木质素
苯丙素
生物
卷柏属
植物
收敛演化
生物合成
拟南芥
拟南芥
代谢途径
系统发育学
生物化学
基因
突变体
作者
Jing‐Ke Weng,Takuya Akiyama,Nicholas D. Bonawitz,Xu Li,John Ralph,Clint Chapple
出处
期刊:The Plant Cell
[Oxford University Press]
日期:2010-04-01
卷期号:22 (4): 1033-1045
被引量:155
标识
DOI:10.1105/tpc.109.073528
摘要
Phenotypic convergence in unrelated lineages arises when different organisms adapt similarly under comparable selective pressures. In an apparent example of this process, syringyl lignin, a fundamental building block of plant cell walls, occurs in two major plant lineages, lycophytes and angiosperms, which diverged from one another more than 400 million years ago. Here, we show that this convergence resulted from independent recruitment of lignin biosynthetic cytochrome P450-dependent monooxygenases that route cell wall monomers through related but distinct pathways in the two lineages. In contrast with angiosperms, in which syringyl lignin biosynthesis requires two phenylpropanoid meta-hydroxylases C3'H and F5H, the lycophyte Selaginella employs one phenylpropanoid dual meta-hydroxylase to bypass several steps of the canonical lignin biosynthetic pathway. Transgenic expression of the Selaginella hydroxylase in Arabidopsis thaliana dramatically reroutes its endogenous lignin biosynthetic pathway, yielding a novel lignin composition not previously identified in nature. Our findings demonstrate a unique case of convergent evolution via distinct biochemical strategies and suggest a new way to genetically reconstruct lignin biosynthesis in higher plants.
科研通智能强力驱动
Strongly Powered by AbleSci AI