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Asymmetric activation mechanism of a homodimeric red light-regulated photoreceptor

机译:同型二聚体红光调节感光器的不对称激活机理

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摘要

Organisms adapt to environmental cues using diverse signaling networks. In order to sense and integrate light for regulating various biological functions, photoreceptor proteins have evolved in a modular way. This modularity is targeted in the development of optogenetic tools enabling the control of cellular events with high spatiotemporal precision. However, the limited understanding of signaling mechanisms impedes the rational design of innovative photoreceptor-effector couples. Here, we reveal molecular details of signal transduction in phytochrome-regulated diguanylyl cyclases. Asymmetric structural changes of the full-length homodimer result in a functional heterodimer featuring two different photoactivation states. Structural changes around the cofactors result in a quasi-translational rearrangement of the distant coiled-coil sensor-effector linker. Eventually, this regulates enzymatic activity by modulating the dimer interface of the output domains. Considering the importance of phytochrome heterodimerization in plant signaling, our mechanistic details of asymmetric photoactivation in a bacterial system reveal novel aspects of the evolutionary adaptation of phytochromes.
机译:生物利用各种信号网络适应环境提示。为了感测和整合光以调节各种生物学功能,光感受器蛋白已经以模块化方式进化。这种模块化的目标是光遗传学工具的开发,该工具能够以高时空精度控制细胞事件。但是,对信号传导机制的了解有限,阻碍了创新性感光受体效应对的合理设计。在这里,我们揭示了植物色素调节的双胍基环化酶中信号转导的分子细节。全长同二聚体的不对称结构变化导致功能性异二聚体具有两个不同的光激活状态。辅因子周围的结构变化导致遥远的螺旋线圈传感器-效应子接头的准平移重排。最终,这通过调节输出域的二聚体界面来调节酶活性。考虑到植物色素异二聚体在植物信号传导中的重要性,我们在细菌系统中不对称光活化的机制细节揭示了植物色素进化适应的新方面。

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