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Convergent Evolution of Syringyl Lignin Biosynthesis via Distinct Pathways in the Lycophyte Selaginella and Flowering Plants

机译:藻类卷柏和开花植物中不同途径的丁香木质素生物合成的融合进化

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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.
机译:当不同生物在可比的选择压力下相似地适应时,就会在不相关的谱系中产生表型收敛。在这一过程的一个明显例子中,丁香基木质素是植物细胞壁的基本组成部分,它存在于两个主要的植物谱系中,即苔藓植物和被子植物,它们在四亿多年前彼此分离。在这里,我们表明,这种趋同是木质素生物合成细胞色素P450依赖的单加氧酶的独立募集而来的,该酶通过两个谱系中相关但不同的途径来路由细胞壁单体。与被子植物木质素生物合成需要两个苯基丙烷类偏羟基酶C3'H和F5H的被子植物相反,藻生植物卷柏(Selaginella)使用一种苯基丙烷类双重偏羟化酶来绕开标准木质素生物合成途径的多个步骤。卷柏中拟南芥羟化酶的转基因表达极大地改变了其内源性木质素的生物合成途径,产生了一种以前自然界中尚未发现的新型木质素组合物。我们的发现证明了通过独特的生化策略进行趋同进化的独特案例,并提出了一种遗传重建高等植物中木质素生物合成的新方法。

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