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Nutritional Disorders of Florists’ Crops

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Handbook of Florists' Crops Diseases

Part of the book series: Handbook of Plant Disease Management ((HPDM))

Abstract

Nutrient disorders result from chemical imbalances in plants caused by prolonged insufficient or excessive concentrations of elements in plant tissue. Nutrient deficiencies develop when an essential element is below the critical concentration required for growth and development. Nutrient phytotoxicity occurs when an element, essential or nonessential, is present at concentrations higher than what the plant can metabolize. Both conditions can cause abnormal growth and development. Generalization of nutrient disorder symptoms in floriculture crops is complex because the response to nutrient concentration is specific to the plant genetics. Visual diagnosis of nutrient disorders in the field is conducted by matching nutrient function and mobility to distribution and characteristics of symptoms. Nutrient deficiencies in plants may result from insufficient nutrient levels at the root zone, interactions with other elements, or reduced absorption caused by other growth factors not directly related to nutrition. Diagnosticians can provide immediate on-site corrective recommendations based on visual diagnosis. However, recommendations should be adjusted when nutrient analyses become available. Nutrient management begins with planning a nutrient program based on water quality, growing media properties, and crops’ requirements (genetics and growth stage). In general, corrective procedures for deficiencies include a single foliar or drench application of the element or adjustment of the pH or fertilization program. Corrective options for nutrient toxicity include discontinued application of the element, increased leaching with clear water, changed or blended water source (if water source is the problem), pH increase, or use of antagonistic elements to reduce uptake.

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References

  • Argo WR, Fisher PR (2002) Understanding pH management for container-grown crops. Meister, Willoughby

    Google Scholar 

  • Arnon DI, Stout PR (1939) The essentiality of certain elements in minute quantity for plants with special reference to copper. Plant Physiol 14:371–375

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Bailey DA, Nelson PV (1998) Managing micronutrients in the greenhouse. NCSU Hortic Inform Leafl 553, pp 1–6. Retrieved from: https://content.ces.ncsu.edu/managing-micronutrients-in-the-greenhouse

  • Barnes JG (2010) Characterization of nutrient disorders of floriculture species. MS thesis, North Carolina State University, p 216

    Google Scholar 

  • Barnes J, Whipker BE, McCall I, Frantz J (2011) Characterization of nutrient disorders of Lilium longiflorum ‘Nellie White’ and Lilium Hybrid ‘Brunello’. Acta Hortic 900:205

    Article  CAS  Google Scholar 

  • Barnes J, Whipker B, McCall I, Frantz J (2012) Nutrient disorders of ‘Evolution’ mealy-cup sage. HortTechnology 22:502–508

    CAS  Google Scholar 

  • Bates TE (1971) Factors affecting critical nutrient concentrations in plants and their evaluation: a review. Soil Sci 112:116–130

    Article  CAS  Google Scholar 

  • Bennett WF (1993) Plant nutrient utilization and diagnostic plant symptoms. In: Bennett WF (ed) Nutrient deficiencies and toxicities in crop plants. APS Press, St. Paul, pp 1–7

    Google Scholar 

  • Bingham FT (1965) Chapter 23, Phosphorus. In: Chapman HD (ed) Diagnostic criteria for plants and soils. Quality Printing Abilene, Abilene, pp 324–361

    Google Scholar 

  • Bould C (1984) Methods for diagnosing nutrient disorders in plants. In: Robinson JBD (ed) Diagnosis of mineral disorders in plants vol: 1 principles. Chemical Publishing, New York, pp 111–136

    Google Scholar 

  • Brownell PF, Crossland CJ (1972) The requirement for sodium as a micronutrient by species having the C4 dicarboxylic photosynthetic pathway. Plant Physiol 49:794–797

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Carter CT, Grieve CM (2008) Mineral nutrition, growth, and germination of Antirrhium majus L. (Snap dragon) when produced under increasingly saline conditions. HortTech 43(3):710–718

    Google Scholar 

  • Cox DA, Seeley JG (1984) Ammonium injury to poinsettia: effects of NH4-N:NO3-N ratio and pH control in solution culture on growth, N absorption, and N utilization. Am Soc Hortic Sci 109:57–62

    CAS  Google Scholar 

  • Dale ME, Paparozzi ET, Carr JD (1990) Sulfur deficiency in poinsettia. HortScience 24:424–426

    Google Scholar 

  • Datnoff LE, Elmer WH, Huber DM (eds) (2007) Mineral nutrition and plant disease. APS Press, St. Paul, p 278

    Google Scholar 

  • De Kreij C, van den Berg TJM (1990) Physiology and applications, nutrient uptake, production and quality of Rosa hybrida in rockwool as affected by electrical conductivity of the plant nutrient solution. In: Van Beusichem ML (ed) Plant nutrition. Kluwer, Dordrecht, pp 519–523

    Google Scholar 

  • De Kreij C, van Os PC (1989) Proceedings of the 7th international congress. Soilless culture production and quality of Gerbera in Rockwool as affected by electrical conductivity of the nutrient solution. Flevohof, The Netherlands pp 255264

    Google Scholar 

  • Ecke P III, Faust JE, Williams JA, Higgins A (2004) The Ecke poinsettia manual. Chicago Review Press, Chicago, 302p

    Google Scholar 

  • Epstein E (1994) The anomaly of silicon in plant biology. Proc Natl Acad Sci U S A 91:11–17

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Epstein E (1999) Silicon. Annu Rev Plant Physiol Plant Mol Biol 50:641–664

    Article  CAS  PubMed  Google Scholar 

  • Epstein E, Bloom AJ (2005) Mineral nutrition of plants: principles and perspectives, 2nd edn. Sinauer Associates, Sunderland, p 389

    Google Scholar 

  • Evans HJ, Sorger G (1966) Role of mineral elements with emphasis on the univalent cations. Annu Rev Plant Physiol 17:47–76

    Article  CAS  Google Scholar 

  • Fisher PR, Wik RM, Smith BR, Pasian CC, Kmetz-González M, Argo WR (2003) Correcting iron deficiency in calibrachoa grown in a container medium at high pH. HortTechnology 13:308–313

    CAS  Google Scholar 

  • Frantz J, Locke J, Pitchay D (2006) Geranium nutrient deficiencies: a visual primer for grower diagnosis and correction. OFA Bull 894:9–15

    Google Scholar 

  • Gaffney JM, Lindstrom RS, McDaniel AR, Lewis AJ (1982) Effect of ammonium and nitrate nitrogen on growth of poinsettia. HortScience 17:603–604

    Google Scholar 

  • Gibson JL (2006) Stock plant and cutting nutrition. In: Cutting propagation: a guide to propagating and producing floriculture crops. Ball Publishing, Batavia, pp 77–88

    Google Scholar 

  • Gibson JL, Pitchay DS, Williams-Rhodes AL, Whipker BE, Nelson PV, Dole JM (2007) Nutrient deficiencies in bedding plants: a pictorial guide for identification and correction. Ball Publishing, Batavia, pp 1–369

    Google Scholar 

  • Gislerod HR (1999) The role of calcium on several aspects of plant and flower quality from a floriculture perspective. Acta Hortic 481:345–351

    Article  CAS  Google Scholar 

  • Hewitt EJ (1984a) The essential and functional mineral elements. In: Robinson JBD (ed) Diagnosis of mineral disorders in plants vol: 1 principles. Chemical Publishing, New York, pp 7–53

    Google Scholar 

  • Hewitt EJ (1984b) The effects of mineral deficiencies and excesses on growth composition. In: Robinson JBD (ed) Diagnosis of mineral disorders in plants vol: 1 principles. Chemical Publishing, New York, pp 54–110

    Google Scholar 

  • Hoagland DR (1944) Lectures on inorganic nutrition of plants. Chronica Botanica, Waltham

    Book  Google Scholar 

  • Jones WW (1965) Chapter 22 Nitrogen. In: Chapman HD (ed) Diagnostic criteria for plants and soils. Quality Printing Abilene, Abilene, pp 310–323

    Google Scholar 

  • Laurie A, Wagner A (1940) Deficiency symptoms of greenhouse flowering crops. OARDC Bull 611, pp 1–27

    Google Scholar 

  • Lea-Cox J (2015) Nutrient monitoring objectives. In: Basics of fertilization module. Available via WATERNUT. http://www.waternut.org/moodle/. Accessed 21 Oct 2015

  • Lee MK, van Iersel MW (2008) Sodium chloride effects on growth, morphology, and physiology of chrysanthemum (Chrysanthemum × morifolium). HortScience 43:1688–1891

    Google Scholar 

  • Marschner H (1995) Mineral nutrition of higher plants, 2nd edn. Academic, London

    Google Scholar 

  • McDonald JS (1994) Nutrient supply and plant growth. In: Lumsden PJ, Nicholas JR, Daview WJ (eds) Physiology, growth and development of plants in culture. Springer, Dordrecht, pp 47–57

    Chapter  Google Scholar 

  • Mengel K, Kirkby EA (2001) Principles of plant nutrition. Springer, Dordrecht

    Book  Google Scholar 

  • Nelson PV (1998) Greenhouse operations and management, 5th edn. Prentice Hall, Upper Saddle River

    Google Scholar 

  • Paparozzi ET (2003) Nutrition of floricultural crops: how far have we come? HortScience 38:1031–1035

    Google Scholar 

  • Pardo JM, Quintero FJ (2002) Plants and sodium ions: keeping company with the enemy. Genome Biol 3(6):1017.1–1017.4

    Article  Google Scholar 

  • Smith BR, Fisher PR, Argo WR (2004) Water-soluble fertilizer concentration and pH of a peat-based substrate affect growth, nutrient-uptake, and chlorosis of container-grown seed geraniums. J Plant Nutr 27:497–524

    Article  CAS  Google Scholar 

  • Styer RC, Koranski DS (1997) Plug and transplant production: a grower’s guide. Ball Publishing, Batavia, pp 193–227

    Google Scholar 

  • Taiz L, Zeiger J (2006) Plant physiology, 4th edn. Sinauer Associates Inc, Sunderland

    Google Scholar 

  • Ulrich A, Ohki K (1965) Potassium. In: Chapman HD (ed) Diagnostic criteria for plants and soils. Quality Printing Abilene, Abilene, pp 362–393

    Google Scholar 

  • Wang YT (2007) Potassium nutrition affects Phalaenopsis growth and flowering. Hortscience 42:1563–1567

    CAS  Google Scholar 

  • Welch RM, Shuman L (1995) Micronutrient nutrition of plants. Crit Rev Plant Sci 14:49–82

    Article  CAS  Google Scholar 

  • Whipker BE, Cavins TJ, Gibson JL, Dole JM, Nelson PV, Fonteno W (2011) Plant nutrition. In: Nau J (ed) Ball redbook vol 2: crop production. Ball Publishing, Batavia, pp 33–41

    Google Scholar 

  • Winsor G, Adams P (1987) Part II flowers. In: Robinson JBD (ed) Diagnosis of mineral disorders in plants vol 3: glasshouse crops. Chemical Publishing, New York, pp 72–167

    Google Scholar 

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Correspondence to Rosa E. Raudales .

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Raudales, R.E. (2018). Nutritional Disorders of Florists’ Crops. In: McGovern, R., Elmer, W. (eds) Handbook of Florists' Crops Diseases. Handbook of Plant Disease Management. Springer, Cham. https://doi.org/10.1007/978-3-319-39670-5_2

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