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声驻波对细胞活力和代谢活性的影响。

Effect of acoustic standing waves on cellular viability and metabolic activity.

机构信息

Bristol Centre for Functional Nanomaterials, HH Wills Physics Laboratory, University of Bristol, Bristol, BS8 1TL, UK.

School of Chemistry, University of Bristol, Cantock's Close, Bristol, BS8 1TS, UK.

出版信息

Sci Rep. 2020 May 22;10(1):8493. doi: 10.1038/s41598-020-65241-4.

Abstract

Acoustic standing wave devices offer excellent potential applications in biological sciences for drug delivery, cell manipulation and tissue engineering. However, concerns have been raised about possible destructive effects on cells due to the applied acoustic field, in addition to other produced secondary factors. Here, we report a systematic study employing a 1D resonant acoustic trapping device to evaluate the cell viability and cell metabolism for a healthy cell line (Human Dermal Fibroblasts, HDF) and a cervical cancer cell line (HeLa), as a function of time and voltages applied (4-10 V) under temperature-controlled conditions. We demonstrate that high cell viability can be achieved reliably when the device is operated at its minimum trapping voltage and tuned carefully to maximise the acoustic standing wave field at the cavity resonance. We found that cell viability and reductive metabolism for both cell lines are kept close to control levels at room temperature and at 34 °C after 15 minutes of acoustic exposure, while shorter acoustic exposures and small changes on temperature and voltages, had detrimental effects on cells. Our study highlights the importance of developing robust acoustic protocols where the operating mode of the acoustic device is well defined, characterized and its temperature carefully controlled, for the application of acoustic standing waves when using live cells and for potential clinical applications.

摘要

声驻波器件在药物输送、细胞操作和组织工程等生物科学领域具有极好的潜在应用。然而,由于施加的声场,除了其他产生的次要因素外,人们还对其可能对细胞产生的破坏性影响表示担忧。在这里,我们报告了一项系统研究,该研究使用一维谐振声捕获装置来评估健康细胞系(人真皮成纤维细胞,HDF)和宫颈癌细胞系(HeLa)的细胞活力和细胞代谢,作为时间和电压的函数(4-10V)在控温条件下。我们证明,当设备以最小捕获电压运行并仔细调谐以最大化腔共振处的声驻波场时,可以可靠地实现高细胞活力。我们发现,在 15 分钟的声暴露后,两种细胞系的细胞活力和还原代谢都保持在接近对照水平的室温下,在 34°C 下,而较短的声暴露和温度及电压的微小变化对细胞有不利影响。我们的研究强调了开发稳健的声学协议的重要性,在该协议中,声学设备的工作模式得到了很好的定义、表征,并对其温度进行了仔细控制,以便在使用活细胞时应用声驻波,并为潜在的临床应用提供了依据。

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