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首页> 外文期刊>The FEBS journal >Light-induced global structural changes in phytochrome A regulating photomorphogenesis in plants.
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Light-induced global structural changes in phytochrome A regulating photomorphogenesis in plants.

机译:光诱导的植物色素A调节植物形态发生的整体结构变化。

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Phytochromes are photoreceptor proteins that monitor the light environment and regulate a variety of photomorphogenic responses to optimize the growth and development of plants. Phytochromes comprise N-terminal photosensory and C-terminal regulatory domains. They are mutually photoconvertible between a red-light-absorbing (Pr) and a far-red-light-absorbing (Pfr) form. Their interconversion by light stimuli initiates downstream signaling cascades. Here we report the molecular structures of pea phytochrome A lacking the N-terminal 52 amino-acid residues in the Pr and Pfr forms studied by small-angle X-ray scattering. A new purification protocol yielded monodispersive sample solutions. The molecular mass and the maximum dimension of Pr determined from scattering data indicated its dimeric association. The molecular structure of Pr predicted by applying the ab initio simulation method to the scattering profile was approximated as a stack of two flat bodies, comprising two lobes assignable to the functional regions. Scattering profiles recorded under red-light irradiation showed small but definite changes from those of Pr. The molecular dimensions and predicted molecular structure of Pfr suggest global structural changes such as movement of the C-terminal domains in the Pr-to-Pfr phototransformation. Red-light-induced structural changes in Pfr were reversible, mostly due to thermal relaxation processes.
机译:植物色素是一种感光蛋白,可监测光照环境并调节各种光致形态反应,从而优化植物的生长发育。植物色素包含N端光敏和C端调节域。它们在吸收红光(Pr)和吸收远红光(Pfr)的形式之间可以相互进行光转换。它们通过光刺激的相互转化引发下游信号传导级联。在这里我们报告通过小角度X射线散射研究的豌豆植物色素A在Pr和Pfr形式中缺少N末端52个氨基酸残基的分子结构。一种新的纯化方案产生了单分散样品溶液。由散射数据确定的Pr的分子量和最大尺寸表明其二聚体缔合。通过从头算模拟方法对散射轮廓进行预测而得出的Pr的分子结构近似为两个平面的堆叠,包括两个可分配给功能区的叶。在红光照射下记录的散射曲线显示出与Pr相比有微小但确定的变化。 Pfr的分子大小和预测的分子结构表明整体结构变化,例如Pr-to-Pfr光转化中C末端结构域的移动。红光引起的Pfr的结构变化是可逆的,主要是由于热弛豫过程。

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