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表面声波增强细胞振动以诱导细胞生长,作为体外创伤愈合模型。

Vibration enhanced cell growth induced by surface acoustic waves as in vitro wound-healing model.

机构信息

Experimental Physics I, Institute of Physics, University of Augsburg, 86159 Augsburg, Germany.

Stiftung der Deutschen Wirtschaft gGmbH, 10178 Berlin, Germany.

出版信息

Proc Natl Acad Sci U S A. 2020 Dec 15;117(50):31603-31613. doi: 10.1073/pnas.2005203117. Epub 2020 Nov 30.

Abstract

We report on in vitro wound-healing and cell-growth studies under the influence of radio-frequency (rf) cell stimuli. These stimuli are supplied either by piezoactive surface acoustic waves (SAWs) or by microelectrode-generated electric fields, both at frequencies around 100 MHz. Employing live-cell imaging, we studied the time- and power-dependent healing of artificial wounds on a piezoelectric chip for different cell lines. If the cell stimulation is mediated by piezomechanical SAWs, we observe a pronounced, significant maximum of the cell-growth rate at a specific SAW amplitude, resulting in an increase of the wound-healing speed of up to 135 ± 85% as compared to an internal reference. In contrast, cells being stimulated only by electrical fields of the same magnitude as the ones exposed to SAWs exhibit no significant effect. In this study, we investigate this effect for different wavelengths, amplitude modulation of the applied electrical rf signal, and different wave modes. Furthermore, to obtain insight into the biological response to the stimulus, we also determined both the cell-proliferation rate and the cellular stress levels. While the proliferation rate is significantly increased for a wide power range, cell stress remains low and within the normal range. Our findings demonstrate that SAW-based vibrational cell stimulation bears the potential for an alternative method to conventional ultrasound treatment, overcoming some of its limitations.

摘要

我们报告了在射频 (rf) 细胞刺激影响下的体外伤口愈合和细胞生长研究。这些刺激源分别由压电表面声波 (SAW) 或微电极产生的电场提供,频率均在 100 MHz 左右。通过使用活细胞成像,我们研究了不同细胞系在压电芯片上人工伤口的时间和功率依赖性愈合。如果细胞刺激是通过压电 SAW 介导的,我们会在特定的 SAW 幅度下观察到细胞生长率的明显、显著最大值,导致伤口愈合速度比内部参考增加高达 135±85%。相比之下,仅受到与 SAW 相同幅度的电场刺激的细胞没有表现出明显的效果。在这项研究中,我们研究了不同波长、应用电 rf 信号的幅度调制以及不同波模对此效应的影响。此外,为了深入了解对刺激的生物学反应,我们还测定了细胞增殖率和细胞应激水平。虽然在宽功率范围内细胞增殖率显著增加,但细胞应激仍保持较低水平并处于正常范围内。我们的研究结果表明,基于 SAW 的振动细胞刺激具有替代传统超声治疗的潜力,克服了其一些局限性。

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