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核糖体中新生多肽结构对通过Sec61转运体的转运过程的调控。

Control of translocation through the Sec61 translocon by nascent polypeptide structure within the ribosome.

作者信息

Daniel Colin J, Conti Brian, Johnson Arthur E, Skach William R

机构信息

Department of Biochemistry & Molecular Biology, Oregon Health & Science University, Portland, OR 97239, USA.

出版信息

J Biol Chem. 2008 Jul 25;283(30):20864-73. doi: 10.1074/jbc.M803517200. Epub 2008 May 13.

Abstract

During polytopic protein biogenesis, multiple transmembrane segments (TMs) must pass through the ribosome exit tunnel and into the Sec61 translocon prior to insertion into the endoplasmic reticulum membrane. To investigate how movement of a newly synthesized TM along this integration pathway might be influenced by synthesis of a second TM, we used photocross-linking probes to detect the proximity of ribosome-bound nascent polypeptides to Sec61alpha. Probes were inserted at sequential sites within TM2 of the aquaporin-1 water channel by in vitro translation of truncated mRNAs. TM2 first contacted Sec61alpha when the probe was positioned approximately 38 residues from the ribosome peptidyltransferase center, and TM2-Sec61alpha photoadducts decreased markedly when the probe was >80 residues from the peptidyltransferase center. Unexpectedly, as nascent chain length was gradually extended, photocross-linking at multiple sites within TM2 abruptly and transiently decreased, indicating that TM2 initially entered, withdrew, and then re-entered Sec61alpha. This brief reduction in TM2 photocross-linking coincided with TM3 synthesis. Replacement of TM3 with a secretory reporter domain or introduction of proline residues into TM3 changed the TM2 cross-linking profile and this biphasic behavior. These findings demonstrate that the primary and likely secondary structure of the nascent polypeptide within the ribosome exit tunnel can influence the timing with which topogenic determinants contact, enter, and pass through the translocon.

摘要

在多结构域蛋白质生物合成过程中,多个跨膜片段(TMs)必须在插入内质网膜之前穿过核糖体出口通道并进入Sec61转运体。为了研究新合成的TM沿着这条整合途径的移动如何受到第二个TM合成的影响,我们使用光交联探针来检测核糖体结合的新生多肽与Sec61α的接近程度。通过体外翻译截短的mRNA,将探针插入水通道蛋白-1水通道TM2内的连续位点。当探针位于距离核糖体肽基转移酶中心约38个残基处时,TM2首次接触Sec61α,而当探针距离肽基转移酶中心>80个残基时,TM2-Sec61α光加合物明显减少。出乎意料的是,随着新生链长度逐渐延长,TM2内多个位点的光交联突然且短暂地减少,表明TM2最初进入、退出然后重新进入Sec61α。TM2光交联的这种短暂减少与TM3的合成同时发生。用分泌报告结构域替换TM3或在TM3中引入脯氨酸残基改变了TM2的交联图谱和这种双相行为。这些发现表明,核糖体出口通道内新生多肽的一级结构以及可能的二级结构可以影响拓扑决定簇接触、进入和穿过转运体的时间。

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