膜张力演化和美利汀诱导膜孔化的机械调控

Wanting Zhang, Rong Xu, Wendong Ma, Zhao Lin, Kai Yang, Bing Yuan
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引用次数: 0

摘要

膜张力在各种基本细胞过程中发挥着至关重要的作用,其中一个显著的例子是 T 细胞通过穿孔素诱导的膜穿孔放大细胞力来消除肿瘤细胞。然而,膜张力对细胞界面上生物分子活动的调控机制仍然难以捉摸。在这项研究中,我们利用动态巨型单拉美拉尔囊泡渗漏试验,结合闪烁张力分析、分子动力学模拟和活细胞试验,研究了膜张力与美利汀(一种典型的孔形成肽)的穿孔活性之间的相关性。结果表明,膜张力的增加会增强美利汀的活性,尤其是在其临界孔形成浓度附近。此外,肽在膜中的结合、插入和聚集等作用也会进一步影响膜张力的演变。活细胞实验显示,人为提高膜张力可有效增强美利汀诱导孔形成和破坏膜的能力,当暴露于浓度为 2.0 μg mL-1 的美利汀时,A549 细胞的死亡率最多可增加十倍。我们的研究结果阐明了膜张力与美利汀的作用机制及孔隙形成效率之间的关系,同时为调节细胞-膜界面分子的功能活性提供了一种实用的机械方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Membrane tension evolution and mechanical regulation of melittin-induced membrane poration
Membrane tension plays a crucial role in various fundamental cellular processes, with one notable example being the T cell-mediated elimination of tumor cells through perforin-induced membrane perforation by amplifying cellular force. However, the mechanisms governing the regulation of biomolecular activities at the cell interface by membrane tension remain elusive. In this study, we investigated the correlation between membrane tension and poration activity of melittin, a prototypical pore-forming peptide, using dynamic giant unilamellar vesicle leakage assays combined with flickering tension analysis, molecular dynamics simulations, and live cell assays. The results demonstrate that an increase in membrane tension enhances the activity of melittin, particularly near its critical pore-forming concentration. Moreover, peptide actions such as binding, insertion, and aggregation in the membrane further influence the evolution of membrane tension. Live cell experiments reveal that artificially enhancing membrane tension effectively enhances melittin's ability to induce pore formation and disrupt membranes, resulting in up to a ten-fold increase in A549 cell mortality when exposed to a concentration of 2.0 μg mL-1 melittin. Our findings elucidate the relationship between membrane tension and the mechanism of action as well as pore-forming efficiency of melittin, while providing a practical mechanical approach for regulating functional activity of molecules at the cell-membrane interface.
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