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通过调节细胞内钙来操纵超声转染细胞的长期命运,以改善基于超声转染的递送。

Manipulating long-term fates of sonoporated cells by regulating intracellular calcium for improving sonoporation-based delivery.

机构信息

School of Sensing Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.

School of Sensing Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

J Control Release. 2024 Nov;375:142-154. doi: 10.1016/j.jconrel.2024.08.048. Epub 2024 Sep 7.

Abstract

Sonoporation-based delivery has great promise for noninvasive drug and gene therapy. After short-term membrane resealing, the long-term function recovery of sonoporated cells affects the efficiency and biosafety of sonoporation-based delivery. It is necessary to identify the key early biological signals that influence cell fate and to develop strategies for manipulating the long-term fates of sonoporated cells. Here, we used a customized experimental platform with a single cavitating microbubble induced by a single ultrasound pulse (frequency: 1.5 MHz, pulse length:13.33 μs, peak negative pressure: ∼0.40 MPa) to elicit single-site reversible sonoporation on a single HeLa cell model. We used a living-cell microscopic imaging system to trace the long-term fates of sonoporated HeLa cells in real-time for 48 h. Fluorescence from intracellular propidium iodide and Fluo-4 was used to evaluate the degree of sonoporation and intracellular calcium fluctuation (ICF), respectively. Changes in cell morphology were used to assess the long-term cell fates (i.e., proliferation, arrest, or death). We found that heterogeneously sonoporated cells had different long-term fates. With increasing degree of sonoporation, the probability of normal (proliferation) and abnormal fates (arrest and death) in sonoporated cells decreased and increased, respectively. We identified ICF as an important early event for triggering different long-term fates. Reversibly sonoporated cells exhibited stronger proliferation and restoration at lower extents of ICF. We then regulated ICF dynamics in sonoporated cells using 2-APB or BAPTA treatment to reduce calcium release from intracellular organelles and enhance intracellular calcium clearance, respectively. This significantly enhanced the proliferation and restoration of sonoporated cells and reduced the occurrence of cell-cycle arrest and death. Finally, we found that the long-term fates of sonoporated cells at multiple sites and neighboring cells were also dependent on the extent of ICF, and that 2-APB significantly enhanced their viability and reduced death. Thus, using a single HeLa cell model, we demonstrated that regulating intracellular calcium can effectively enhance the proliferation and restoration capabilities of sonoporated cells, therefore rescuing the long-term viability of sonoporated cells. These findings add to our understanding of the biophysical process of sonoporation and help design new strategies for improving the efficiency and biosafety of sonoporation-based delivery.

摘要

声孔作用介导的药物和基因传递具有很大的非侵入性治疗潜力。在短期的膜修复后,声孔化细胞的长期功能恢复会影响声孔作用介导的传递效率和生物安全性。因此,有必要识别影响细胞命运的关键早期生物学信号,并开发操纵声孔化细胞长期命运的策略。在这里,我们使用定制的实验平台,用单个声致空化微泡(频率:1.5MHz,脉冲长度:13.33μs,峰值负压:~0.40MPa)诱导单个超声脉冲,对单个 HeLa 细胞模型进行单点可逆声孔化处理。我们使用活细胞显微镜成像系统实时跟踪声孔化的 HeLa 细胞在 48 小时内的长期命运。用碘化丙啶(PI)和 Fluo-4 的荧光来分别评估声孔化程度和细胞内钙波动(ICF)。用细胞形态变化来评估长期细胞命运(即增殖、阻滞或死亡)。我们发现异质声孔化细胞具有不同的长期命运。随着声孔化程度的增加,正常(增殖)和异常命运(阻滞和死亡)的声孔化细胞的概率分别降低和增加。我们发现 ICF 是触发不同长期命运的重要早期事件。在较低的 ICF 程度下,可逆声孔化细胞表现出更强的增殖和恢复能力。然后,我们使用 2-APB 或 BAPTA 处理来调节声孔化细胞中的 ICF 动力学,分别减少细胞内细胞器的钙释放和增强细胞内钙清除。这显著增强了声孔化细胞的增殖和恢复能力,减少了细胞周期阻滞和死亡的发生。最后,我们发现多个位点和邻近细胞的声孔化细胞的长期命运也依赖于 ICF 的程度,并且 2-APB 显著提高了它们的活力并减少了死亡。因此,使用单个 HeLa 细胞模型,我们证明了调节细胞内钙可以有效地增强声孔化细胞的增殖和恢复能力,从而挽救声孔化细胞的长期活力。这些发现增加了我们对声孔作用的生物物理过程的理解,并有助于设计提高声孔作用介导的传递效率和生物安全性的新策略。

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