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Silencing of the GDP-D-mannose 3,5-epimerase affects the structure and cross-linking of the pectic polysaccharide rhamnogalacturonan II and plant growth in tomato
Authors:Voxeur Aline  Gilbert Louise  Rihouey Christophe  Driouich Azeddine  Rothan Christophe  Baldet Pierre  Lerouge Patrice
Affiliation:Laboratoire Glycobiologie et Matrice Extracellulaire Végétale, Equipe Associée 4358, Institut Fédératif de Recherche 23, Université de Rouen, 76821 Mont-Saint-Aignan, France.
Abstract:L-galactose (L-Gal), a monosaccharide involved in L-ascorbate and rhamnogalacturonan II (RG-II) biosynthesis in plants, is produced in the cytosol by a GDP-D-mannose 3,5-epimerase (GME). It has been recently reported that the partial inactivation of GME induced growth defects affecting both cell division and cell expansion (Gilbert, L., Alhagdow, M., Nunes-Nesi, A., Quemener, B., Guillon, F., Bouchet, B., Faurobert, M., Gouble, B., Page, D., Garcia, V., Petit, J., Stevens, R., Causse, M., Fernie, A. R., Lahaye, M., Rothan, C., and Baldet, P. (2009) Plant J. 60, 499-508). In the present study, we show that the silencing of the two GME genes in tomato leaves resulted in approximately a 60% decrease in terminal L-Gal content in the side chain A of RG-II as well as in a lower capacity of RG-II to perform in muro cross-linking. In addition, we show that unlike supplementation with L-Gal or ascorbate, supplementation of GME-silenced lines with boric acid was able to restore both the wild-type growth phenotype of tomato seedlings and an efficient in muro boron-mediated cross-linking of RG-II. Our findings suggest that developmental phenotypes in GME-deficient lines are due to the structural alteration of RG-II and further underline the crucial role of the cross-linking of RG-II in the formation of the pectic network required for normal plant growth and development.
Keywords:Carbohydrate Biosynthesis   Carbohydrate Function   Carbohydrate Structure   Cell Wall   Galactose   GDP-d-mannose 3  5-Epimerase   l-Galactose   Rhamnogalacturonan II
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