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在陆地植物进化过程中,叶绿体SRP54通过与叶绿体SRP43形成复合物被招募用于翻译后蛋白质转运。

Chloroplast SRP54 Was Recruited for Posttranslational Protein Transport via Complex Formation with Chloroplast SRP43 during Land Plant Evolution.

作者信息

Dünschede Beatrix, Träger Chantal, Schröder Christine Vera, Ziehe Dominik, Walter Björn, Funke Silke, Hofmann Eckhard, Schünemann Danja

机构信息

From the Molecular Biology of Plant Organelles and.

Protein Crystallography, Ruhr University Bochum, 44780 Bochum, Germany.

出版信息

J Biol Chem. 2015 May 22;290(21):13104-14. doi: 10.1074/jbc.M114.597922. Epub 2015 Apr 1.

Abstract

In bacteria, membrane proteins are targeted cotranslationally via a signal recognition particle (SRP). During the evolution of higher plant chloroplasts from cyanobacteria, the SRP pathway underwent striking adaptations that enable the posttranslational transport of the abundant light-harvesting chlorophyll-a/b-binding proteins (LHCPs). The conserved 54-kDa SRP subunit in higher plant chloroplasts (cpSRP54) is not bound to an SRP RNA, an essential SRP component in bacteria, but forms a stable heterodimer with the chloroplast-specific cpSRP43. This heterodimeric cpSRP recognizes LHCP and delivers it to the thylakoid membrane whereby cpSRP43 plays a central role. This study shows that the cpSRP system in the green alga Chlamydomonas reinhardtii differs significantly from that of higher plants as cpSRP43 is not complexed to cpSRP54 in Chlamydomonas and cpSRP54 is not involved in LHCP recognition. This divergence is attributed to altered residues within the cpSRP54 tail and the second chromodomain of cpSRP43 that are crucial for the formation of the binding interface in Arabidopsis. These changes are highly conserved among chlorophytes, whereas all land plants contain cpSRP proteins with typical interaction motifs. These data demonstrate that the coevolution of LHCPs and cpSRP43 occurred independently of complex formation with cpSRP54 and that the interaction between cpSRP54 and cpSRP43 evolved later during the transition from chlorophytes to land plants. Furthermore, our data show that in higher plants a heterodimeric form of cpSRP is required for the formation of a low molecular weight transit complex with LHCP.

摘要

在细菌中,膜蛋白通过信号识别颗粒(SRP)进行共翻译靶向运输。在高等植物叶绿体从蓝细菌进化而来的过程中,SRP途径经历了显著的适应性变化,从而实现了丰富的捕光叶绿素a/b结合蛋白(LHCP)的翻译后运输。高等植物叶绿体中保守的54 kDa SRP亚基(cpSRP54)不与细菌中SRP的必需组分SRP RNA结合,而是与叶绿体特异性的cpSRP43形成稳定的异源二聚体。这种异源二聚体cpSRP识别LHCP并将其递送至类囊体膜,其中cpSRP43起着核心作用。本研究表明,莱茵衣藻中的cpSRP系统与高等植物的cpSRP系统有显著差异,因为衣藻中的cpSRP43不与cpSRP54复合,且cpSRP54不参与LHCP的识别。这种差异归因于cpSRP54尾部和cpSRP43的第二个色域内的氨基酸残基发生了变化,这些残基对于拟南芥中结合界面的形成至关重要。这些变化在绿藻中高度保守,而所有陆地植物都含有具有典型相互作用基序的cpSRP蛋白。这些数据表明,LHCPs和cpSRP43的共同进化独立于与cpSRP54的复合物形成,并且cpSRP54和cpSRP43之间的相互作用是在从绿藻向陆地植物过渡的后期进化而来的。此外,我们的数据表明,在高等植物中,cpSRP的异源二聚体形式是与LHCP形成低分子量转运复合物所必需的。

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本文引用的文献

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Signal recognition particle: an essential protein-targeting machine.信号识别颗粒:一种重要的蛋白靶向机器。
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