Dharan Raviv, Barnoy Avishai, Tsaturyan Andrey K, Grossman Alon, Goren Shahar, Yosibash Inbar, Nachmias Dikla, Elia Natalie, Sorkin Raya, Kozlov Michael M
School of Chemistry, Faculty of Exact Sciences, Tel Aviv University, Tel Aviv, Israel.
Center for Physics and Chemistry of Living Systems, Tel Aviv University, Tel Aviv, Israel.
Nat Commun. 2025 Jan 2;16(1):91. doi: 10.1038/s41467-024-55398-1.
Propagation of membrane tension mediates mechanical signal transduction along surfaces of live cells and sets the time scale of mechanical equilibration of cell membranes. Recent studies in several cell types and under different conditions revealed a strikingly wide variation range of the tension propagation speeds including extremely low ones. The latter suggests a possibility of long-living inhomogeneities of membrane tension crucially affecting mechano-sensitive membrane processes. Here, we propose, analyze theoretically, and support experimentally a mechanism of tension propagation in membranes crumpled by the contractile cortical cytoskeleton. The tension spreading is mediated by the membrane flow between the crumples. We predict the pace of the tension propagation to be controlled by the intra-cellular pressure and the degree of the membrane crumpling. We provide experimental support for the suggested mechanism by monitoring the rate of tension propagation in cells exposed to external media of different osmolarities.
膜张力的传播介导了沿活细胞表面的机械信号转导,并设定了细胞膜机械平衡的时间尺度。最近在几种细胞类型和不同条件下的研究表明,张力传播速度的变化范围惊人地广泛,包括极低的速度。后者表明膜张力可能存在长期的不均匀性,这对机械敏感的膜过程有至关重要的影响。在这里,我们提出、从理论上进行分析并通过实验支持一种在由收缩性皮质细胞骨架引起褶皱的膜中张力传播的机制。张力的传播是由褶皱之间的膜流动介导的。我们预测张力传播的速度受细胞内压力和膜褶皱程度的控制。我们通过监测暴露于不同渗透压外部介质中的细胞中张力传播的速率,为所提出的机制提供了实验支持。