双分子层张力诱导的 UPR 传感器 IRE1 聚类

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Md Zobayer Hossain, Wylie Stroberg
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引用次数: 0

摘要

内质网是蛋白质质量控制中心,一系列伴侣蛋白和折叠酶在此促进蛋白质折叠。IRE1 是一种感官跨膜蛋白,它通过形成簇和激活一种称为未折叠蛋白反应(UPR)的细胞程序来传递蛋白毒性压力信号。最近的研究表明,膜成分变化导致的膜厚度变化会驱动 IRE1 簇的形成,即使在没有蛋白毒性应激的情况下也会激活 UPR。在这里,我们根据 IRE1 二聚体的稳定性证明了双分子层张力与 UPR 激活之间的直接关系。我们通过分子动力学模拟分析了 IRE1 二聚体在(50%DOPC-50%POPC)膜中不同应用双分子层张力下的稳定性。根据 IRE1 二聚化的平均力势预测,无论是绷紧的还是压缩的 ER 膜,IRE1 二聚体的浓度都较高。这项研究表明,IRE1 可能是一种机械敏感性膜蛋白,并在双层膜张力和 UPR 激活之间建立了直接的生物物理关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Bilayer tension-induced clustering of the UPR sensor IRE1

Bilayer tension-induced clustering of the UPR sensor IRE1

Bilayer tension-induced clustering of the UPR sensor IRE1

The endoplasmic reticulum acts as a protein quality control center where a range of chaperones and foldases facilitates protein folding. IRE1 is a sensory transmembrane protein that transduces signals of proteotoxic stress by forming clusters and activating a cellular program called the unfolded protein response (UPR). Recently, membrane thickness variation due to membrane compositional changes have been shown to drive IRE1 cluster formation, activating the UPR even in the absence of proteotoxic stress. Here, we demonstrate a direct relationship between bilayer tension and UPR activation based on IRE1 dimer stability. The stability of the IRE1 dimer in a (50%DOPC-50%POPC) membrane at different applied bilayer tensions was analyzed via molecular dynamics simulations. The potential of mean force for IRE1 dimerization predicts a higher concentration of IRE1 dimers for both tensed and compressed ER membranes. This study shows that IRE1 may be a mechanosensitive membrane protein and establishes a direct biophysical relationship between bilayer tension and UPR activation.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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