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NINJ1在机械张力下调节质膜脆性。

NINJ1 regulates plasma membrane fragility under mechanical tension.

作者信息

Zhu Yunfeng, Xiao Fang, Wang Yiling, Wang Yufang, Li Jialin, Zhong Dongmei, Huang Zhilei, Yu Miao, Wang Zhirong, Barbara Joshua, Plunkett Christopher, Zeng Mengxue, Song Yiyan, Wang Zhongxing, Cai Changjie, Guan Xiangdong, Hammack Scott, Zhang Liang, Shao Feng, Shi Zheng, Xiang Fu-Li, Xu Jie

机构信息

Department of Critical Care Medicine, First Affiliated Hospital of Sun Yat-sen University, Guangzhou, China.

Institute of Precision Medicine, First Affiliated Hospital of Sun Yat-sen University, Guangzhou, China.

出版信息

Res Sq. 2024 Oct 16:rs.3.rs-5237916. doi: 10.21203/rs.3.rs-5237916/v1.

Abstract

Plasma membrane integrity is vital not only for cell survival but also nearly all aspects of cell functioning1. Mechanical stress can cause plasma membrane damage2, but it is not known whether there are large molecules (proteins) that control plasma membrane integrity. Here we constructed a 384-well cellular stretch system that delivers precise, reproducible mechanical strain to adherent cells. Using the system, we screened 10,843 siRNAs targeting 2,726 multi-pass transmembrane proteins for stretch-induced membrane permeability changes. The screen identified NINJ1, a protein recently proposed to regulate pyroptosis and other lytic cell death, as the top hit. We demonstrate that NINJ1 is a critical regulator for mechanical force-induced plasma membrane rupture (PMR), without the need of stimulating any cell death programs. Low NINJ1 expression renders the membrane more resistant to stretching, while high expression of NINJ1 lowers the threshold of PMR under mechanical strain. NINJ1 level on the plasma membrane is inversely correlated to tension required to rupture the membrane. In the pyroptosis context, NINJ1 on its own is not sufficient to fully rupture the membrane, and additional mechanical stress is required for full PMR. Our work establishes that NINJ1 functions as a determinant of membrane biomechanical properties. Our study also suggests that PMR across tissues of distinct mechanical environments is subjected to fine tuning by differences in NINJ1 expression and external mechanical forces.

摘要

质膜完整性不仅对细胞存活至关重要,而且对细胞功能的几乎所有方面都至关重要。机械应力可导致质膜损伤,但尚不清楚是否存在控制质膜完整性的大分子(蛋白质)。在这里,我们构建了一个384孔细胞拉伸系统,该系统可向贴壁细胞提供精确、可重复的机械应变。利用该系统,我们筛选了针对2726个多次跨膜蛋白的10843条小干扰RNA(siRNA),以检测拉伸诱导的膜通透性变化。筛选结果显示,NINJ1是最显著的命中蛋白,NINJ1是一种最近被认为参与调节细胞焦亡和其他溶解性细胞死亡的蛋白质。我们证明,NINJ1是机械力诱导的质膜破裂(PMR)的关键调节因子,无需刺激任何细胞死亡程序。低水平的NINJ1表达使膜对拉伸更具抗性,而高水平的NINJ1表达则降低了机械应变下PMR的阈值。质膜上的NINJ1水平与使膜破裂所需的张力呈负相关。在细胞焦亡的情况下,NINJ1自身不足以使膜完全破裂,完全的PMR还需要额外的机械应力。我们的工作证实,NINJ1作为膜生物力学特性的一个决定因素发挥作用。我们的研究还表明,在不同机械环境的组织中,PMR受到NINJ1表达差异和外部机械力的微调。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8401/11527205/87faa8e700d7/nihpp-rs5237916v1-f0005.jpg

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