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Xyloglucan for Generating Tensile Stress to Bend Tree Stem 被引量:4

Xyloglucan for Generating Tensile Stress to Bend Tree Stem
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摘要 In response to environmental variation, angiosperm trees bend their stems by forming tension wood, which consists of a cellulose-rich G (gelatinous)-Iayer in the walls of fiber cells and generates abnormal tensile stress in the secondary xylem. We produced transgenic poplar plants overexpressing several endoglycanases to reduce each specific polysaccharide in the cell wall, as the secondary xylem consists of primary and secondary wall layers. When placed horizontally, the basal regions of stems of transgenic poplars overexpressing xyloglucanase alone could not bend upward due to low strain in the tension side of the xylem. In the wild-type plants, xyloglucan was found in the inner surface of G-layers during multiple layering. In situ xyloglucan endotransglucosylase (XET) activity showed that the incorporation of whole xyloglucan, potentially for wall tightening, began at the inner surface layers S1 and S2 and was retained throughout G-layer development, while the incorporation of xyloglucan heptasaccharide (XXXG) for wall loosening occurred in the primary wall of the expanding zone. We propose that the xyloglucan network is reinforced by XET to form a further connection between wall-bound and secreted xyloglucans in order to withstand the tensile stress created within the cellulose G-layer micro fibrils. In response to environmental variation, angiosperm trees bend their stems by forming tension wood, which consists of a cellulose-rich G (gelatinous)-Iayer in the walls of fiber cells and generates abnormal tensile stress in the secondary xylem. We produced transgenic poplar plants overexpressing several endoglycanases to reduce each specific polysaccharide in the cell wall, as the secondary xylem consists of primary and secondary wall layers. When placed horizontally, the basal regions of stems of transgenic poplars overexpressing xyloglucanase alone could not bend upward due to low strain in the tension side of the xylem. In the wild-type plants, xyloglucan was found in the inner surface of G-layers during multiple layering. In situ xyloglucan endotransglucosylase (XET) activity showed that the incorporation of whole xyloglucan, potentially for wall tightening, began at the inner surface layers S1 and S2 and was retained throughout G-layer development, while the incorporation of xyloglucan heptasaccharide (XXXG) for wall loosening occurred in the primary wall of the expanding zone. We propose that the xyloglucan network is reinforced by XET to form a further connection between wall-bound and secreted xyloglucans in order to withstand the tensile stress created within the cellulose G-layer micro fibrils.
出处 《Molecular Plant》 SCIE CAS CSCD 2009年第5期893-903,共11页 分子植物(英文版)
关键词 G-layer tensile stress xyloglucan xyloglucan endotransglucosylase G-layer tensile stress xyloglucan xyloglucan endotransglucosylase
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  • 1Andersson-Gunneras Mellerowicz, E.J., Love, J., Segerman, B., Ohmiya, Y., Coutinho, RM., Nilsson, R, Henrissat, B., Moritz, T., and Sundberg, B. (2006). Biosynthesis of cellulose- enriched tension wood in Populus: global analysis of transcripts and metabolites identifies biochemical and developmental reg- ulators in secondary wall biosynthesis. Plant J. 45, 144-165.
  • 2Arend, M. (2008). Immunolocalization of (1,4)-beta-galactan in tension wood fibers of poplar. Tree Physiol. 28, 1263-1267.
  • 3Banik, M., Garrett, T.RJ., and Fincher, G.B. (1996). Molecular cloning of cDNAs encoding (1→4)-beta-xylan endohydrolases from the aleurone layer of germinated barley (Hordeum vulgare). Plant Mol. Biol. 31, 1163-1172.
  • 4Bourquin, V., Nishikubo, N., Abe, H., Brumer, H., Denman, S., Eklund, M., Christiernin, M., Teeri, T.T., Sundberg, B., and Mellerowicz, E. (2002). Xyloglucan endotransglycosylases have a function during the formation of secondary cell wall of vascular tissues. Plant Cell. 14, 3073-3088.
  • 5Bowling, A.L., and Vaughn, K.C. (2008). Immunocytochemical characterization of tension wood: gelatinous fibers contain more than just cellulose. Am. J. Bot. 95, 655-663.
  • 6Chiang, V.L., and Funaoka, M. (1990). The difference between guaiacyl and guaiacyl-syringyl lignins in their responses to kraft delignification. Holzforschung. 44, 309-313.
  • 7Clair, B., Gril, J., Baba, K., Thibaut, B., and Sugiyama, J. (2005). Precautions for the structural analysis of the gelatinous layer in tension wood. IAWA J. 26, 189-195.
  • 8Dubois, M., Gilles, K.A., Hamilton, J.K., Rebers, RA., and Smith, F. (1956), Colorimetric method for determination of sugars and related substances. Anal. Chem. 28, 350-356.
  • 9Fry, S.C. (1997). Novel 'dot-blot' assays for glycosyltransferases and glycosylhydrolases: optimization for xyloglucan endotransglycosylase (XET) activity. Plant J. 11, 1141-1150.
  • 10Furuya, N., Takahashi, S., and Miyazaki, M. (1970). The chemical compositions of gelatinous layer from the tension wood of Populus euro-americana. Mokuzai Gakkaishi. 16, 26-30.

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