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Ptr-miR397a is a negative regulator of laccase genes affecting lignin content in Populus trichocarpa

漆酶 毛果杨 单甘醇 木质素 基因 转基因 生物 转录组 拟南芥 突变体 生物化学 基因表达 转基因作物 遗传学 化学 植物 基因组 生物合成
作者
Shanfa Lu,Quanzi Li,Hairong Wei,Mao-Ju Chang,Sermsawat Tunlaya‐Anukit,Hoon Kim,Liu Jie,Jingyuan Song,Ying‐Hsuan Sun,Lichai Yuan,Ting‐Feng Yeh,Ilona Peszlen,John Ralph,Ronald R. Sederoff,Vincent L. Chiang
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:110 (26): 10848-10853 被引量:357
标识
DOI:10.1073/pnas.1308936110
摘要

Laccases, as early as 1959, were proposed to catalyze the oxidative polymerization of monolignols. Genetic evidence in support of this hypothesis has been elusive due to functional redundancy of laccase genes. An Arabidopsis double mutant demonstrated the involvement of laccases in lignin biosynthesis. We previously identified a subset of laccase genes to be targets of a microRNA (miRNA) ptr-miR397a in Populus trichocarpa . To elucidate the roles of ptr-miR397a and its targets, we characterized the laccase gene family and identified 49 laccase gene models, of which 29 were predicted to be targets of ptr-miR397a. We overexpressed Ptr-MIR397a in transgenic P. trichocarpa . In each of all nine transgenic lines tested, 17 PtrLAC s were down-regulated as analyzed by RNA-seq. Transgenic lines with severe reduction in the expression of these laccase genes resulted in an ∼40% decrease in the total laccase activity. Overexpression of Ptr-MIR397a in these transgenic lines also reduced lignin content, whereas levels of all monolignol biosynthetic gene transcripts remained unchanged. A hierarchical genetic regulatory network (GRN) built by a bottom-up graphic Gaussian model algorithm provides additional support for a role of ptr-miR397a as a negative regulator of laccases for lignin biosynthesis. Full transcriptome–based differential gene expression in the overexpressed transgenics and protein domain analyses implicate previously unidentified transcription factors and their targets in an extended hierarchical GRN including ptr-miR397a and laccases that coregulate lignin biosynthesis in wood formation. Ptr-miR397a, laccases, and other regulatory components of this network may provide additional strategies for genetic manipulation of lignin content.
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