Li Fenfang, Park Tae Hyun, Sankin George, Gilchrist Christopher, Liao Defei, Chan Chon U, Mao Zheng, Hoffman Brenton D, Zhong Pei
Department of Mechanical Engineering and Materials Science, Duke University, Durham, NC 27708.
Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore, 308232.
Theranostics. 2021 Apr 7;11(12):6090-6104. doi: 10.7150/thno.56813. eCollection 2021.
Therapeutic ultrasound or shockwave has shown its great potential to stimulate neural and muscle tissue, where cavitation microbubble induced Ca signaling is believed to play an important role. However, the pertinent mechanisms are unknown, especially at the single-cell level. Particularly, it is still a major challenge to get a comprehensive understanding of the effect of potential mechanosensitive molecular players on the cellular responses, including mechanosensitive ion channels, purinergic signaling and integrin ligation by extracellular matrix. Here, laser-induced cavitation microbubble was used to stimulate individual HEK293T cells either genetically knocked out or expressing Piezo1 ion channels with different normalized bubble-cell distance. Ca signaling and potential membrane poration were evaluated with a real-time fluorescence imaging system. Integrin-binding microbeads were attached to the apical surface of the cells at mild cavitation conditions, where the effect of Piezo1, P2X receptors and integrin ligation on single cell intracellular Ca signaling was assessed. Ca responses were rare at normalized cell-bubble distances that avoided membrane poration, even with overexpression of Piezo1, but could be increased in frequency to 42% of cells by attaching integrin-binding beads. We identified key molecular players in the bead-enhanced Ca response: increased integrin ligation by substrate ECM triggered ATP release and activation of P2X-but not Piezo1-ion channels. The resultant Ca influx caused dynamic changes in cell spread area. This approach to safely eliciting a Ca response with cavitation microbubbles and the uncovered mechanism by which increased integrin-ligation mediates ATP release and Ca signaling will inform new strategies to stimulate tissues with ultrasound and shockwaves.
治疗性超声或冲击波已显示出刺激神经和肌肉组织的巨大潜力,其中空化微泡诱导的钙信号被认为起着重要作用。然而,相关机制尚不清楚,尤其是在单细胞水平上。特别是,全面了解潜在的机械敏感分子参与者对细胞反应的影响,包括机械敏感离子通道、嘌呤能信号传导以及细胞外基质介导的整合素连接,仍然是一项重大挑战。在这里,使用激光诱导的空化微泡刺激基因敲除或表达Piezo1离子通道的单个HEK293T细胞,且具有不同的标准化气泡 - 细胞距离。使用实时荧光成像系统评估钙信号和潜在的细胞膜穿孔情况。在温和的空化条件下,将整合素结合微珠附着到细胞的顶端表面,评估Piezo1、P2X受体和整合素连接对单细胞内钙信号的影响。在避免细胞膜穿孔的标准化细胞 - 气泡距离下,即使过表达Piezo1,钙反应也很少见,但通过附着整合素结合微珠,钙反应频率可增加到42%的细胞。我们确定了微珠增强钙反应中的关键分子参与者:底物细胞外基质增加的整合素连接触发了ATP释放并激活了P2X离子通道而非Piezo1离子通道。由此产生的钙内流导致细胞铺展面积的动态变化。这种利用空化微泡安全引发钙反应的方法以及所揭示的整合素连接增加介导ATP释放和钙信号传导的机制,将为用超声和冲击波刺激组织的新策略提供信息。