Evolution of the Cinnamyl/Sinapyl Alcohol Dehydrogenase (CAD/SAD) Gene Family: The Emergence of Real Lignin is Associated with the Origin of Bona Fide CAD

被引:0
作者
Dong-Mei Guo
Jin-Hua Ran
Xiao-Quan Wang
机构
[1] The Chinese Academy of Sciences,State Key Laboratory of Systematic and Evolutionary Botany, Institute of Botany
[2] Graduate University of the Chinese Academy of Sciences,undefined
来源
Journal of Molecular Evolution | 2010年 / 71卷
关键词
CAD/SAD; Gene family evolution; Convergent evolution; Functional divergence; Origin of lignin; Vascular plant; Red alga;
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中图分类号
学科分类号
摘要
Lignin plays a vital role in plant adaptation to terrestrial environments. The cinnamyl alcohol dehydrogenase (CAD) catalyzes the last step in monolignol biosynthesis and might have contributed to the lignin diversity in plants. To investigate the evolutionary history and functional differentiation of the CAD gene family, we made a comprehensive evolutionary analysis of this gene family from 52 species, including bacteria, early eukaryotes and green plants. The phylogenetic analysis, together with gene structure and function, indicates that all members of land plants, except two of moss, could be divided into three classes. Members of Class I (bona fide CAD), generally accepted as the primary genes involved in the monolignol biosynthesis, are all from vascular plants, and form a robustly supported monophyletic group with the lycophyte CADs at the basal position. This class is also conserved in the predicted three-dimensional structure and the residues constituting the substrate-binding pocket of the proteins. Given that Selaginella has real lignin, the above evidence strongly suggests that the earliest occurrence of the bona fide CAD in the lycophyte could be directly correlated with the origin of lignin. Class II comprises members more similar to the aspen sinapyl alcohol dehydrogenase gene, and includes three groups corresponding to lycophyte, gymnosperm, and angiosperm. Class III is conserved in land plants. The three classes differ in patterns of evolution and expression, implying that functional divergence has occurred among them. Our study also supports the hypothesis of convergent evolution of lignin biosynthesis between red algae and vascular plants.
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页码:202 / 218
页数:16
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共 977 条
[1]  
Abascal F(2005)ProtTest: selection of best-fit models of protein evolution Bioinformatics 21 2104-2105
[2]  
Zardoya R(2007)Multiple hypothesis testing to detect lineages under positive selection that affects only a few sites Mol Biol Evol 24 1219-1228
[3]  
Posada D(2001)Accuracy and power of the likelihood ratio test in detecting adaptive molecular evolution Mol Biol Evol 18 1585-1592
[4]  
Anisimova M(2002)Accuracy and power of Bayes prediction of amino acid sites under positive selection Mol Biol Evol 19 950-958
[5]  
Yang ZH(2006)The SWISS-MODEL workspace: a web-based environment for protein structure homology modeling Bioinformatics 22 195-201
[6]  
Anisimova M(2009)The cinnamyl alcohol dehydrogenase gene family in BMC Plant Biol 9 26-491
[7]  
Bielawski JP(2007): phylogeny, organization, and expression Trends Plant Sci 12 486-292
[8]  
Yang ZH(1998)Looking for syringyl peroxidases Annu Rev Ecol Syst 29 263-489
[9]  
Anisimova M(2003)Early evolution of land plants: phylogeny, physiology, and ecology of the primary terrestrial radiation Mol Phylogenet Evol 29 464-546
[10]  
Bielawski JP(2003)The major clades of MADS-box genes and their role in the development and evolution of flowering plants Annu Rev Ecol Syst 54 519-1611