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监测插入酶与单个跨膜蛋白的结合和插入。

Monitoring the binding and insertion of a single transmembrane protein by an insertase.

机构信息

Department of Biosystems Science and Engineering, ETH Zurich, 4058, Basel, Switzerland.

Molecular Microbiology, Biology Institute, Universität Hohenheim, 70599, Stuttgart, Germany.

出版信息

Nat Commun. 2021 Dec 6;12(1):7082. doi: 10.1038/s41467-021-27315-3.

Abstract

Cells employ highly conserved families of insertases and translocases to insert and fold proteins into membranes. How insertases insert and fold membrane proteins is not fully known. To investigate how the bacterial insertase YidC facilitates this process, we here combine single-molecule force spectroscopy and fluorescence spectroscopy approaches, and molecular dynamics simulations. We observe that within 2 ms, the cytoplasmic α-helical hairpin of YidC binds the polypeptide of the membrane protein Pf3 at high conformational variability and kinetic stability. Within 52 ms, YidC strengthens its binding to the substrate and uses the cytoplasmic α-helical hairpin domain and hydrophilic groove to transfer Pf3 to the membrane-inserted, folded state. In this inserted state, Pf3 exposes low conformational variability such as typical for transmembrane α-helical proteins. The presence of YidC homologues in all domains of life gives our mechanistic insight into insertase-mediated membrane protein binding and insertion general relevance for membrane protein biogenesis.

摘要

细胞利用高度保守的插入酶和移位酶家族将蛋白质插入并折叠到膜中。插入酶如何插入和折叠膜蛋白尚未完全清楚。为了研究细菌插入酶 YidC 如何促进这一过程,我们结合了单分子力谱学和荧光光谱学方法以及分子动力学模拟。我们观察到,在 2 毫秒内,YidC 的细胞质 α-螺旋发夹以高构象可变性和动力学稳定性与膜蛋白 Pf3 的多肽结合。在 52 毫秒内,YidC 加强了与底物的结合,并利用细胞质 α-螺旋发夹结构域和亲水槽将 Pf3 转移到插入膜中的折叠状态。在这种插入状态下,Pf3 表现出低构象可变性,如典型的跨膜 α-螺旋蛋白。所有生命领域都存在 YidC 同源物,这使我们对插入酶介导的膜蛋白结合和插入的机制有了深入的了解,这对膜蛋白生物发生具有普遍意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6376/8648943/8577d5142df0/41467_2021_27315_Fig1_HTML.jpg

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