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Suppression of Plant Defence in the Medicago Sativa (Alfalfa)-Sinorhizobium meliloti Symbiosis

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Highlights of Nitrogen Fixation Research

Abstract

The gene cluster of Sinorhizobium meliloti directing the biosynthesis of the exopolysaccharide succinoglycan (EPS I) was analyzed in detail. S. meliloti mutants deficient in EPS I production induced the formation of non-infected pseudonodules displaying plant defence reactions. The hypothesis that the plant defence in alfalfa is suppressed by the S. meliloti exopolysaccharide EPS I was verified using elicitor responsive alfalfa suspension cultures. It was shown that yeast elicitors, chitin oligosaccharides and cell wall fragments of alfalfa cells induced an alkalinization of the cell culture medium. The alkalinization of alfalfa cell cultures could be reduced drastically by adding low molecular weight EPS I indicating that this compound acts as a signal substance in the suppression of alfalfa defence reactions.

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References

  • Becker A, Kleickmann A, Arnold W, and PĆ¼hler A 1993. Analysis of the Rhizobium meliloti exoH/exoK/exoL fragment: ExoK shows homology to excreted endo-Ī²-1,3ā€“1,4-glucanases and ExoH resembles membrane proteins. Mol. Gen. Genet. 238, 145ā€“154.

    CASĀ  Google ScholarĀ 

  • Becker A, Kleickmann A, Keller M, Arnold W, and PĆ¼hler A 1993. Identification and analysis of the Rhizobium meliloti exoAMONP genes involved in exopolysaccharide biosynthesis and mapping of promoters located on the exoHKLAMONP fragment. Mol. Gen. Genet. 241, 367ā€“379.

    ArticleĀ  PubMedĀ  CASĀ  Google ScholarĀ 

  • Becker A, Kleickmann A, KĆ¼ster H, Keller M, Arnold W, and PĆ¼hler A 1993. Analysis of the Rhizobium meliloti genes exoU, exoV,exoW, exoT, and exoI involved in exopolysaccharide biosynthesis and nodule invasion: exoU and exoW probably encode glucosyltransferases. MPMI 6, 735ā€“744.

    ArticleĀ  PubMedĀ  CASĀ  Google ScholarĀ 

  • Becker A, KĆ¼ster H, Niehaus K, and PĆ¼hler A 1995. Extension of the Rhizobium meliloti succinoglycan biosynthesis gene cluster: identification of the exsA gene encoding an ABC transporter protein, and the exsB gene which probably codes for a regulator of succinoglycan biosynthesis. Mol. Gen. Genet. 249, 487ā€“497.

    CASĀ  Google ScholarĀ 

  • Buendia AM, Enenkel B, Kƶplin R, Niehaus K, Arnold W, and PĆ¼hler A 1991. The Rhizobium meliloti exoZ/exoB fragment of megaplasmid 2: ExoB functions as a UDP-glucose 4-epimerase and ExoZ shows homology to NodX of Rhizobium leguminosarum biovar viciae strain TOM. Mol. Microbiol. 5, 1519ā€“1530.

    CASĀ  Google ScholarĀ 

  • Felix G, Regenass M, and Boller T 1993. Specific perception of subnanomolar concentrations of chitin fragments by tomato cells. Plant Journal 4, 307ā€“316.

    ArticleĀ  CASĀ  Google ScholarĀ 

  • Glucksmann MA, Reuber TL, and Walker GC 1993. Family of glycosyltransferases needed for the synthesis of succinoglycan by Rhizobium meliloti. J. Bacteriol. 175, 7033ā€“7044.

    PubMedĀ  CASĀ  Google ScholarĀ 

  • Glucksmann MA, Reuber TL, and Walker GC 1993. Genes needed for the modification, polymerization, export, and processing of succinoglycan by Rhizobium meliloti: a model for succinoglycan biosynthesis. J. Bacteriol. 175, 7045ā€“7055

    PubMedĀ  CASĀ  Google ScholarĀ 

  • Kapp D, Niehaus K, Quandt J, MĆ¼ller P, and PĆ¼hler A 1990. Cooperative action of Rhizobium meliloti nodulation and infection mutants during the process of forming mixed infected alfalfa nodules. The Plant Cell 2, 139ā€“151.

    PubMedĀ  Google ScholarĀ 

  • Leigh JA, Reed JW, Hanks JF, Hirsch AM, and Walker GC 1987. Rhizobium meliloti mutants that fail to succinylate their Calcofluor-binding exopolysaccharide are defective in nodule invasion. Cell 51, 579ā€“587.

    ArticleĀ  PubMedĀ  CASĀ  Google ScholarĀ 

  • Leigh JA, Signer ER, and Walker GC 1985. Exopolysaccharide-deficient mutants of Rhizobium meliloti that form ineffective nodules. PNAS 85, 6231ā€“6235.

    ArticleĀ  Google ScholarĀ 

  • Long S, Reed JW, Himawan J, and Walker GC 1988. Genetic analysis of a cluster of genes required for synthesis of the Calcofluor-binding exopolysaccharide of Rhizobium meliloti. J. Bacteriol. 170, 4239ā€“4248.

    PubMedĀ  CASĀ  Google ScholarĀ 

  • MĆ¼ller P, Hynes M, Kapp D, Niehaus K, and PĆ¼hler A 1988. Two classes of Rhizobium meliloti infection mutants differ in exopolysaccharide production and in coinoculation properties with nodulation mutants. Mol. Gen. Genet. 211, 17ā€“26.

    ArticleĀ  Google ScholarĀ 

  • MĆ¼ller P, Keller M, Weng WM, Quandt J, Arnold W, and PĆ¼hler A 1993. Genetic analysis of the Rhizobium meliloti exoYFQ operon: ExoY is homologous to sugar transferases and ExoQ represents a trans-membrane protein. MPMI 6, 55ā€“65.

    ArticleĀ  PubMedĀ  Google ScholarĀ 

  • Niehaus K, Kapp D, Lorenzen J, Meyer-Gattermann P, Sieben S, and PĆ¼hler A 1994. Plant defence in alfalfa pseudonodules induced by an exopolysaccharide (EPS I)-deficient symbiont (Rhizobium meliloti). In Acta Horticulturae 381 Natural Phenols in Plant Resistance. Eds.M Geibel, D Treutter, and W Feucht. pp 258ā€“264. Sellier Druck GmbH, Freising.

    Google ScholarĀ 

  • Niehaus K, Baier R, Kohring B, Flaschel E, and PĆ¼hler A 1997. Symbiotic suppression of the Medicago sativa plant defence system by Rhizobium meliloti oligosaccharides. In NATO ASI Series, G 39 Biological Fixation of Nitrogen for Ecology and Sustainable Agriculture. Eds A Legocki, H Bothe, and A PĆ¼hler. pp 111ā€“114. Springer-Verlag, Berlin Heidelberg.

    ChapterĀ  Google ScholarĀ 

  • Niehaus K, Albus U, Baier R, Schiene K, Schrƶder S, and PĆ¼hler A 1998. Symbiotic suppression of the Medicago sativa plant defence system by Rhizobium meliloti oligosaccharides. In Biological Nitrogen Fixation for the 21st Century. Eds. C Elmerich, A Kondorosi, and WE Newton. pp 225ā€“226. Kluwer Academic Publishers, Dordrecht.

    Google ScholarĀ 

  • Reed JW, Capage M, and Walger GC 1991. Rhizobium meliloti exoG and exoJ mutations affect the exoX-exoY system for modulation of exopolysaccharide production. J. Bacteriol. 173, 3776ā€“3788.

    PubMedĀ  CASĀ  Google ScholarĀ 

  • Reuber TL and Walker GC 1993. Biosynthesis of succinoglycan, a symbiotically important exopolysaccharide of Rhizobium meliloti. Cell 74, 269ā€“280.

    ArticleĀ  PubMedĀ  CASĀ  Google ScholarĀ 

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Niehaus, K., Becker, A., PĆ¼hler, A. (1999). Suppression of Plant Defence in the Medicago Sativa (Alfalfa)-Sinorhizobium meliloti Symbiosis. In: MartÄŗnez, E., HernĆ”ndez, G. (eds) Highlights of Nitrogen Fixation Research. Springer, Boston, MA. https://doi.org/10.1007/978-1-4615-4795-2_21

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  • DOI: https://doi.org/10.1007/978-1-4615-4795-2_21

  • Publisher Name: Springer, Boston, MA

  • Print ISBN: 978-1-4613-7172-4

  • Online ISBN: 978-1-4615-4795-2

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