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进化重布线:叶绿体中经过修饰的原核基因调控途径。

Evolutionary rewiring: a modified prokaryotic gene-regulatory pathway in chloroplasts.

机构信息

School of Biological and Chemical Sciences, Queen Mary University of London, , Mile End Road, London E1 4NS, UK.

出版信息

Philos Trans R Soc Lond B Biol Sci. 2013 Jun 10;368(1622):20120260. doi: 10.1098/rstb.2012.0260. Print 2013 Jul 19.

Abstract

Photosynthetic electron transport regulates chloroplast gene transcription through the action of a bacterial-type sensor kinase known as chloroplast sensor kinase (CSK). CSK represses photosystem I (PS I) gene transcription in PS I light and thus initiates photosystem stoichiometry adjustment. In cyanobacteria and in non-green algae, CSK homologues co-exist with their response regulator partners in canonical bacterial two-component systems. In green algae and plants, however, no response regulator partner of CSK is found. Yeast two-hybrid analysis has revealed interaction of CSK with sigma factor 1 (SIG1) of chloroplast RNA polymerase. Here we present further evidence for the interaction between CSK and SIG1. We also show that CSK interacts with quinone. Arabidopsis SIG1 becomes phosphorylated in PS I light, which then specifically represses transcription of PS I genes. In view of the identical signalling properties of CSK and SIG1 and of their interactions, we suggest that CSK is a SIG1 kinase. We propose that the selective repression of PS I genes arises from the operation of a gene-regulatory phosphoswitch in SIG1. The CSK-SIG1 system represents a novel, rewired chloroplast-signalling pathway created by evolutionary tinkering. This regulatory system supports a proposal for the selection pressure behind the evolutionary stasis of chloroplast genes.

摘要

光合作用电子传递通过一种被称为叶绿体传感器激酶(CSK)的细菌型传感器激酶的作用来调节叶绿体基因转录。CSK 在 PS I 光下抑制光系统 I(PSI)基因转录,从而启动光系统化学计量的调节。在蓝细菌和非绿色藻类中,CSK 同源物与它们的响应调节剂伙伴一起存在于典型的细菌双组分系统中。然而,在绿色藻类和植物中,没有发现 CSK 的响应调节剂伙伴。酵母双杂交分析揭示了 CSK 与叶绿体 RNA 聚合酶的 sigma 因子 1(SIG1)之间的相互作用。在这里,我们进一步提供了 CSK 与 SIG1 之间相互作用的证据。我们还表明 CSK 与醌相互作用。拟南芥 SIG1 在 PS I 光下发生磷酸化,这会特异性地抑制 PS I 基因的转录。鉴于 CSK 和 SIG1 具有相同的信号特性及其相互作用,我们推测 CSK 是一种 SIG1 激酶。我们提出,PS I 基因的选择性抑制源于 SIG1 中基因调控磷酸开关的作用。CSK-SIG1 系统代表了一种由进化 tinkering 创造的新型、重新布线的叶绿体信号通路。这个调节系统支持了关于叶绿体基因进化停滞背后的选择压力的一个提议。

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