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前体蛋白穿越叶绿体膜系统的过程。

The journey of preproteins across the chloroplast membrane systems.

作者信息

Ballabani Gent, Forough Maryam, Kessler Felix, Shanmugabalaji Venkatasalam

机构信息

Laboratory of Plant Physiology, Institute of Biology, University of Neuchâtel, Neuchâtel, Switzerland.

出版信息

Front Physiol. 2023 Jun 1;14:1213866. doi: 10.3389/fphys.2023.1213866. eCollection 2023.

Abstract

The photosynthetic capacity of chloroplasts is vital for autotrophic growth in algae and plants. The origin of the chloroplast has been explained by the endosymbiotic theory that proposes the engulfment of a cyanobacterium by an ancestral eukaryotic cell followed by the transfer of many cyanobacterial genes to the host nucleus. As a result of the gene transfer, the now nuclear-encoded proteins acquired chloroplast targeting peptides (known as transit peptides; transit peptide) and are translated as preproteins in the cytosol. Transit peptides contain specific motifs and domains initially recognized by cytosolic factors followed by the chloroplast import components at the outer and inner envelope of the chloroplast membrane. Once the preprotein emerges on the stromal side of the chloroplast protein import machinery, the transit peptide is cleaved by stromal processing peptidase. In the case of thylakoid-localized proteins, cleavage of the transit peptides may expose a second targeting signal guiding the protein to the thylakoid lumen or allow insertion into the thylakoid membrane by internal sequence information. This review summarizes the common features of targeting sequences and describes their role in routing preproteins to and across the chloroplast envelope as well as the thylakoid membrane and lumen.

摘要

叶绿体的光合能力对于藻类和植物的自养生长至关重要。叶绿体的起源已由内共生理论解释,该理论提出一个祖先真核细胞吞噬了一个蓝细菌,随后许多蓝细菌基因转移到宿主细胞核中。由于基因转移,现在由核编码的蛋白质获得了叶绿体靶向肽(称为转运肽;转运肽),并在细胞质中作为前体蛋白进行翻译。转运肽包含特定的基序和结构域,最初由细胞质因子识别,随后被叶绿体膜外膜和内膜上的叶绿体导入成分识别。一旦前体蛋白出现在叶绿体蛋白导入机制的基质侧,转运肽就会被基质加工肽酶切割。对于类囊体定位的蛋白质,转运肽的切割可能会暴露第二个靶向信号,将蛋白质引导至类囊体腔,或通过内部序列信息使其插入类囊体膜。本综述总结了靶向序列的共同特征,并描述了它们在将前体蛋白导向叶绿体包膜以及穿过类囊体膜和腔中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c617/10267391/1cf9d7cb38b3/fphys-14-1213866-g001.jpg

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