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Structural characterization of a mixed-linkage glucan deficient mutant reveals alteration in cellulose microfibril orientation in rice coleoptile mesophyll cell walls

The CELLULOSE SYNTHASE-LIKE F6 (CslF6) gene was previously shown to mediate the biosynthesis of mixed-linkage glucan (MLG), a cell wall polysaccharide that is hypothesized to be tightly associated with cellulose and also have a role in cell expansion in the primary cell wall of young seedlings in gr...

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Autores principales: Smith-Moritz, Andreia M., Hao, Zhao, Fernández-Niño, Susana G., Fangel, Jonatan U., Verhertbruggen, Yves, Holman, Hoi-Ying N., Willats, William G. T., Ronald, Pamela C., Scheller, Henrik V., Heazlewood, Joshua L., Vega-Sánchez, Miguel E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4539472/
https://www.ncbi.nlm.nih.gov/pubmed/26347754
http://dx.doi.org/10.3389/fpls.2015.00628
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author Smith-Moritz, Andreia M.
Hao, Zhao
Fernández-Niño, Susana G.
Fangel, Jonatan U.
Verhertbruggen, Yves
Holman, Hoi-Ying N.
Willats, William G. T.
Ronald, Pamela C.
Scheller, Henrik V.
Heazlewood, Joshua L.
Vega-Sánchez, Miguel E.
author_facet Smith-Moritz, Andreia M.
Hao, Zhao
Fernández-Niño, Susana G.
Fangel, Jonatan U.
Verhertbruggen, Yves
Holman, Hoi-Ying N.
Willats, William G. T.
Ronald, Pamela C.
Scheller, Henrik V.
Heazlewood, Joshua L.
Vega-Sánchez, Miguel E.
author_sort Smith-Moritz, Andreia M.
collection PubMed
description The CELLULOSE SYNTHASE-LIKE F6 (CslF6) gene was previously shown to mediate the biosynthesis of mixed-linkage glucan (MLG), a cell wall polysaccharide that is hypothesized to be tightly associated with cellulose and also have a role in cell expansion in the primary cell wall of young seedlings in grass species. We have recently shown that loss-of-function cslf6 rice mutants do not accumulate MLG in most vegetative tissues. Despite the absence of a structurally important polymer, MLG, these mutants are unexpectedly viable and only show a moderate growth compromise compared to wild type. Therefore these mutants are ideal biological systems to test the current grass cell wall model. In order to gain a better understanding of the role of MLG in the primary wall, we performed in-depth compositional and structural analyses of the cell walls of 3 day-old rice seedlings using various biochemical and novel microspectroscopic approaches. We found that cellulose content as well as matrix polysaccharide composition was not significantly altered in the MLG deficient mutant. However, we observed a significant change in cellulose microfibril bundle organization in mesophyll cell walls of the cslf6 mutant. Using synchrotron source Fourier Transform Mid-Infrared (FTM-IR) Spectromicroscopy for high-resolution imaging, we determined that the bonds associated with cellulose and arabinoxylan, another major component of the primary cell walls of grasses, were in a lower energy configuration compared to wild type, suggesting a slightly weaker primary wall in MLG deficient mesophyll cells. Taken together, these results suggest that MLG may influence cellulose deposition in mesophyll cell walls without significantly affecting anisotropic growth thus challenging MLG importance in cell wall expansion.
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spelling pubmed-45394722015-09-07 Structural characterization of a mixed-linkage glucan deficient mutant reveals alteration in cellulose microfibril orientation in rice coleoptile mesophyll cell walls Smith-Moritz, Andreia M. Hao, Zhao Fernández-Niño, Susana G. Fangel, Jonatan U. Verhertbruggen, Yves Holman, Hoi-Ying N. Willats, William G. T. Ronald, Pamela C. Scheller, Henrik V. Heazlewood, Joshua L. Vega-Sánchez, Miguel E. Front Plant Sci Plant Science The CELLULOSE SYNTHASE-LIKE F6 (CslF6) gene was previously shown to mediate the biosynthesis of mixed-linkage glucan (MLG), a cell wall polysaccharide that is hypothesized to be tightly associated with cellulose and also have a role in cell expansion in the primary cell wall of young seedlings in grass species. We have recently shown that loss-of-function cslf6 rice mutants do not accumulate MLG in most vegetative tissues. Despite the absence of a structurally important polymer, MLG, these mutants are unexpectedly viable and only show a moderate growth compromise compared to wild type. Therefore these mutants are ideal biological systems to test the current grass cell wall model. In order to gain a better understanding of the role of MLG in the primary wall, we performed in-depth compositional and structural analyses of the cell walls of 3 day-old rice seedlings using various biochemical and novel microspectroscopic approaches. We found that cellulose content as well as matrix polysaccharide composition was not significantly altered in the MLG deficient mutant. However, we observed a significant change in cellulose microfibril bundle organization in mesophyll cell walls of the cslf6 mutant. Using synchrotron source Fourier Transform Mid-Infrared (FTM-IR) Spectromicroscopy for high-resolution imaging, we determined that the bonds associated with cellulose and arabinoxylan, another major component of the primary cell walls of grasses, were in a lower energy configuration compared to wild type, suggesting a slightly weaker primary wall in MLG deficient mesophyll cells. Taken together, these results suggest that MLG may influence cellulose deposition in mesophyll cell walls without significantly affecting anisotropic growth thus challenging MLG importance in cell wall expansion. Frontiers Media S.A. 2015-08-18 /pmc/articles/PMC4539472/ /pubmed/26347754 http://dx.doi.org/10.3389/fpls.2015.00628 Text en Copyright © 2015 Smith-Moritz, Hao, Fernández-Niño, Fangel, Verhertbruggen, Holman, Willats, Ronald, Scheller, Heazlewood and Vega-Sánchez. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Smith-Moritz, Andreia M.
Hao, Zhao
Fernández-Niño, Susana G.
Fangel, Jonatan U.
Verhertbruggen, Yves
Holman, Hoi-Ying N.
Willats, William G. T.
Ronald, Pamela C.
Scheller, Henrik V.
Heazlewood, Joshua L.
Vega-Sánchez, Miguel E.
Structural characterization of a mixed-linkage glucan deficient mutant reveals alteration in cellulose microfibril orientation in rice coleoptile mesophyll cell walls
title Structural characterization of a mixed-linkage glucan deficient mutant reveals alteration in cellulose microfibril orientation in rice coleoptile mesophyll cell walls
title_full Structural characterization of a mixed-linkage glucan deficient mutant reveals alteration in cellulose microfibril orientation in rice coleoptile mesophyll cell walls
title_fullStr Structural characterization of a mixed-linkage glucan deficient mutant reveals alteration in cellulose microfibril orientation in rice coleoptile mesophyll cell walls
title_full_unstemmed Structural characterization of a mixed-linkage glucan deficient mutant reveals alteration in cellulose microfibril orientation in rice coleoptile mesophyll cell walls
title_short Structural characterization of a mixed-linkage glucan deficient mutant reveals alteration in cellulose microfibril orientation in rice coleoptile mesophyll cell walls
title_sort structural characterization of a mixed-linkage glucan deficient mutant reveals alteration in cellulose microfibril orientation in rice coleoptile mesophyll cell walls
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4539472/
https://www.ncbi.nlm.nih.gov/pubmed/26347754
http://dx.doi.org/10.3389/fpls.2015.00628
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