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孔环和塞子在SecY蛋白传导通道中的作用。

The roles of pore ring and plug in the SecY protein-conducting channel.

作者信息

Gumbart James, Schulten Klaus

机构信息

Department of Physics and Beckman Institute, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.

出版信息

J Gen Physiol. 2008 Dec;132(6):709-19. doi: 10.1085/jgp.200810062. Epub 2008 Nov 10.

Abstract

The protein-conducting channel, or translocon, is an evolutionarily conserved complex that allows nascent proteins to cross a cellular membrane or integrate into it. The crystal structure of an archaeal translocon, the SecY complex, revealed that two elements contribute to sealing the channel: a small "plug" domain blocking the periplasmic region of the channel, and a pore ring composed of six hydrophobic residues acting as a constriction point at the channel's center. To determine the independent functions of these two elements, we have performed molecular dynamics simulations of the native channel as well as of two recently structurally resolved mutants in which portions of their plugs were deleted. We find that in the mutants, the instability in the plug region leads to a concomitant increase in flexibility of the pore ring. The instability is quantified by the rate of water permeation in each system as well as by the force required for oligopeptide translocation. Through a novel simulation in which the interactions between the plug and water were independently controlled, we find that the role of the plug in stabilizing the pore ring is significantly more important than its role as a purely steric barrier.

摘要

蛋白质传导通道,即易位子,是一种进化上保守的复合体,它允许新生蛋白质穿过细胞膜或整合到细胞膜中。古菌易位子SecY复合体的晶体结构表明,有两个元件有助于封闭通道:一个小的“塞子”结构域阻塞通道的周质区域,以及一个由六个疏水残基组成的孔环,作为通道中心的收缩点。为了确定这两个元件的独立功能,我们对天然通道以及最近在结构上解析的两个突变体进行了分子动力学模拟,在这两个突变体中,它们的塞子部分被删除。我们发现,在突变体中,塞子区域的不稳定性导致孔环的灵活性同时增加。这种不稳定性通过每个系统中的水渗透速率以及寡肽转运所需的力来量化。通过一种新颖的模拟,其中塞子与水之间的相互作用被独立控制,我们发现塞子在稳定孔环方面的作用比其作为纯粹空间屏障的作用重要得多。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b643/2585858/f7f52f339559/jgp1320709f01.jpg

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