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cpSecA,一个类囊体蛋白转运体亚基,对拟南芥的光合作用发育是必需的。

cpSecA, a thylakoid protein translocase subunit, is essential for photosynthetic development in Arabidopsis.

机构信息

Department of Plant Biology and Ecology, Nankai University, Tianjin 300071, China.

出版信息

J Exp Bot. 2010 Jun;61(6):1655-69. doi: 10.1093/jxb/erq033. Epub 2010 Mar 1.

Abstract

The endosymbiont-derived Sec-dependent protein sorting pathway is essential for protein import into the thylakoid lumen and is important for the proper functioning of the chloroplast. Two loss-of-function mutants of cpSecA, the ATPase subunit of the chloroplast Sec translocation machinery, were analysed in Arabidopsis. The homozygous mutants were albino and seedling lethal under autotrophic conditions and remained dwarf and infertile with an exogenous carbon supply. They were subject to oxidative stress and accumulated superoxide under normal lighting conditions. Electron microscopy revealed that the chloroplast of the mutants had underdeveloped thylakoid structures. Histochemical GUS assay of the AtcpSecA::GUS transgenic plants confirmed that AtcpSecA was expressed in green organs in a light-inducible way. Real-time RT-PCR and microarray analysis revealed repressed transcription of nucleus- and chloroplast- encoded subunits of photosynthetic complexes, and induced transcription of chloroplast protein translocation machinery and mitochondrion-encoded respiratory complexes in the mutants. It is inferred that AtcpSecA plays an essential role in chloroplast biogenesis, the absence of which triggered a retrograde signal, eventually leading to a reprogramming of chloroplast and mitochondrial gene expression.

摘要

内共生体衍生的 Sec 依赖蛋白分拣途径对于蛋白质向类囊体腔的导入是必不可少的,对于叶绿体的正常功能也很重要。拟南芥中分析了 cpSecA(叶绿体 Sec 易位子机器的 ATP 酶亚基)的两个功能丧失突变体。纯合突变体在自养条件下是白化和幼苗致死的,并且在外源碳供应下仍然矮小且不育。它们易受氧化应激影响,并在正常光照条件下积累超氧自由基。电子显微镜显示突变体的叶绿体类囊体结构发育不良。AtcpSecA::GUS 转基因植物的组织化学 GUS 分析证实,AtcpSecA 以光诱导的方式在绿色器官中表达。实时 RT-PCR 和微阵列分析显示,突变体中光合作用复合物的核编码和叶绿体编码亚基的转录受到抑制,而叶绿体蛋白转运机器和线粒体编码呼吸复合物的转录被诱导。可以推断,AtcpSecA 在叶绿体生物发生中起着至关重要的作用,其缺失触发了逆行信号,最终导致叶绿体和线粒体基因表达的重新编程。

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