kitkaru AS, Deshmukh S, Lesemann DE, Winter S (2001) Sunflower nenosis disease from India is caused by an ilarvirus related to tobacco streak virus. Plant Pathol 50:800

    Article  Google Scholar 

  • Reddy DVR, Black LM (1972) Increase of wound tumor virus in leafhoppers as assayed on vector cell monolayers. Virology 50:412–421

    Article  PubMed  CAS  Google Scholar 

  • Reddy DVR, Amin PW, Mc Donald D, Ghanekar AM (1983) Epidemiology and control of groundnut bud necrosis and other diseases of legume crops in India caused by tomato spotted wilt virus. In: Plumb RT, Thresh JM (eds) Plant virus epidemiology. Blackwell Scientific Publications, Oxford, pp 93–102, 377

    Google Scholar 

  • Reddy DVR, Bharatan N, Rajeswari R, Demski JW (1984) Detection of peanut mottle virus in peanut seed by Enzyme linked immunosorbent assay. Phytopathology 74:627

    Google Scholar 

  • Reddy DVR, Nolt BL, Hobbs HA, Reddy AS, Rajeswari R, Rao AS, Reddy DDR, McDonald D (1988) Clump virus in India: isolates host range, transmission and management. Association of Applied Biologists, Wellesbourne, pp 239–246

    Google Scholar 

  • Reddy DVR, Nambiar PTC, Rajeshwari R, Mehan VK, Anjaiah V, McDonald D (1988a) Potential of enzyme-linked immunosorbent assay for detecting viruses, fungi, bacteria, mycoplasma-like organisms, mycotoxins, and hormones. In: Biotechnology in tropical crop improvement: proceedings of the International Biotechnology Workshop, 12–15 Jan 1987, ICRISAT, Patancheru, India, pp 43–49

    Google Scholar 

  • Reddy AS, Hobbs HA, Delfosse P, Murthy AK, Reddy DVR (1998) Seed transmission of Indian peanut cleanup virus (IPCV) in peanut and millets. Plant Dis 82:343–346

    Article  Google Scholar 

  • Reddy AS, Prasada Rao RDVJ, Thirumala-Devi K, Reddy SV, Mayo MA, Roberts I, Satyanarayana T, Subramaniam K, Reddy DVR (2002) Occurrence of Tobacco streak virus on peanut (Arachis hypogaea) in India. Plant Dis 86:173–178

    Article  CAS  Google Scholar 

  • Reddy BA, Krishnareddy M, Jalali S, Patil MS, Usha Rani TR (2008) Detection of a tospovirus-infecting tomato (Solanum lycopersicon L.). Indian J Virol 19:1–5

    Google Scholar 

  • Rezaian MA, Krake LR, Golino DA (1992) Common identity of grapevine viroids from USA and Australia revealed by PCR analysis. Intervirology 34:38–43

    PubMed  CAS  Google Scholar 

  • Rezain MA, Skene KGM, Ellis JG (1988) Anti-sense RNAs of cucumber mosaic virus in transgenic plants assessed for control of the virus. Plant Mol Biol 11:463–471

    Article  Google Scholar 

  • Richmond CS, Glasner JD, Mau R, Jin H, Blattner FR (1999) Genome-wide expression profiling in Escherichia coli K-12. Nucleic Acids Res 27:3821–3835

    Article  PubMed  CAS  Google Scholar 

  • Robert SL, Kerst AJ (2001) Nucleic acid sequence-based amplification assays for rapid detection of West Nile and St. Louis encephalitis viruses. J Clin Microbiol 39:4506–4513

    Article  CAS  Google Scholar 

  • Roberts IM, Harrison BD (1979) Detection of potato leafroll and potato mop-top viruses by immunosorbent electron microscopy. Ann Appl Biol 93:289–297

    Article  Google Scholar 

  • Roberts CA, Dietzgen RG, Heelan LA, Maclean DJ (2000) Real-time RT-PCR fluorescent detection of tomato spotted wilt virus. J Virol Methods 88:1–8

    Article  PubMed  CAS  Google Scholar 

  • Rodriguez PPE, Hanada K, Laguna IG, Zerbini FM, Ducasse DA (2011) Molecular characterization and relative incidence of bean- and soybean- infecting begomoviruses in North Western Argentina. Ann Appl Biol 158:69–78

    Article  Google Scholar 

  • Rojas MR, Gilbertson RL, Russell DR, Maxwell DP (1993) Use of degenerate primers in the polymerase chain reaction to detect whitefly-transmitted geminiviruses. Plant Dis 77:340–347

    Article  CAS  Google Scholar 

  • Romaine CP, Schlagnhaufer B (1995) PCR analysis of the viral complex associated with La France disease of Agaricus bisporus. Appl Environ Microbiol 61:2322–2325

    PubMed  CAS  Google Scholar 

  • Romero-Durban J, Cambra M, Duran-Vila N (1995) A simple imprint-hybridization method for detection of viroids. J Virol Methods 55:37–47

    Article  PubMed  CAS  Google Scholar 

  • Rosner A, Maslenin L, Spiegel S (1997) The use of short and long PCR products for improved detection of prunus necrotic ringspot virus in woody plants. J Virol Methods 67:135–141

    Article  PubMed  CAS  Google Scholar 

  • Rothenstein D, Haible D, Dasgupta I, Dutt N, Patil BL, Jeske H (2006) Biodiversity and recombination of cassava-infecting begomoviruses from southern India. Arch Virol 151:55–69

    Article  PubMed  CAS  Google Scholar 

  • Routh G, Zhang YP, Saldarelli P, Rowhani A (1998) Use of degenerate primers for partial sequencing and RT-PCR based assays of grapevine leafroll-associated viruses 4 and 5. Phytopathology 88:1238–1243

    Article  PubMed  CAS  Google Scholar 

  • Rowhani A, Chay C, Golino DA, Falk BW (1993) Development of polymerase chain reaction technique for the detection of grapevine virus in grapevine tissue. Phytopathology 83:749–753

    Article  CAS  Google Scholar 

  • Roy A, Ramachandran P (2002) Bi-directional PCR—A tool for indentifying strains of citrus tristeza virus. Indian Phytopathol 55:182–186

    CAS  Google Scholar 

  • Ruiz-Garcia AB, Olmos A, Arahal DR, Antunez O, Llop P, Perez-Ortín JE, Lopez MM, Cambra M (2004) Biochip electronico para la deteccion y caracterizacion simultanea de los principales virus y bacterias patogenos de la patata. XII Congreso de la Sociedad Espanola de Fitopatologia. Lloret de Mar, p 12

    Google Scholar 

  • Russo M, Vovlas C (1981) Violente infezioni del virus del mosaico commune del fagilo nelle marche. Informatore Fitopatologica 6:23–25

    CAS  Google Scholar 

  • Rustici G, Accoto GP, Noris E, Masenga V, Luisoni E, Milne RG (2000a) Indian citrus ringspot virus: a proposed new species with some affinities to potex-, Carla-, foves- and allexi viruses. Arch Virol 145:1895–1908

    Article  PubMed  CAS  Google Scholar 

  • Rustici G, Noris E, Accotto GP, Luisoni E, Milne RG, Pant RP, Ahlawat YS (2000b) Further characterization and detection of Indian Citrus Ringspot Virus. Fourteenth IOCV conference, pp 360–362

    Google Scholar 

  • Rwegasira GM, Rey MEC, Nawabu H (2011) Approaches to diagnosis and detection of cassava brown streak virus (Potyviridae: Ipomovirus) in field grown cassava crop. AJFAND Scholarly, Peer Rev 11(3):4739–4756

    Google Scholar 

  • Rybicki EP, Hughes FL (1990) Detection and typing of maize streak virus and other distantly related geminiviruses of grasses by polymerase chain reaction amplification of a conserved viral sequence. J Gen Virol 71:2519–2526

    Article  PubMed  CAS  Google Scholar 

  • Rybicki EP (2008) Vaccine production in plants. In: Mahy BWJ, Van Regenmortel MHV (ed) Desk encyclopedia of plant and fungal virology, Elsevier and Academic Press, pp 67–71

    Google Scholar 

  • Sagemann W, Lesemann D-E, Paul HL, Adomako D, Owusu GK (1985) Detection and comparison of some Ghanaian isolates of cacao swollen shoot virus (CSSV) by Enzyme-linked immunosorbent assay (ELISA) and immunoelectron microscopy (IEM) using an antiserum to CSSV strain 1A. Phytopathologische Z 114:79–89

    Article  Google Scholar 

  • Saigopal DVR, Naidu R, Joseph T (1992) Early detection of ‘Katte’ disease of small cardamom through Enzyme Linked Immunosorbent Assay (ELISA). J Plant Crops 20(Suppl):73–75

    Google Scholar 

  • Saiz M, Castro S, De Blas C, Romero J (1994) Serotype-specific detection of Bean common mosaic potyvirus in bean leaf and seed tissue by enzyme amplification. J Virol Methods 50:145–154

    Article  PubMed  CAS  Google Scholar 

  • Saldarelli P, Barbarossa L, Grieco F, Gallitelli D (1996) Digoxigenin-labeled riboprobes applied to phytosanitary certification of tomato in Italy. Plant Dis 80:1343–1346

    Article  Google Scholar 

  • Saleh N, Honda Y, Iwaki M, Jantera DM (1986) Occurrence of blackgram mottle virus on mungbean in Indonesia and seed transmission of the virus. Technical Bulletin No. 21, Tropical Agricultural Research Centre, Japan, pp 203–211, 238

    Google Scholar 

  • Salem NM, Ehlers JD, Roberts PA, Ng JCK (2010) Biological and molecular diagnosis of seed-borne viruses in cowpea germplasm of geographically diverse Sub-saharan origins. Plant Pathol 59:773–784

    Article  CAS  Google Scholar 

  • Salim Khan M, Hoque MI, Sarker RH, Muehlbach H-P (2003) Detection of important plant viruses in In vitro regenerated potato plants by double antibody sandwich method of ELISA. Plant Tissue Cult 13(1):21–29

    Google Scholar 

  • Sambrook J, Russell DW (2001) Molecular cloning: a laboratory manual, 3rd edn. Cold Spring Harbor Laboratory Press (Cold Spring Harbor), New York

    Google Scholar 

  • Sanchez-Navarro JA, Aparicio F, Herranz MC, Minafra A, Myrta A, Pallas V (2005) Simultaneous detection and identification of eight stone fruit viruses by one-step RT-PCR. Eur J Plant Pathol 111:77–84

    Article  CAS  Google Scholar 

  • Sander E, Dietzgen RG (1984) Monoclonal antibodies against plant viruses. Adv Virus Res 29:131–168

    Article  PubMed  CAS  Google Scholar 

  • Sano Y, Van der Vlugt R, de Hann P, Takahashi A, Kawakami M, Goldbach R, Kojima M (1992) On the variability of the 3′ terminal sequences of the turnip mosaic virus genome. Arch Virol 126:231–238

    Article  PubMed  CAS  Google Scholar 

  • Sarovar B, Saigopal DVR (2010) Development of a probe-based blotting technique for the detection of Tobacco streak virus. Acta Virologica 54:221–224

    Google Scholar 

  • Sarovar B, Sivaprasad Y, Saigopal DVR (2010) Detection of Tobacco streak virus by immunocapture reverse transcriptase-polymerase chain reaction and molecular variability analysis of a part of RNA 3 of Sunflower, Gherkin and Pumpkin from Andhra Pradesh, India. Sci Asia 36:194–198

    Article  CAS  Google Scholar 

  • Sastry KS, Nayudu MV (1976) Ringspot symptoms of eggplant incited by tobacco ring spot virus. Phytopathol Mediterr 15:60–62

    Google Scholar 

  • Sastry KS (2013) Seed-borne plant virus diseases. Springer Publishers, New Delhi, pp 327

    Google Scholar 

  • Schnell RJ, Kuhn DN, Ronning CM, Harkins D (1997) Application of RT-PCR for indexing avocado sunblotch viroid. Plant Dis 81:1023–1026

    Article  CAS  Google Scholar 

  • Schoen CD, Knorr D, Leone G (1996) Detection of potato leafroll virus in dormant potato tubers by immunocapture and a fluorogenic 5′ nuclease RT-PCR assay. Phytopathology 86:993–999

    Article  CAS  Google Scholar 

  • Schoen C, De Weerdt M, Hillhorst R, Chan A, Boender P, Zijlstra C, Bonants P (2002) Use of novel 3D microarray flow through system for plant pathogen multiplex detection. In: Proceedings agricultural biomarkers for array technology, management committee meeting, Wadenswil 2002, p 11

    Google Scholar 

  • Schoen C, De Weerdt M, Hillhorst R, Boender P, Szemes M, Bonants P (2003) Multiple detection of plant (quarantine) pathogens by micro-arrays: innovative tool for plant health management. In: Proceedings of the 19th international symposium on virus and virus-like diseases of temperate fruit crops, Valencia 2003, p 108

    Google Scholar 

  • Schots A, Griep R, Bakker J, Skierrit JH, Apples R (1995) Monoclonal antibody technology. In: Skerritt HJ, Appels R (eds) New diagnostics in crop sciences. Biotechnology in Agriculture. CAB Institute, Wallingford, pp 65–86

    Google Scholar 

  • Schroeder M, Weidemann HL (1989) Simplified application of return gel electrophoresis for the routine detection of potato spindle tuber viroid. Bulletin OEPP/EPPO Bulletin 19:661–665

    Google Scholar 

  • Schumacher J, Meyer N, Riesner D, Weidemann HL (1986) Diagnostic procedure for detection of viroids and viruses with circular RNAS by “Return” gel electrophoresis. J Phytopathol 115:332–343

    Article  Google Scholar 

  • Scuderi G, Golmohammadi M, Lopez MM, Cirvilleri G, Llop P (2007) Optimization of methods for evaluation of viability of Xanthomonas axonopodis pv. citri in fresh fruits. In: Abstracts of the XIII international congress on molecular plant-microbe interactions, Sorrento

    Google Scholar 

  • Selvarajan R, Balasubramanian V (2008) Banana viruses. In. Rao GP, Mytra A, Ling K (eds) Characterization, diagnosis and management of plant viruses. Studium press LLC, Houston, pp 109–124

    Google Scholar 

  • Selvarajan R, Balasubramaniam V, Dhayakar S, Uma S, Ahlawat YS, Sathiamoorthy S (2007) Molecular diagnosis of banana bunchy top nano virus (Indian isolate) coat protein gene by polymerase chain reaction. In: Singh HP, Uma S (eds) Banana-technological advancements. AIPUB, Trichus, pp 431–434, 583

    Google Scholar 

  • Sere Y, Onasanya A, Afolabi AS, Abo EM (2005) Evaluation and potential of double immuno diffusion gel assay for serological characterization of rice yellow mottle virus isolates in West Africa. Afr J Biotechnol 4(2):197–205

    Google Scholar 

  • Shamloul AM, Minafra A, Hadidi A, Giunchedi L, Waterworth HE, Allam EK (1995) Peach latent mosaic viroid: nucleotide sequence of an Italian isolate, sensitive detection using RT-PCR and geographic distribution. Acta Horticulturae 386:522–530

    CAS  Google Scholar 

  • Shamloul AM, Hadidi A, Zhou SF, Singh RP, Sagredo B (1997) Sensitive detection of Potato spindle tuber viroid using RT-PCR and identification of a viroid variant naturally infecting pepino plants. Can J Plant Pathol 19:89–96

    Google Scholar 

  • Shamloul AM, Faggioli F, Keith JM, Hadidi A (2002) A novel multiplex RT-PCR probe capture hybridization (RT-PCR-ELISA) for simultaneous detection of six viroids in four genera: Apscaviroid, Hostuviroid, Pelamoviroid and Pospiviroid. J Virol Methods 105:115–121

    Article  PubMed  CAS  Google Scholar 

  • Sharman M, Thomas JE, Dietzgen RG (2000) Development of a multiplex immunocapture PCR with colourimetric detection for viruses of banana. J Virol Methods 89:75–88

    Article  PubMed  CAS  Google Scholar 

  • Sharman M, Thomas JE, Persley DM (2008) First report of Tobacco streak virus in sunflower (Helianthus annuus), cotton (Gossypium hirsutum), chickpea (Cicer arietinum) and mungbean (Vigna radiata) in Australia. Austr Plant Dis Notes 3:27–29

    Article  Google Scholar 

  • Shepherd JF, Secor GA (1969) Detection of potato virus x in infected plant tissue by radial and double-diffusion tests in agar. Phytopathology 57:1136–1137

    Google Scholar 

  • Shepard JF (1972) Gel diffusion methods for the serological detection of potato viruses X, S and M. Mont Agric Exp Stn Bull 662:72

    Google Scholar 

  • Shepherd RJ (1972) Transmission of viruses through seed and pollen. In: Kado CI, Agrawal HO (eds) Principles and techniques in plant virology. Van Nostrand-Reinhold Co., New York, pp 267–292, 688

    Google Scholar 

  • Sherwood JL, Melouk HA (1986) A comparison of enzyme linked immunosorbent assay (ELISA) and Western blotting for detection of Peanut mottle virus and Peanut stripe virus. Peanut Sci, 13:64–67

    Google Scholar 

  • Shrestha SM (1984) Project report from Danish Government Institute of Seed Pathology for Developing Countries, pp 24

    Google Scholar 

  • Shukla DD, Gough KH (1984) Serological relationships among four Australian strains of Sugarcane mosaic virus as determined by immune electron microscopy. Plant Dis 68:204–206

    Google Scholar 

  • Shukla DD, O’Donnell IJ, Gough KH (1983) Characteristics of the electro-blot radioimmunoassay (EBRIA) in relation to the identification of plant viruses. Acta Phytopathol Acad Sci 18:79–84

    CAS  Google Scholar 

  • Sibiya J, Nyanhete C, Chinhema E (1998) Serological and biological properties of a maize-infecting potyvirus from Zimbabwe. Afr crop Sci J 6:293–301

    Google Scholar 

  • Siju S, Madhubala R, Bhat AI (2007) Sodium sulphite enhances RNA isolation and sensitivity of Cucumber mosaic virus detection by RT-PCR in black pepper. J Virol Met 141:107–110

    Google Scholar 

  • Simmons HE, Holmes EC, Gildow FC, Bothe-Goralczyk ME, Stephensonx AG (2011) Experimental verification of seed transmission of Zucchini yellow mosaic virus. Plant Dis 95:751–754

    Article  Google Scholar 

  • Singh RP (1989) Molecular hybridization with complimentary DNA for plant viruses and viroids detection. In: Agnihotri VP (ed) Perspectives in phytopathology. Today & Tomarrows Printers & Publishers, New Delhi, pp 51–60

    Google Scholar 

  • Singh RP, Boucher A (1987) Electrophoretic separationof a severe from mild strains of potato spindle tuber viroid. Phytopathology 77:1588–1591

    Article  Google Scholar 

  • Singh RP, Boucher A (1988) Comparative detection of mild strains of potato spindle tuber viroid from the dormant potato tubers by Return-polyacrylamiee gel electrophoresis and nucleic acid hybridization. Potato Research 31(1):159–166

    Google Scholar 

  • Singh SP, Sharma JR (1989) Genetic improvement of pyrethrum. Theor Appl Genetics 78:841–846

    Article  Google Scholar 

  • Singh M, Singh RP (1995) Digoxigenin-labelled cDNA probes for the detection of Potato virus Y in dormant potato tubers. J Virol Methods 52:133–143

    Article  PubMed  CAS  Google Scholar 

  • Singh M, Singh RP (1996) Factors affecting detection of PVY in dormant tubers by reverse transcription polymerase chain reaction and nucleic acid spot hybridization. J Virol Methods 60:47–57

    Article  PubMed  CAS  Google Scholar 

  • Singh BP, Somerville TH (1986) Factors effecting the detection of potato virus Y in tubers by Enzyme-linked immunosorbent assay (ELISA). Indian J Plant Pathol 4:75–81

    Google Scholar 

  • Singh RP, Boucher A, Seabrook JEA (1988) Detection of the mild strains of potato spindle tuber viroid from single true potato seed by return electrophoresis. Phytopathology 78:663–667

    Article  Google Scholar 

  • Singh RP, Boucher A, Singh A (1991) High incidence of transmission and occurrence of a viroid in commercial seeds of coleus in Canada. Plant Dis 75:184–187

    Article  Google Scholar 

  • Singh RP, Boucher A, Somerville TH (1992) Detection of potato spindle tuber viroid in the pollen and various parts of potato plant pollinated with viroid-infected pollen. Plant Dis 76:951–953

    Article  Google Scholar 

  • Singh RP, Boucher A, Somerville TH (1993) Interactions between a mild and severe strain of potato spindle tuber viroid in doubly infected potato plants. Am Potato J 70:85–92

    Google Scholar 

  • Singh RP, Boucher A, Lakshman DK, Tavantzis SM (1994) Multimeric non-radioactive cRNA probes improve detection of potato spindle tuber viroid (PSTVd) J. Virol Methods 49:221–224

    Article  Google Scholar 

  • Singh Z, Jones RHC, Jones MGK (1995) Identification of cucumber mosaic virus subgroups-1 isolates from banana plants affected by infection chlorosis using RT-PCR. Plant Dis 79:713–716

    Article  CAS  Google Scholar 

  • Singh RP, Kurz J, Boiteau G (1996) Detection of stylet borne and circulative potato viruses in aphids by duplex reverse transcription polymerase chain reaction. J Virol Methods 59:189–196

    Article  PubMed  CAS  Google Scholar 

  • Singh RP, Nie X (2003) Multiple virus and virod detection and strain separation via Multiplex Reverse Transcription - Polymerase chain reaction. Can J Plant Pathol 25:127–134

    Google Scholar 

  • Singh RP, Ready KFM, Nie X (2003) Biology. In: Hadidi A, Flores R, Randles JW, Semancik JS (eds) Viroids. CSIRO Publishing, Collingwood (Science Publishers, Enfield), pp 30–48

    Google Scholar 

  • Singh RP, Dilworth AD, Singh M, Babcock KM (2006) An alkaline solution simplifies nucleic acid preparation for RT-PCR and infectivity assay of viroids from crude sap and spotted membrane. J Virol Methods 132:204–211

    Article  PubMed  CAS  Google Scholar 

  • Singh RP, Dilworth AD, Ao X, Singh M, Baranwal VK (2009) Citrus exocortis viroid transmission through commercially-distributed seeds of Impatiens and Verbena plants. Eur J Plant Pathol 124:691–694

    Google Scholar 

  • Singh HP, Uma S, Selvarajan R, Karihaloo JL (2011) Micropropagation for production of quality banana planting material in AsiaPacific. Asia-Pacific Consortium on Agricultural Biotechnology (APCoAB), New Delhi, p 92

    Google Scholar 

  • Sinha RC, Black LM (1962) Studies of the smear technique for detecting virus antigens in an insect vector by the use of fluorescent antibodies. Virology 17:582–587

    Article  PubMed  CAS  Google Scholar 

  • Sipathioglu HM, Ocak M, Usta M (2007) Comparison of three conventional methods for the detection of plant virus/viroid RNAs from heat dried-high phenolic host leaves. Asian J Plant Sci 6(1):102–107

    Article  Google Scholar 

  • Sivamani S, Krishnaveni S, Usha ZB, Ravi KS (2009) Efficient mechanical transmission of Iris yellow spot virus (IYSV) to onion and their detection by tissue blot immunoassay (TBIA). J Insect Sci 10:166

    Google Scholar 

  • Sivaprasad Y, Bhaskara Reddy BV, Rekha Rani K, Raja Reddy K, Sai Gopal DVR (2010) First report of Tobacco streak ilar virus infecting onion (Allium cepa). BSPP New Dis Rep 22:17

    Article  Google Scholar 

  • Slack SA, Shepherd RJ (1975) Serological detection of seed-borne barley stripe mosaic virus by a simplified radial-diffusion technique. Phytopathology 65:948–955

    Article  Google Scholar 

  • Smith GP (1985) Filamentous fusion phage: novel expression vectors that display cloned antigens on the virion surface. Science 228:1315–1317

    Article  PubMed  CAS  Google Scholar 

  • Smith DF, Banttari EE (1984) Dot ELISA on nitrocellulose membranes for detection of tomato leaf roll virus. Phytopathology 74:847

    Google Scholar 

  • Smith GR, Van de Verde R (1994) Detection of sugarcane mosaic virus and Fiji disease virus in diseased sugarcane using Polymerase chain reaction. Plant Dis 78:557–561

    Article  CAS  Google Scholar 

  • Sogin ML, Morrison HG, Huber JA, Welch DM, Huse SM, Neal PR (2006) Microbial diversity in the deep sea and the underexplored “rare biosphere”. Proc Natl Acad Sci U S A 103:12115–12120

    Article  PubMed  CAS  Google Scholar 

  • Soleimani P, Mosahebi GH, Koohi-Habibi M (2011) Identification of some viruses causing mosaic on lettuce and characterization of Lettuce mosaic virus from Tehran Province in Iran. Afr J Agric Res 6(13):3029–3035

    Google Scholar 

  • Sosnowski RG, Tu E, Butler WF, O’Connell JP, Heller MJ (1997) Rapid determination of single base mismatch mutations in DNA hybrids by direct electric field control. Proc Natl Acad Sci U S A 94:1119–1123

    Article  PubMed  CAS  Google Scholar 

  • Spada S, Pluckthun A (1997) Selectively infective phage (SIP) technology: a novel method for in vivo selection of interacting protein-ligand pairs. Nat Med 3:694–696

    Article  PubMed  CAS  Google Scholar 

  • Spiegel S, Martin RR (1993) Improved detection of potato leaf roll virus in dormant potato tubers and microtubers by the polymerase chain reaction and ELISA. Ann Appl Biol 122:493–500

    Article  CAS  Google Scholar 

  • Spiegel S, Rosner A, Stein A (1994) Detection of Prunus necrotic ring spot virus in peach by the polymerase chain reaction (abstract). Phytoparacitica 22:178–179

    Google Scholar 

  • Sreenivasulu M, Saigopal DVR (2010) Development of recombinant coat protein antibody based IC-RT-PCR and comparison of its sensitivity with other immuno assays for the detection of papaya ring spot virus isolates from India. Plantpathol J 26:25–31

    CAS  Google Scholar 

  • Sreenivasulu P, Demski JW, Reddy DVR, Naidu RA, Ratna AS (1991) Purification and some serological relationships of Tomato spotted wilt virus isolates occuring on peanut (Arachis hypogaea) in the USA. Plant Pathol 40:503–507

    Article  Google Scholar 

  • Staub U, Polivka H, Gross HJ (1995) Two rapid microscale procedures for isolation of total RNA from leaves rich in polyphenols and polysaccharides: application for sensitive detection of grapevine viroids. J Virol Methods 52:209–218

    Article  PubMed  CAS  Google Scholar 

  • Stukenbrock EH, Rosendahl S (2005) Development and amplification of multiple codominant genetic markers from single spores of arbuscular mycorrhizal fungi by nested multiplex PCR. Fungal Genetics Biol 42:73–80

    Article  CAS  Google Scholar 

  • Su H-J, Tsai MC (1990) Distribution and detection of citrus tattenleaf virus by ELISA test with monoclonal antibodies. In: Aubert B, Tontyaporn S, Buangsuuon D (eds) Proceedings of the Asian Pacific international conference on citriculture, pp 171–174

    Google Scholar 

  • Subba Reddy ChV, Sreenivasulu P, Sekhar G (2011) Duplex-immunocapture RT-PCR for detection and discrimination of two distinct potyviruses naturally infecting sugarcane (Saccharum spp. hybrid). Indian J Exp Biol 49:68–73

    Google Scholar 

  • Sudarshana MR, Reddy DVR (1989) Penicillinase-based Enzyme linked immunosorbent assay for the detection of plant viruses. J Virol Methods 26(1):45–52

    Article  PubMed  CAS  Google Scholar 

  • Suzuki C, Ueda H, Suzuki E, Nagamune T (1997) Construction, bacterial expression, and characterization of hapten-specific single-chain Fv and alkaline phosphatase fusion protein. J Biochem 122:322–329

    Article  PubMed  CAS  Google Scholar 

  • Svoboda J, Cervena G, Rodova J, Jokes M (2006) First report of Pepper mild mottle virus in pepper seeds produced in the Czech Republic. Plant Prot Sci 42:34–37

    Google Scholar 

  • Swanson MM, Harrison BD (1993) Serological relationships and epitope profiles isolates of okra leaf curl gemini virus from Africa and Middle East. Biochemie 75:707–711

    Article  CAS  Google Scholar 

  • Swanson MM, Valand GB, Muniyappa V, Harrison BD (1998) Serological detection and antigenic variation of two whitefly-transmitted geminiviruses: tobacco leafcurl and Crotan yellow vein viruses. Ann Appl Biol 132:427–435

    Article  Google Scholar 

  • Szemes M, Klerks MM, van den Heuvel JF, Schoen CD (2002) Development of a multiplex AmpleDet RNA assay for simultaneous detection and typing of Potato virus Y isolates. J Virol Methods 100:83–96

    Article  PubMed  CAS  Google Scholar 

  • Taiwo MA, Gonsalves D (1982) Serological grouping of isolates of blackeye cowpea mosaic and cowpea aphidborne mosaic viruses. Phytopathology 72:583–589

    Article  Google Scholar 

  • Taiwo MA, Gonsalves D, Provvidenti R, Thurston HD (1982) Partial characterization and grouping of isolates of blackeye cowpea mosaic and cowpea aphidborne mosaic viruses. Phytopathology 72:590–596

    Article  CAS  Google Scholar 

  • Taiwo MA, Hughes Jd’A, Oke KE (2006) Studies on Maize streak virus and maize mottle/chlorotic stunt virus in Lagos. Nigeria Plant Dis 90:199–202

    Article  Google Scholar 

  • Takaichi M, Yamamoto M, Nagakubo T, Oeda K (1998) Four garlic viruses identified by reverse transcription polymerase chain reaction and their regional distribution in Northern Japan. Plant Dis 82:694–698

    Article  CAS  Google Scholar 

  • Takaichi M, Nagakubo T, Oeda K (2001) Mixed virus infections of garlic determined by a multivalent polyclonal antiserum and virus effects on disease symptoms. Plant Dis 85:71–75

    Article  Google Scholar 

  • Taraku N, Tolin SA, Juretic N (1987) Identification and classification of soybean mosaic virus isolates found in Kosovo (Yugoslavia). Acta Botanica Croatica 46:15–21

    Google Scholar 

  • Tavladoraki P, Benvenuto E, Trinca S, De Martinis D, Cattaneo A, Galeffi P (1993) Transgenic plants expressing a functional single-chain Fv antibody are specifically protected from virus attack. Nature 366:469–472

    Article  PubMed  CAS  Google Scholar 

  • Tennant PF, Gonsalves C, Ling KS, Fitch M, Manshardt R, Slightom JL, Gonsalves D (1994) Differential protection against papaya ringspot virus isolates in coat protein gene transgenic papaya and classically cross-protected papaya. Phytopathology 84:1359–1366

    Article  Google Scholar 

  • Terrada E, Kerschbaumer RJ, Giunta G, Galeffi P, Himmler G, Cambra M (2000) Fully “recombinant Enzyme-linked immunosorbent assays” using genetically engineered single-chain antibody fusion proteins for detection of Citrus tristeza virus. Phytopatology 90:1337–1344

    Article  CAS  Google Scholar 

  • Thakur PD, Handa A (2000) Serological indexing against viruses in apple. In: Proceedings of international conference for integrated plant disease management for sustainable agriculture, pp 771–772

    Google Scholar 

  • Thakuria B, Baruah AR, Nath PD (2012) Detection of Tomato leaf curl virus from Jorhat using PCR. J Mycol Plant Pathol 42(2):230–233

    CAS  Google Scholar 

  • Thanavala Y, Huang Z, Mason HS (2006) Plant-derived vaccines: a look back at the highlights and a view to the challenges on the road ahead. Expert Rev Vaccines, 5(2):249–260

    Google Scholar 

  • Thomas JE, Massalski PR, Harrison BD (1986) Production of monoclonal antibodies to African cassava mosaic virus and differences in their reactivities with other whitefly transmitted gemini viruses. J Gen Virol 67:2739–2748

    Article  Google Scholar 

  • Thomas JE, Geering ADW, Gambley CF, Kessling AF, White M (1997) Purification, properties and diagnosis of banana bract mosaic potyvirus and its distinction from abaca mosaic potyvirus. Phytopathology 87:698–705

    Article  PubMed  CAS  Google Scholar 

  • Thornley WR, Mumford DL (1979) Intracellular location of beet curly top virus antigen as revealed by fluorescent antibody staining. Phytopathology 69:738–740

    Article  Google Scholar 

  • Thottappilly G, Dahal G, Lockhart BEL (1998) Studies on a Nigerian isolate of banana streak badnavirus: I. Purification and Enzyme-linked immunosorbent assay. Ann Appl Biol 132:253–261

    Article  Google Scholar 

  • Tobias I, Szabo B, Salanki K, Sari L, Kuhlmann H, Palkovics L (2008) Seed borne transmission of Zucchini yellow mosaic virus and Cucumber mosaic virus in Styrian Hulless group of Cucurbita pepo. In:Pitrat M (ed) Proceedings of the IXth EUCARPA meeting of genetics and plant breeding of cucurbitaceae. INRA, Avignon

    Google Scholar 

  • Torrance L (1998) Developments in serological methods to detect and identify plant viruses. Plant Cell Tissue Org Cult 52:27–32

    Article  CAS  Google Scholar 

  • Torrance L, Jones RAC (1981) Recent developments in serological methods suited for use in routine testing of plant viruses. Plant Pathol 30:1–24

    Article  Google Scholar 

  • Tripathi L, Tripathi JN, Tushemereirwe WK (2008) Rapid and efficient production of transgenic East African Highland Banana (Musa spp.) using intercalary meristematic tissues. Afr J Biotechnol 7(10):1438–1445

    Google Scholar 

  • Tsai CW, Chau J, Fernandez D, Bosco D, Daane KM, Almeida RPP (2008) Transmission of Grapevine leafroll associated virus-3 by the vine mealybug (Planococcus ficus). Phytopathology 98:1093–1098

    Article  PubMed  Google Scholar 

  • Tsai WS, Shih SL, Venkatesan SG, Aquino MU, Green SK, Kenyon L, Jan FJ (2011) Distribution and genetic diversity of begomoviruses infecting tomato and pepper plants in the Philippines. Ann Appl Biol 158:275–287

    Article  CAS  Google Scholar 

  • Tsuchizaki T, Saraki A, Saito Y (1978) Purification of citrus tristeza virus from diseased citrus fruits and the detection of the virus by in citrus tissues by fluorescent antibody techniques. Phytopathology 68:139–142

    Article  Google Scholar 

  • Tsuda S, Kameya-Iwaki M, Hanada K, Kouda Y, Hikata M, Tomaru K (1992) A novel detection and identification technique for plant viruses: rapid immunofilter paper assay (RIPA). Plant Disease 76(5):466–469

    Google Scholar 

  • Tsuda S, Fujisawa I, Hanada K, Hidaka S, Higo K, Kameya-Iwaki M, Tomaru K (1994) The detection of tomato spotted wilt virus S RNA from individual thrips by reverse transcriptase and polymerase chain reaction. Ann Phytopathol Soc Jpn 60:99–103

    Article  CAS  Google Scholar 

  • Tsutsumi N, Yanagisawa H, Fujiwara Y, Ohara T (2010) Detection of potato spindle tuber viroid by reverse transcription loop-mediated isothermal amplification. Res Bull Plant Prot Serv Jpn 46:61–67

    CAS  Google Scholar 

  • Tyagi S, Kramer FR (1996) Molecular beacons: probes that fluoresce upon hybridization. Nat Biotechnol 14:303–308

    Article  PubMed  CAS  Google Scholar 

  • Udayashankar AC, Nayaka CS, Kumar BH, Shetty HS, Prakash HS (2009) Detection and identification of the Black eye cowpea mosaic strain of Bean common mosaic virus in seeds of cowpea from Southern India. Phytoparasitica 37:283–293

    Article  Google Scholar 

  • Udayashankar AC, Nayaka CS, Kumar BH, Mortensen CN, Shetty HS, Prakash HS (2010) Establishing inoculum threshold levels for Bean common mosaic virus strain Black eye cowpea mosaic infection in cowpea seed. Afr J Biotechnol 9(53):8958–8969

    Google Scholar 

  • Vaianopoulos C, Legreve A, Barbier A, Steyer S, Maraite H, Bragard C (2003) Detection of Barley yellow mosaic virus and Barley mild mosaic virus by RT-PCR on resistant barley cultivars. Parasitica 59:67–74

    Google Scholar 

  • Van Antwerpen T, Rutherford RS (2008) Increased risk of new virus infections in the south African sugarcane industry: preparing for the future. Proc S Afr Sug Technol Ass 81:365–380

    Google Scholar 

  • van Beckhoven JRCM, Stead DE, van der Wolf JM (2002) Detection of Clavibacter michiganensis subsp. sepedonicus by AmpliDet RNA, a new technology based on real time monitoring of NASBA amplicons with a molecular beacon. J Appl Microbiol 93:840–849

    Article  PubMed  Google Scholar 

  • van Doorn R, Szemes M, Bonants P, Kowalchuk GA, Salles JF, Ortenberg E, Schoen CD (2007) Quantitative multiplex detection of plant pathogens using a novel ligation probe-based system coupled with universal, high-throughput realtime PCR on Open Arrays. BMC Genomics 14:276

    Article  CAS  Google Scholar 

  • Van Regenmortel MHV (1982) Serology and immunochemistry of plant viruses. Academic Press, New York, p 268

    Google Scholar 

  • Van Regenmortel MHV (1984) Monoclonal antibodies in plant virology. Microb Sci 1:73–78

    Google Scholar 

  • Van Vuurde JWL, Maat DZ (1983) Routine application of ELISA for the detection of lettuce mosaic virus in rettuce seeds. Seed Sci Technol 11:505–514

    Google Scholar 

  • Van Vuurde JWL, Maat DZ (1985) Enzyme-linked immunosorbent assay (ELISA) and disperse-dye immuno assay (DIA): comparison of simultaneous and separate incubation of sample and conjugate for the routine detection of lettuce mosaic viurs and pea early-blowing virus in seeds. Neth J Plant Pathol 91:3–13

    Article  Google Scholar 

  • Varga A, James D (2006) Use of reverse transcripton loop-mediated isothermal amplification for the detection of Plum pox virus. J Virol Methods 138:184–190

    Article  PubMed  CAS  Google Scholar 

  • Varma A, Khetarpal RK, Viswanath SM, Kumar D, Maury Y, Sharma B, Tyagi MC (1991) Detection of pea seed-borne mosaic virus in commercial seeds of pea, and germ plasm of pea and lentil. Indian Phytopathol 44:107–111

    Google Scholar 

  • Varma A, Krishna Reddy M, Malathi VG (1992) Influence of the amount of the blackgram mottle virus in different tissues on transmission through the seeds of Vigna mungo. Plant Pathol 41:274–281

    Article  Google Scholar 

  • Varma A, Niazi FR, Dasgupta I, Singh J, Cheema SS, Sokhi SS (1999) Alarming epidemic of rice tungro disease in North-West India. Indian Phytopathol 52(1):71–74

    Google Scholar 

  • Vashpanov Y, Son JY, Kwack KD (2008) Mesoporous silicon with modified surface for plant viruses and their protein particle sensing. Sensors 8:6225–6234

    Article  CAS  Google Scholar 

  • Vaskova D, Spak J, Klerks MM, Schoen CD, Thompson JR, Jelkmann (2004) Real-time NASBA for detection of strawberry vein banding virus. Euro J Plant Patholo 110:213–221

    Google Scholar 

  • Vercruysse P, Gibbs M, Tirry L, Hofte M (2000) RT-PCR using redundant primers to detect the three viruses associated with carrot mottley dwarf disease. J Virol Methods 88(2):153–161

    Article  PubMed  CAS  Google Scholar 

  • Verhoeven JKJ, Jansen CCC, Roenhorst JW, Flores R, de la Pena M (2009) Pepper chat fruit viroid: biological and molecular properties of a proposed new species of the genus Pospiviroid. Virus Res 144:209–214

    Article  PubMed  CAS  Google Scholar 

  • Verma Y, Sood S, Ahlawat YS, Khurana SMP, Singh RP (2003) Evaluation of multiplex reverse transcription polymerase chain reaction (RT-PCR) for simultaneous detection of potato viruses and strains. Indian J Biotechnol 2:587–590

    CAS  Google Scholar 

  • Verma Y, Khurana SMP, Mohan J, Mukherjee K (2004) Development of indigenous nucleic acid probe for the detection of Potato virus Y. Proc Natl Acad Sci India 74:245–251

    CAS  Google Scholar 

  • Vinayarani G, Madhusudhan KN, Deepak SA, Niranjana SR, Prakash HS (2011) Detection of mixed infection of tobamoviruses in tomato and bell pepper by using RT-PCR and Duplex RT-PCR. Int J Plant Pathol. ISSN 1996-0719/DOI: 10. 3923/IJPP

    Google Scholar 

  • Vincelli P, Tisserat N (2008) Nucleic Acid-based pathogen detection in applied plant pathology. Plant Dis 92:660–669

    Article  CAS  Google Scholar 

  • Viswanathan R and Balamuralikrishnan M (2004) Detection of sugarcane yellow leaf virus, the causal agent of yellow leaf syndrome in sugarcane by DAS-ELISA. Arch Phytopathol Plant Protect 37:169–176

    Google Scholar 

  • Viswanathan R, Balamuralikrishnan M and Karuppaiah R (2008) Duplex - reverse transcription—polymerase chain reaction (D-RT-PCR)—a technique for the simultaneous detection of viruses causing sugarcane mosaic. Sugar Tech 10(1):81–86

    Google Scholar 

  • Viswanathan R,Karuppaiah R, Malathi P, Ganesh Kumar V and Chinnaraja C (2009) Diagnosis of Sugarcane yellow leaf virus in asymptomatic sugarcane by RT-PCR. Sugar Tech 11:368–372

    Google Scholar 

  • Viswanathan R, Karuppaiah R, Balamuralikrishnan M (2010) Detection of three major RNA viruses infecting sugarcane by multiplex reverse transcription-polymerase chain reaction (Multiplex-RT-PCR). Austr Plant Pathol 39:79–84

    Article  CAS  Google Scholar 

  • Vitushkina M, Fechtner B, Agranovsky A, Jelkmann W (1994) Development of an RT-PCR for the detection of little cherry virus and characterization of some isolates occurring in Europe. Eur J Plant Pathol 103:803–808

    Article  Google Scholar 

  • Voller A, Bartlett A, Bidwell DE, Clark MF, Adams AN (1976) The detection of viruses by Enzyme-linked immunosorbent assay (ELISA). J Gen Virol 33:165–167

    Article  PubMed  CAS  Google Scholar 

  • Von Wechmar MB, Kaufmann A, Rybicki RP (1983) Serological detection of cucumber mosaic virus in Southern African cereal crops: seed borne CMV in barley. In barley yellow dwarf. A proceedings of the workshop, 6–8 Dec 1983

    Google Scholar 

  • Von Wechmar MB, Kaufmann A, Desmarais F, Rybicki EP (1984) Detection of seed transmitted brome mosaic virus by ELISA, radial immunodiffusion and immune electroblotting tests. Pytopathologische Zeitchrift 109(4):341–352

    Article  Google Scholar 

  • Voss A, Niersbach M, Hain R, Hirsch HJ, Liao YC, Kreuzaler F, Fischer R (1995) Reduced virus infectivity in N. tabacum secreting a TMV-specific full-size antibody. Mol Breeding 1:39–50

    Article  CAS  Google Scholar 

  • Wah Y, Symons RH (1997) A high sensitivity RT-PCR assay for the diagnosis of grapevine viroids in field and tissue culture samples. J Virol Methods 63:57–69

    Article  Google Scholar 

  • Walia Y, Kumar Y, Rana T, Hallan V, Ram R, Zaidi AA (2008) Identification and characterization of Apple scar skin viroid infecting apple in India. J Gen Plant Pathol 75:307–311

    Article  CAS  Google Scholar 

  • Walsh K, North J, Barker I, Boonham N (2001) Detection of different strains of potato virus Y and their mixed infections using competitive fluorescent RT-PCR. J Virol Methods 91:167–173

    Article  PubMed  CAS  Google Scholar 

  • Walter MH, Kaiser WJ, Klein RE, Wyatt SD (1992) Association between tobacco streak Ilarvirus seed transmission and anther tissue infection in bean. Phytopathology 82:412–415

    Article  Google Scholar 

  • Wang WY, Mink GI, Silbernagel KJ (1982) Comparision of direct and indirect Enzyme-linked immunosorbent assay (ELISA) in the detection of bean common mosaic virus. Phytopathology 72:954 (abstract)

    Google Scholar 

  • Wang WY, Mink GI, Silbernagel MJ (1985) The use of Enzyme-linked immunoblot assay (EIBA) to detect Bean common mosaic virus in individual bean seeds. Phytopathology 75:1352 (abstract)

    Google Scholar 

  • Wang D, Coscoy L, Zylberberg M, Avila PC, Boushey HA, Ganem D, DeRisi JL (2002) Microarray-based detection and genotyping of viral pathogens. Proc Natl Acad Sci U S A 99:15687–15692

    Article  PubMed  CAS  Google Scholar 

  • Wanitchakorn R, Harding RM, Dale JL (1997) Banana bunchy top virus DNA-3 encodes the viral coat protein. Arch Virol 142:1673–1680

    Article  PubMed  CAS  Google Scholar 

  • Warwick D, Demski JW (1988) Susceptibility and resistance of soybean to peanut stripe virus. Plant Dis 72:19–21

    Article  Google Scholar 

  • Webster CG, Wylie SJ, Jones MGK (2004) Diagnosis of plant viral pathogens. Curr Sci 86:1604–1607

    CAS  Google Scholar 

  • Wei Y, Lee JM, Smulski DR, LaRossa RA (2001) Global impact of sdiA amplification revealed by comprehensive gene expression profiling of Escherichia coli. J Bacteriol 183:2265–2272

    Article  PubMed  CAS  Google Scholar 

  • Welnicki M, Hiruki C (1992) Highly sensitive digoxigenin-labeled DNA probe for the detection of potato spindle tuber viroid. J Virol Methods 39:91–99

    Google Scholar 

  • Werner R, Muhlbach H-P, Buttner C (1997) Detection of cherry leaf roll nepovirus (CLRV) in birch, beech and petunia by immunocapture RT-PCR using a conserved primer pair. Eur J Pathol 27:309–318

    Article  Google Scholar 

  • Wetzel T, Tavert G, Teycheney PY, Ravelonandro M, Candresse T, Dunez J (1990) Dot hybridization detection of plum pox virus using 32P-labeled RNA probes representing non- structural viral protein genes. J Virol Methods 30:161–172

    Article  PubMed  CAS  Google Scholar 

  • Wetzel T, Candresse T, Ravelonbandro M, Dunez J (1991) A polymerase chain reaction assay adapted to plum pox virus detection. J Virol Methods 33:355–365

    Article  PubMed  CAS  Google Scholar 

  • Wetzel T, Candresse T, Macquaire G, Revelonandro M, Dunez J (1992) A highly sensitive immunocapture polymerase chain reaction method for plum pox potyvirus detection. J Virol Methods 39:27–37

    Article  PubMed  CAS  Google Scholar 

  • Wetzel T, Jardak R, Meunier L, Ghorbel A, Reustle GM (2002) Simultaneous RT/PCR detection and differentiation of arabis mosaic and grapevine fanleaf nepoviruses in grapevine with a single pair of primers. J Virol Methods 101:63–69

    Article  PubMed  CAS  Google Scholar 

  • Whitcombe D, Theaker J, Guy SP, Brown T, Little S (1999) Detection of PCR products using self probing amplicons and fluorescence. Nat Biotechnol 17:804–807

    Article  PubMed  CAS  Google Scholar 

  • Willates WG (2002) Phage display: practicalities and prospects. Plant Mol Biol 50:837–854

    Article  Google Scholar 

  • Wittekindt C, Fleckenstein B, Wiesmuller K, Eing BR, Kuhn JE (2000) Detection of human serum antibodies against type-specifically reactive peptides from the N-terminus of glycoprotein B of herpes simplex virus type 1 and type 2 by surface plasmon resonance. J Virol Methods 87:133–144

    Article  PubMed  CAS  Google Scholar 

  • Wu X, Zhou X, Li Z, Gao W, Wu J (2009) Monoclonal antibodies against Tobacco rattle virus and its application in the detection of TRV isolates. Indian J Virol 20(2):64–69

    Google Scholar 

  • Wylie SJ, Wilson CR, Jones RAC, Jones MGK (1993) A polymerase chain reaction assay for Cucumber mosaic virus in lupin seeds. Aust J Agric Res 44:41–51

    Article  CAS  Google Scholar 

  • Xu Z, Chen K, Zhang Z, Chen J (1991) Seed transmission of peanut stripe virus in peanut. Plant Dis 75:723–726

    Article  Google Scholar 

  • Yang ZN, Mirkov TE (1997) Sequence and relationships of sugarcane mosaic and sorghum mosaic virus strains and development of RT-PCR-based RFLPs for strain discrimination. Phytopathology 87:932–939

    Article  PubMed  CAS  Google Scholar 

  • Yang S, Rothman RE (2004) PCR-based diagnostics for infectious diseases: uses, limitations and future applications in acute care settings. Lancet Infect Dis 4(6):337–348

    Article  PubMed  CAS  Google Scholar 

  • Yang X, Hadidi A, Garnsey S (1992) Enzymatic cDNA amplification of citrus exocortis and cachexia viroids from infected citrus hosts. Phytopathology 82:279–285

    Article  CAS  Google Scholar 

  • Yilmaz MA, Ozaslan D (1989) Detection of cowpea aphid-borne mosaic virus by Enzyme linked immunosorbent assay on cowpea and bean seeds. doga, Turk Tarum ve Ormancilik Deggisi 13:870–873

    Google Scholar 

  • Yokomi RK, Saponari M, Sieburth PJ (2010) Rapid differentiation of potential severe strains of citrus tristeza virus by Real-time Reverse Transcription-Polymerase chain reaction assays. Phytopathology 100:319–327

    Article  PubMed  CAS  Google Scholar 

  • Yourno J (1992) A method for nested PCR with single closed reaction tubes. PCR Methods Appl 2:60–65

    Article  PubMed  CAS  Google Scholar 

  • Zechmann B, Zelling G (2009) Rapid diagnosis of plant virus diseases by transmission electron microscopy. J Virol Methods 162:163–169

    Article  PubMed  CAS  Google Scholar 

  • Zein HS, Nakazawa M, Ueda M, Miyatake K (2007) Development of serological procedures for rapid and reliable detection of Cucumber mosaic virus with dot-immunobinding assay. World J Agric Sci 3:430–439

    Google Scholar 

  • Zhang T, Breitbart M, Lee WH, Run JQ, Wei CL, Soh SW, Hibberd ML, Liu ET, Rohwer F, Ruan Y (2006) RNA viral community in human feces: prevalence of plant pathogenic viruses. PLoS Biol 4:e3

    Article  PubMed  CAS  Google Scholar 

  • Zhang M-Q, Rao GP, Gaur RK, Ruan M-H, Singh M, Sharma SR, Singh A, Singh P (2008) Sugarcane mosaic virus. In: Rao GP, Paul Khurana SM, Lenardon Sergio L (eds) Characterization diagnosis and management of plant viruses. Industrial crops, vol I. Studium Press, LLC, Houston, pp 111–144, 505 p

    Google Scholar 

  • Zhou GH, Wen JJ, Cai DJ, Li P, Xu DL, Zhang SG (2008) Southern rice black-streaked dwarf virus: a new proposed Fijivirus species in the family Reoviridae. Chin Sci Bull 53(23):3677–3685

    Article  CAS  Google Scholar 

  • Zimmer DP, Soupene E, Lee HL, Wendisch VF, Khodursky AB, Peterm BJ, Bender RA, Kustu S (2000) Nitrogen regulatory protein C-controlled genes of Escherichia coli: scavenging as a defense against nitrogen limitation. Proc Natl Acad Sci U S A 97:14674–14679

    Article  PubMed  CAS  Google Scholar 

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Sastry, K.S. (2013). Diagnosis and Detection of Plant Virus and Viroid Diseases. In: Plant Virus and Viroid Diseases in the Tropics. Springer, Dordrecht. https://doi.org/10.1007/978-94-007-6524-5_5

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