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通过β-到-α构象转换对TDP-43自缔合的氧化调节

Oxidative regulation of TDP-43 self-association by a β-to-α conformational switch.

作者信息

Gu Jinge, Zhou Xiaoming, Sutherland Lillian, Kato Masato, Jaczynska Klaudia, Rizo Josep, McKnight Steven L

机构信息

Department of Biochemistry, UT Southwestern Medical Center 5323 Harry Hines Blvd., Dallas, Texas 75235.

Institute for Quantum Life Science, National Institutes for Quantum Science and Technology (QST) 4-9-1, Anagawa, Inage-ku, Chiba, JAPAN 263-8555.

出版信息

bioRxiv. 2023 Aug 29:2023.08.29.555361. doi: 10.1101/2023.08.29.555361.

Abstract

UNLABELLED

An evolutionarily conserved region of the TDP-43 low complexity domain twenty residues in length can adopt either an α-helical or β-strand conformation. When in the latter conformation, TDP-43 self-associates via the formation of a labile, cross-β structure. Self-association can be monitored via the formation of phase separated protein droplets. Exposure of droplets to hydrogen peroxide leads to oxidation of conserved methionine residues distributed throughout the low complexity domain. Oxidation disassembles the cross-β structure, thus eliminating both self-association and phase separation. Here we demonstrate that this process reciprocally enables formation of α-helical structure in precisely the same region formerly functioning to facilitate β-strand mediated self-association. We further observe that the α-helical conformation allows interaction with a lipid-like detergent, and that exposure to lipids enhances the β-to-α conformational switch. We hypothesize that regulation of this oxidative switch will prove to be important to the control of localized translation within vertebrate cells. The experimental observations reported herein were heavily reliant on studies of 1,6-hexanediol, a chemical agent that selectively dissolves labile structures formed via the self-association of protein domains of low sequence complexity. This aliphatic alcohol is shown to exert its dissociative activity primarily via hydrogen bonding interactions with carbonyl oxygen atoms of the polypeptide backbone. Such observations underscore the central importance of backbone-mediated protein:protein interactions that facilitate the self-association and phase separation of low complexity domains.

SIGNIFICANCE STATEMENT

The TDP-43 protein is a constituent of RNA granules involved in regulated translation. TDP-43 contains a C-terminal domain of 150 amino acids of low sequence complexity conspicuously decorated with ten methionine residues. An evolutionarily conserved region (ECR) of 20 residues within this domain can adopt either of two forms of labile secondary structure. Under normal conditions wherein methionine residues are reduced, the ECR forms a labile cross-β structure that enables RNA granule condensation. Upon methionine oxidation, the ECR undergoes a conformational switch to become an α-helix incompatible with self-association and granule integrity. Oxidation of the TDP-43 low complexity domain is hypothesized to occur proximal to mitochondria, thus facilitating dissolution of RNA granules and activation of localized translation.

摘要

未标记

TDP-43低复杂性结构域中一段长度为20个残基的进化保守区域可以采取α-螺旋或β-链构象。当处于后一种构象时,TDP-43通过形成不稳定的交叉β结构进行自我缔合。自我缔合可以通过相分离的蛋白质液滴的形成来监测。将液滴暴露于过氧化氢会导致分布在整个低复杂性结构域中的保守甲硫氨酸残基氧化。氧化会拆解交叉β结构,从而消除自我缔合和相分离。在这里,我们证明这个过程反过来能够在以前促进β链介导的自我缔合的完全相同区域形成α-螺旋结构。我们进一步观察到α-螺旋构象允许与类脂洗涤剂相互作用,并且暴露于脂质会增强β到α的构象转换。我们假设这种氧化开关的调节对于脊椎动物细胞内局部翻译的控制将被证明是重要的。本文报道的实验观察结果严重依赖于对1,6-己二醇的研究,1,6-己二醇是一种化学试剂,可选择性溶解通过低序列复杂性蛋白质结构域的自我缔合形成的不稳定结构。这种脂肪醇主要通过与多肽主链的羰基氧原子形成氢键相互作用来发挥其解离活性。这些观察结果强调了主链介导的蛋白质:蛋白质相互作用的核心重要性,这种相互作用促进了低复杂性结构域的自我缔合和相分离。

意义声明

TDP-43蛋白是参与调控翻译的RNA颗粒的组成部分。TDP-43包含一个由150个氨基酸组成的C末端结构域,其序列复杂性较低,显著地装饰有十个甲硫氨酸残基。该结构域内一个由20个残基组成的进化保守区域(ECR)可以采取两种不稳定二级结构形式中的任何一种。在甲硫氨酸残基被还原的正常条件下,ECR形成一种不稳定的交叉β结构,能够使RNA颗粒凝聚。甲硫氨酸氧化后,ECR发生构象转换,变成与自我缔合和颗粒完整性不相容的α-螺旋。据推测,TDP-43低复杂性结构域的氧化发生在线粒体附近,从而促进RNA颗粒的溶解和局部翻译的激活。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/40bd/10491227/8c3d191ad69c/nihpp-2023.08.29.555361v1-f0001.jpg

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