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Functional Analysis of Cellulose Synthase CesA4 and CesA6 Genes in Switchgrass (Panicum virgatum) by Overexpression and RNAi-Mediated Gene Silencing

Switchgrass (Panicum virgatum L.) is a leading lignocellulosic bioenergy feedstock. Cellulose is a major component of the plant cell walls and the primary substrate for saccharification. Accessibility of cellulose to enzymatic breakdown into fermentable sugars is limited by the presence of lignin in...

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Autores principales: Mazarei, Mitra, Baxter, Holly L., Li, Mi, Biswal, Ajaya K., Kim, Keonhee, Meng, Xianzhi, Pu, Yunqiao, Wuddineh, Wegi A., Zhang, Ji-Yi, Turner, Geoffrey B., Sykes, Robert W., Davis, Mark F., Udvardi, Michael K., Wang, Zeng-Yu, Mohnen, Debra, Ragauskas, Arthur J., Labbé, Nicole, Stewart, C. Neal
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6088197/
https://www.ncbi.nlm.nih.gov/pubmed/30127793
http://dx.doi.org/10.3389/fpls.2018.01114
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author Mazarei, Mitra
Baxter, Holly L.
Li, Mi
Biswal, Ajaya K.
Kim, Keonhee
Meng, Xianzhi
Pu, Yunqiao
Wuddineh, Wegi A.
Zhang, Ji-Yi
Turner, Geoffrey B.
Sykes, Robert W.
Davis, Mark F.
Udvardi, Michael K.
Wang, Zeng-Yu
Mohnen, Debra
Ragauskas, Arthur J.
Labbé, Nicole
Stewart, C. Neal
author_facet Mazarei, Mitra
Baxter, Holly L.
Li, Mi
Biswal, Ajaya K.
Kim, Keonhee
Meng, Xianzhi
Pu, Yunqiao
Wuddineh, Wegi A.
Zhang, Ji-Yi
Turner, Geoffrey B.
Sykes, Robert W.
Davis, Mark F.
Udvardi, Michael K.
Wang, Zeng-Yu
Mohnen, Debra
Ragauskas, Arthur J.
Labbé, Nicole
Stewart, C. Neal
author_sort Mazarei, Mitra
collection PubMed
description Switchgrass (Panicum virgatum L.) is a leading lignocellulosic bioenergy feedstock. Cellulose is a major component of the plant cell walls and the primary substrate for saccharification. Accessibility of cellulose to enzymatic breakdown into fermentable sugars is limited by the presence of lignin in the plant cell wall. In this study, putatively novel switchgrass secondary cell wall cellulose synthase PvCesA4 and primary cell wall PvCesA6 genes were identified and their functional role in cellulose synthesis and cell wall composition was examined by overexpression and knockdown of the individual genes in switchgrass. The endogenous expression of PvCesA4 and PvCesA6 genes varied among including roots, leaves, stem, and reproductive tissues. Increasing or decreasing PvCesA4 and PvCesA6 expression to extreme levels in the transgenic lines resulted in decreased biomass production. PvCesA6-overexpressing lines had reduced lignin content and syringyl/guaiacyl lignin monomer ratio accompanied by increased sugar release efficiency, suggesting an impact of PvCesA6 expression levels on lignin biosynthesis. Cellulose content and cellulose crystallinity were decreased, while xylan content was increased in PvCesA4 and PvCesA6 overexpression or knockdown lines. The increase in xylan content suggests that the amount of non-cellulosic cell wall polysaccharide was modified in these plants. Taken together, the results show that the manipulation of the cellulose synthase genes alters the cell wall composition and availability of cellulose as a bioprocessing substrate.
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spelling pubmed-60881972018-08-20 Functional Analysis of Cellulose Synthase CesA4 and CesA6 Genes in Switchgrass (Panicum virgatum) by Overexpression and RNAi-Mediated Gene Silencing Mazarei, Mitra Baxter, Holly L. Li, Mi Biswal, Ajaya K. Kim, Keonhee Meng, Xianzhi Pu, Yunqiao Wuddineh, Wegi A. Zhang, Ji-Yi Turner, Geoffrey B. Sykes, Robert W. Davis, Mark F. Udvardi, Michael K. Wang, Zeng-Yu Mohnen, Debra Ragauskas, Arthur J. Labbé, Nicole Stewart, C. Neal Front Plant Sci Plant Science Switchgrass (Panicum virgatum L.) is a leading lignocellulosic bioenergy feedstock. Cellulose is a major component of the plant cell walls and the primary substrate for saccharification. Accessibility of cellulose to enzymatic breakdown into fermentable sugars is limited by the presence of lignin in the plant cell wall. In this study, putatively novel switchgrass secondary cell wall cellulose synthase PvCesA4 and primary cell wall PvCesA6 genes were identified and their functional role in cellulose synthesis and cell wall composition was examined by overexpression and knockdown of the individual genes in switchgrass. The endogenous expression of PvCesA4 and PvCesA6 genes varied among including roots, leaves, stem, and reproductive tissues. Increasing or decreasing PvCesA4 and PvCesA6 expression to extreme levels in the transgenic lines resulted in decreased biomass production. PvCesA6-overexpressing lines had reduced lignin content and syringyl/guaiacyl lignin monomer ratio accompanied by increased sugar release efficiency, suggesting an impact of PvCesA6 expression levels on lignin biosynthesis. Cellulose content and cellulose crystallinity were decreased, while xylan content was increased in PvCesA4 and PvCesA6 overexpression or knockdown lines. The increase in xylan content suggests that the amount of non-cellulosic cell wall polysaccharide was modified in these plants. Taken together, the results show that the manipulation of the cellulose synthase genes alters the cell wall composition and availability of cellulose as a bioprocessing substrate. Frontiers Media S.A. 2018-08-03 /pmc/articles/PMC6088197/ /pubmed/30127793 http://dx.doi.org/10.3389/fpls.2018.01114 Text en Copyright © 2018 Mazarei, Baxter, Li, Biswal, Kim, Meng, Pu, Wuddineh, Zhang, Turner, Sykes, Davis, Udvardi, Wang, Mohnen, Ragauskas, Labbé and Stewart. 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) and the copyright owner(s) 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
Mazarei, Mitra
Baxter, Holly L.
Li, Mi
Biswal, Ajaya K.
Kim, Keonhee
Meng, Xianzhi
Pu, Yunqiao
Wuddineh, Wegi A.
Zhang, Ji-Yi
Turner, Geoffrey B.
Sykes, Robert W.
Davis, Mark F.
Udvardi, Michael K.
Wang, Zeng-Yu
Mohnen, Debra
Ragauskas, Arthur J.
Labbé, Nicole
Stewart, C. Neal
Functional Analysis of Cellulose Synthase CesA4 and CesA6 Genes in Switchgrass (Panicum virgatum) by Overexpression and RNAi-Mediated Gene Silencing
title Functional Analysis of Cellulose Synthase CesA4 and CesA6 Genes in Switchgrass (Panicum virgatum) by Overexpression and RNAi-Mediated Gene Silencing
title_full Functional Analysis of Cellulose Synthase CesA4 and CesA6 Genes in Switchgrass (Panicum virgatum) by Overexpression and RNAi-Mediated Gene Silencing
title_fullStr Functional Analysis of Cellulose Synthase CesA4 and CesA6 Genes in Switchgrass (Panicum virgatum) by Overexpression and RNAi-Mediated Gene Silencing
title_full_unstemmed Functional Analysis of Cellulose Synthase CesA4 and CesA6 Genes in Switchgrass (Panicum virgatum) by Overexpression and RNAi-Mediated Gene Silencing
title_short Functional Analysis of Cellulose Synthase CesA4 and CesA6 Genes in Switchgrass (Panicum virgatum) by Overexpression and RNAi-Mediated Gene Silencing
title_sort functional analysis of cellulose synthase cesa4 and cesa6 genes in switchgrass (panicum virgatum) by overexpression and rnai-mediated gene silencing
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6088197/
https://www.ncbi.nlm.nih.gov/pubmed/30127793
http://dx.doi.org/10.3389/fpls.2018.01114
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