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Comparative genome analysis of lignin biosynthesis gene families across the plant kingdom

BACKGROUND: As a major component of plant cell wall, lignin plays important roles in mechanical support, water transport, and stress responses. As the main cause for the recalcitrance of plant cell wall, lignin modification has been a major task for bioenergy feedstock improvement. The study of the...

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Autores principales: Xu, Zhanyou, Zhang, Dandan, Hu, Jun, Zhou, Xin, Ye, Xia, Reichel, Kristen L, Stewart, Nathan R, Syrenne, Ryan D, Yang, Xiaohan, Gao, Peng, Shi, Weibing, Doeppke, Crissa, Sykes, Robert W, Burris, Jason N, Bozell, Joseph J, Cheng, (Max) Zong-Ming, Hayes, Douglas G, Labbe, Nicole, Davis, Mark, Stewart, C Neal, Yuan, Joshua S
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3226193/
https://www.ncbi.nlm.nih.gov/pubmed/19811687
http://dx.doi.org/10.1186/1471-2105-10-S11-S3
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author Xu, Zhanyou
Zhang, Dandan
Hu, Jun
Zhou, Xin
Ye, Xia
Reichel, Kristen L
Stewart, Nathan R
Syrenne, Ryan D
Yang, Xiaohan
Gao, Peng
Shi, Weibing
Doeppke, Crissa
Sykes, Robert W
Burris, Jason N
Bozell, Joseph J
Cheng, (Max) Zong-Ming
Hayes, Douglas G
Labbe, Nicole
Davis, Mark
Stewart, C Neal
Yuan, Joshua S
author_facet Xu, Zhanyou
Zhang, Dandan
Hu, Jun
Zhou, Xin
Ye, Xia
Reichel, Kristen L
Stewart, Nathan R
Syrenne, Ryan D
Yang, Xiaohan
Gao, Peng
Shi, Weibing
Doeppke, Crissa
Sykes, Robert W
Burris, Jason N
Bozell, Joseph J
Cheng, (Max) Zong-Ming
Hayes, Douglas G
Labbe, Nicole
Davis, Mark
Stewart, C Neal
Yuan, Joshua S
author_sort Xu, Zhanyou
collection PubMed
description BACKGROUND: As a major component of plant cell wall, lignin plays important roles in mechanical support, water transport, and stress responses. As the main cause for the recalcitrance of plant cell wall, lignin modification has been a major task for bioenergy feedstock improvement. The study of the evolution and function of lignin biosynthesis genes thus has two-fold implications. First, the lignin biosynthesis pathway provides an excellent model to study the coordinative evolution of a biochemical pathway in plants. Second, understanding the function and evolution of lignin biosynthesis genes will guide us to develop better strategies for bioenergy feedstock improvement. RESULTS: We analyzed lignin biosynthesis genes from fourteen plant species and one symbiotic fungal species. Comprehensive comparative genome analysis was carried out to study the distribution, relatedness, and family expansion of the lignin biosynthesis genes across the plant kingdom. In addition, we also analyzed the comparative synteny map between rice and sorghum to study the evolution of lignin biosynthesis genes within the Poaceae family and the chromosome evolution between the two species. Comprehensive lignin biosynthesis gene expression analysis was performed in rice, poplar and Arabidopsis. The representative data from rice indicates that different fates of gene duplications exist for lignin biosynthesis genes. In addition, we also carried out the biomass composition analysis of nine Arabidopsis mutants with both MBMS analysis and traditional wet chemistry methods. The results were analyzed together with the genomics analysis. CONCLUSION: The research revealed that, among the species analyzed, the complete lignin biosynthesis pathway first appeared in moss; the pathway is absent in green algae. The expansion of lignin biosynthesis gene families correlates with substrate diversity. In addition, we found that the expansion of the gene families mostly occurred after the divergence of monocots and dicots, with the exception of the C4H gene family. Gene expression analysis revealed different fates of gene duplications, largely confirming plants are tolerant to gene dosage effects. The rapid expansion of lignin biosynthesis genes indicated that the translation of transgenic lignin modification strategies from model species to bioenergy feedstock might only be successful between the closely relevant species within the same family.
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spelling pubmed-32261932011-11-30 Comparative genome analysis of lignin biosynthesis gene families across the plant kingdom Xu, Zhanyou Zhang, Dandan Hu, Jun Zhou, Xin Ye, Xia Reichel, Kristen L Stewart, Nathan R Syrenne, Ryan D Yang, Xiaohan Gao, Peng Shi, Weibing Doeppke, Crissa Sykes, Robert W Burris, Jason N Bozell, Joseph J Cheng, (Max) Zong-Ming Hayes, Douglas G Labbe, Nicole Davis, Mark Stewart, C Neal Yuan, Joshua S BMC Bioinformatics Proceedings BACKGROUND: As a major component of plant cell wall, lignin plays important roles in mechanical support, water transport, and stress responses. As the main cause for the recalcitrance of plant cell wall, lignin modification has been a major task for bioenergy feedstock improvement. The study of the evolution and function of lignin biosynthesis genes thus has two-fold implications. First, the lignin biosynthesis pathway provides an excellent model to study the coordinative evolution of a biochemical pathway in plants. Second, understanding the function and evolution of lignin biosynthesis genes will guide us to develop better strategies for bioenergy feedstock improvement. RESULTS: We analyzed lignin biosynthesis genes from fourteen plant species and one symbiotic fungal species. Comprehensive comparative genome analysis was carried out to study the distribution, relatedness, and family expansion of the lignin biosynthesis genes across the plant kingdom. In addition, we also analyzed the comparative synteny map between rice and sorghum to study the evolution of lignin biosynthesis genes within the Poaceae family and the chromosome evolution between the two species. Comprehensive lignin biosynthesis gene expression analysis was performed in rice, poplar and Arabidopsis. The representative data from rice indicates that different fates of gene duplications exist for lignin biosynthesis genes. In addition, we also carried out the biomass composition analysis of nine Arabidopsis mutants with both MBMS analysis and traditional wet chemistry methods. The results were analyzed together with the genomics analysis. CONCLUSION: The research revealed that, among the species analyzed, the complete lignin biosynthesis pathway first appeared in moss; the pathway is absent in green algae. The expansion of lignin biosynthesis gene families correlates with substrate diversity. In addition, we found that the expansion of the gene families mostly occurred after the divergence of monocots and dicots, with the exception of the C4H gene family. Gene expression analysis revealed different fates of gene duplications, largely confirming plants are tolerant to gene dosage effects. The rapid expansion of lignin biosynthesis genes indicated that the translation of transgenic lignin modification strategies from model species to bioenergy feedstock might only be successful between the closely relevant species within the same family. BioMed Central 2009-10-08 /pmc/articles/PMC3226193/ /pubmed/19811687 http://dx.doi.org/10.1186/1471-2105-10-S11-S3 Text en Copyright ©2009 Xu et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Proceedings
Xu, Zhanyou
Zhang, Dandan
Hu, Jun
Zhou, Xin
Ye, Xia
Reichel, Kristen L
Stewart, Nathan R
Syrenne, Ryan D
Yang, Xiaohan
Gao, Peng
Shi, Weibing
Doeppke, Crissa
Sykes, Robert W
Burris, Jason N
Bozell, Joseph J
Cheng, (Max) Zong-Ming
Hayes, Douglas G
Labbe, Nicole
Davis, Mark
Stewart, C Neal
Yuan, Joshua S
Comparative genome analysis of lignin biosynthesis gene families across the plant kingdom
title Comparative genome analysis of lignin biosynthesis gene families across the plant kingdom
title_full Comparative genome analysis of lignin biosynthesis gene families across the plant kingdom
title_fullStr Comparative genome analysis of lignin biosynthesis gene families across the plant kingdom
title_full_unstemmed Comparative genome analysis of lignin biosynthesis gene families across the plant kingdom
title_short Comparative genome analysis of lignin biosynthesis gene families across the plant kingdom
title_sort comparative genome analysis of lignin biosynthesis gene families across the plant kingdom
topic Proceedings
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3226193/
https://www.ncbi.nlm.nih.gov/pubmed/19811687
http://dx.doi.org/10.1186/1471-2105-10-S11-S3
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