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Paralogous Radiations of PIN Proteins with Multiple Origins of Noncanonical PIN Structure

机译:具有多种非规范PIN结构起源的PIN蛋白的旁源辐射

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摘要

The plant hormone auxin is a conserved regulator of development which has been implicated in the generation of morphological novelty. PIN-FORMED1 (PIN) auxin efflux carriers are central to auxin function by regulating its distribution. PIN family members have divergent structures and cellular localizations, but the origin and evolutionary significance of this variation is unresolved. To characterize PIN family evolution, we have undertaken phylogenetic and structural analyses with a massive increase in taxon sampling over previous studies. Our phylogeny shows that following the divergence of the bryophyte and lycophyte lineages, two deep duplication events gave rise to three distinct lineages of PIN proteins in euphyllophytes. Subsequent independent radiations within each of these lineages were taxonomically asymmetric, giving rise to at least 21 clades of PIN proteins, of which 15 are revealed here for the first time. Although most PIN protein clades share a conserved canonical structure with a modular central loop domain, a small number of noncanonical clades dispersed across the phylogeny have highly divergent protein structure. We propose that PIN proteins underwent sub- and neofunctionalization with substantial modification to protein structure throughout plant evolution. Our results have important implications for plant evolution as they suggest that structurally divergent PIN proteins that arose in paralogous radiations contributed to the convergent evolution of organ systems in different land plant lineages.
机译:植物激素生长素是一种保守的发育调节剂,其与形态新奇的产生有关。 PIN-FORMED1(PIN)生长素外排载体通过调节其分布对生长素功能至关重要。 PIN家族成员具有不同的结构和细胞定位,但这种变异的起源和进化意义尚未解决。为了描述PIN家族进化的特征,我们进行了系统发育和结构分析,与以往的研究相比,分类单元采样的数量大大增加。我们的系统发育学表明,随着苔藓植物和苔藓植物谱系的分化,两次深度复制事件导致真核植物中PIN蛋白的三个不同谱系。这些谱系中每个谱系的随后独立辐射在分类学上是不对称的,至少产生了21个PIN蛋白进化枝,其中15个是首次在此揭示。尽管大多数PIN蛋白进化枝都具有一个带有模块化中央环结构域的保守经典结构,但散布在整个系统发育系统中的少数非经典进化枝却具有高度分化的蛋白结构。我们建议PIN蛋白经历亚功能和新功能化,并在整个植物进化过程中对蛋白结构进行实质性修饰。我们的结果对植物进化具有重要意义,因为它们表明,在旁源辐射中出现的结构不同的PIN蛋白促进了不同陆地植物谱系中器官系统的趋同进化。

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