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在 Rab GTPases 膜靶向作用中高变 C 末端结构域的作用。

The role of the hypervariable C-terminal domain in Rab GTPases membrane targeting.

机构信息

Department of Physical Biochemistry, Max Planck Institute of Molecular Physiology, 44227 Dortmund, Germany.

出版信息

Proc Natl Acad Sci U S A. 2014 Feb 18;111(7):2572-7. doi: 10.1073/pnas.1313655111. Epub 2014 Feb 3.

Abstract

Intracellular membrane trafficking requires correct and specific localization of Rab GTPases. The hypervariable C-terminal domain (HVD) of Rabs is posttranslationally modified by isoprenyl moieties that enable membrane association. A model asserting HVD-directed targeting has been contested in previous studies, but the role of the Rab HVD and the mechanism of Rab membrane targeting remain elusive. To elucidate the function of the HVD, we have substituted this region with an unnatural polyethylenglycol (PEG) linker by using oxime ligation. The PEGylated Rab proteins undergo normal prenylation, underlining the unique ability of the Rab prenylation machinery to process the Rab family with diverse C-terminal sequences. Through localization studies and functional analyses of semisynthetic PEGylated Rab1, Rab5, Rab7, and Rab35 proteins, we demonstrate that the role of the HVD of Rabs in membrane targeting is more complex than previously understood. The HVD of Rab1 and Rab5 is dispensable for membrane targeting and appears to function simply as a linker between the GTPase domain and the membrane. The N-terminal residues of the Rab7 HVD are important for late endosomal/lysosomal localization, apparently due to their involvement in interaction with the Rab7 effector Rab-interacting lysosomal protein. The C-terminal polybasic cluster of the Rab35 HVD is essential for plasma membrane (PM) targeting, presumably because of the electrostatic interaction with negatively charged lipids on the PM. Our findings suggest that Rab membrane targeting is dictated by a complex mechanism involving GEFs, GAPs, effectors, and C-terminal interaction with membranes to varying extents, and possibly other binding partners.

摘要

细胞内膜运输需要 Rab GTPases 的正确和特异性定位。Rab 的高度可变 C 末端结构域(HVD)在翻译后被异戊烯基部分修饰,使其能够与膜结合。先前的研究对 HVD 定向靶向的模型提出了质疑,但 Rab HVD 的作用和 Rab 膜靶向的机制仍然难以捉摸。为了阐明 HVD 的功能,我们使用肟连接将该区域替换为非天然的聚乙二醇(PEG)接头。PEGylated Rab 蛋白经历正常的 prenylation,这突出了 Rab prenylation 机制处理具有不同 C 末端序列的 Rab 家族的独特能力。通过半合成 PEGylated Rab1、Rab5、Rab7 和 Rab35 蛋白的定位研究和功能分析,我们证明 Rab 中 HVD 的作用在膜靶向中比以前理解的更为复杂。Rab1 和 Rab5 的 HVD 对于膜靶向是可有可无的,并且似乎仅仅作为 GTPase 结构域和膜之间的连接物起作用。Rab7 HVD 的 N 末端残基对于晚期内体/溶酶体定位很重要,显然是由于它们参与与 Rab7 效应物 Rab 相互作用的溶酶体蛋白的相互作用。Rab35 HVD 的 C 末端多碱性簇对于质膜(PM)靶向是必不可少的,大概是因为它与 PM 上带负电荷的脂质之间的静电相互作用。我们的研究结果表明,Rab 膜靶向是由涉及 GEFs、GAPs、效应物以及 C 末端与膜的不同程度相互作用的复杂机制决定的,并且可能涉及其他结合伴侣。

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