两亲螺旋感知核内膜脂质松动的参数。

Shoken Lee, Anabel-Lise Le Roux, Mira Mors, Stefano Vanni, Pere Roca-Cusachs, Shirin Bahmanyar
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引用次数: 0

摘要

两面螺旋(AHs)能检测到整体膜特性的差异,但 AHs 如何检测基因组周围的核膜还不太清楚。在这里,我们通过计算筛选了一份已表征和推测的人类核内膜(INM)蛋白的候选两面螺旋。细胞生物学和体外实验测定结合计算证明,AHs 能检测脂质堆积缺陷而不是静电,从而与 INM 结合,这表明 INM 在基础条件下是松散堆积的。低渗休克导致的膜张力进一步促进了 AH 与 INM 的结合,而细胞基质拉伸并没有招募对膜张力敏感的 AH。因此,不同的机械输入会在不同程度上增强 INM 的脂质松动,INM 蛋白中的 AHs 可能会利用这种松动发挥下游生化功能。我们的资源为今后研究 INM 上脂质-蛋白质相互作用的贡献提供了一个框架,并使我们能够探索 INM 在不同条件下的膜特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Amphipathic helices sense the inner nuclear membrane environment through lipid packing defects.

Amphipathic helices (AHs) are ubiquitous protein motifs that modulate targeting to organellar membranes by sensing differences in bulk membrane properties. However, the adaptation between membrane-targeting AHs and the nuclear membrane environment that surrounds the genome is poorly understood. Here, we computationally screened for candidate AHs in a curated list of characterized and putative human inner nuclear membrane (INM) proteins. Cell biological and in vitro experimental assays combined with computational calculations demonstrated that AHs detect lipid packing defects over electrostatics to bind to the INM, indicating that the INM is loosely packed under basal conditions. Membrane tension resulting from hypotonic shock further promoted AH binding to the INM, whereas cell-substrate stretch did not enhance recruitment of membrane tension-sensitive AHs. Together, our work demonstrates the rules driving lipid-protein interactions at the INM, and its implications in the response of the nucleus to different stimuli.

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