Wen Xiaoxu, Wang Yingying, Zhu Zhenya, Guo Shuangshuang, Qian Junjie, Zhu Jinjun, Yang Zhenni, Qiu Weibao, Li Guofeng, Huang Li, Jiang Mizu, Tan Linhua, Zheng Hairong, Shu Qiang, Li Yuezhou
National Clinical Research Center for Child Health, Children's Hospital, Zhejiang University School of Medicine, Hangzhou, China.
Department of Biophysics, Institute of Neuroscience, NHC and CAMS Key Laboratory of Medical Neurobiology, Zhejiang University School of Medicine, Hangzhou, China.
Front Chem. 2023 Mar 1;11:1130563. doi: 10.3389/fchem.2023.1130563. eCollection 2023.
Mechanosensitive channel of large conductance (MscL) is the most thoroughly studied mechanosensitive channel in prokaryotes. Owing to its small molecular weight, clear mechanical gating mechanism, and nanopore forming ability upon opening, accumulating studies are implemented in regulating cell function by activating mechanosensitive channel of large conductance in mammalian cells. This study aimed to investigate the potentials of mechanosensitive channel of large conductance as a nanomedicine and a mechano-inducer in non-small cell lung cancer (NSCLC) A549 cells from the view of molecular pathways and acoustics. The stable cytoplasmic vacuolization model about NSCLC A549 cells was established the targeted expression of modified mechanosensitive channel of large conductance channels in different subcellular organelles. Subsequent morphological changes in cellular component and expression levels of cell death markers are analyzed by confocal imaging and western blots. The permeability of mitochondrial inner membrane (MIM) exhibited a vital role in cytoplasmic vacuolization formation. Furthermore, mechanosensitive channel of large conductance channel can be activated by low intensity focused ultrasound (LIFU) in A549 cells, and the suppression of A549 tumors was achieved by LIFU with sound pressure as low as 0.053 MPa. These findings provide insights into the mechanisms underlying non-apoptotic cell death, and validate the nanochannel-based non-invasive ultrasonic strategy for cancer therapy.
大电导机械敏感通道(MscL)是原核生物中研究最为深入的机械敏感通道。由于其分子量小、机械门控机制明确且开放时具有形成纳米孔的能力,越来越多的研究致力于通过激活哺乳动物细胞中的大电导机械敏感通道来调节细胞功能。本研究旨在从分子途径和声学角度探讨大电导机械敏感通道作为纳米药物和机械诱导剂在非小细胞肺癌(NSCLC)A549细胞中的潜力。建立了NSCLC A549细胞稳定的细胞质空泡化模型,并在不同亚细胞器中靶向表达修饰的大电导机械敏感通道。随后通过共聚焦成像和蛋白质免疫印迹分析细胞成分的形态变化和细胞死亡标志物的表达水平。线粒体内膜(MIM)的通透性在细胞质空泡化形成中起着至关重要的作用。此外,低强度聚焦超声(LIFU)可在A549细胞中激活大电导机械敏感通道,且声压低至0.053MPa的LIFU可实现对A549肿瘤的抑制。这些发现为非凋亡性细胞死亡的潜在机制提供了见解,并验证了基于纳米通道的非侵入性超声癌症治疗策略。