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酵母 Sec 复合物的快速失活选择性地阻断了翻译后易位蛋白的运输。

Rapid inactivation of the yeast Sec complex selectively blocks transport of post-translationally translocated proteins.

机构信息

Department of Biochemistry and Molecular Pharmacology, University of Massachusetts Medical School, Worcester, Massachusetts, USA.

Department of Biochemistry and Molecular Pharmacology, University of Massachusetts Medical School, Worcester, Massachusetts, USA.

出版信息

J Biol Chem. 2021 Oct;297(4):101171. doi: 10.1016/j.jbc.2021.101171. Epub 2021 Sep 4.

Abstract

The yeast endoplasmic reticulum has three distinct protein translocation channels. The heterotrimeric Sec61 and Ssh1 complexes, which bind translating ribosomes, mediate cotranslational translocation of proteins targeted to the endoplasmic reticulum by the signal recognition particle (SRP) and SRP receptor targeting pathway, whereas the heptameric Sec complex has been proposed to mediate ribosome-independent post-translational translocation of proteins with less hydrophobic signal sequences that escape recognition by the SRP. However, multiple reports have proposed that the Sec complex may function cotranslationally and be involved in translocation or integration of SRP-dependent protein translocation substrates. To provide insight into these conflicting views, we induced expression of the tobacco etch virus protease to achieve rapid inactivation of the Sec complex by protease-mediated cleavage within the cytoplasmic domain of the Sec63 protein. Protein translocation assays conducted after tobacco etch virus protease induction revealed a complete block in translocation of two well-characterized substrates of the Sec complex, carboxypeptidase Y (CPY) and Gas1p, when the protease cleavage sites were located at structural domain boundaries in Sec63. However, integration of SRP-dependent membrane protein substrates was not detectably impacted. Moreover, redirecting CPY to the cotranslational pathway by increasing the hydrophobicity of the signal sequence rendered translocation of CPY insensitive to inactivation of the Sec complex. We conclude that the Sec complex is primarily responsible for the translocation of yeast secretome proteins with marginally hydrophobic signal sequences.

摘要

酵母内质网有三个不同的蛋白易位通道。异源三聚体 Sec61 和 Ssh1 复合物与翻译核糖体结合,介导信号识别颗粒 (SRP) 和 SRP 受体靶向途径靶向内质网的蛋白质的共翻译易位,而七聚体 Sec 复合物被提出介导核糖体非依赖性的疏水性较弱的信号序列的蛋白质的翻译后易位,这些信号序列逃避了 SRP 的识别。然而,多项报道提出,Sec 复合物可能以共翻译的方式发挥作用,并参与 SRP 依赖性蛋白易位底物的易位或整合。为了深入了解这些相互矛盾的观点,我们诱导表达烟草蚀纹病毒蛋白酶,通过 Sec63 蛋白细胞质结构域内的蛋白酶介导切割,快速失活 Sec 复合物。烟草蚀纹病毒蛋白酶诱导后进行的蛋白易位测定显示,当蛋白酶切割位点位于 Sec63 的结构域边界时,Sec 复合物的两个特征良好的底物,羧肽酶 Y (CPY) 和 Gas1p 的易位完全受阻。然而,SRP 依赖性膜蛋白底物的整合并没有明显受到影响。此外,通过增加信号序列的疏水性将 CPY 重定向到共翻译途径,使得 CPY 的易位对 Sec 复合物的失活不敏感。我们得出结论,Sec 复合物主要负责具有边缘疏水性信号序列的酵母分泌蛋白的易位。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/684d/8503631/1b44b4feeb89/gr1.jpg

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