Department of Biomedical Engineering, Graduate School, Kyung Hee University, Seoul, Korea.
Department of Biomedical Engineering, Kyung Hee University, Seoul, Korea.
J Cell Physiol. 2021 Nov;236(11):7450-7463. doi: 10.1002/jcp.30417. Epub 2021 May 16.
Cellular elasticity is a key factor related to a broad range of physiological and pathological processes. The elasticity of a single cell has thus emerged as a potential biomarker to characterize the cellular state. Both internal and external stimuli affect cellular elasticity, and changes in elasticity can cause alterations in cellular characteristics or function. The application of electric fields (EFs) is a promising method that can be used to change cellular elasticity; however, the mechanisms underlying its effect remain unknown. Here, we demonstrate EFs-induced elasticity changes in human dermal fibroblasts and discuss the underlying mechanism related to actin polymerization. Cellular elasticity increases after EF (50 mV/mm) stimulation, reaching a maximum at 30 min before decreasing between 30 and 120 min. The cellular elasticity under EF stimulation, regardless of stimulation time, is higher than that of the control. F-actin regulates the elasticity of cells through gelsolin activation. We show changes in intracellular Ca caused by EFs, which induced gelsolin activation and F-actin content changes. This result demonstrates a series of processes in which external electrical stimulation conditions regulate cellular elasticity.
细胞弹性是与广泛的生理和病理过程相关的关键因素。因此,单个细胞的弹性已成为表征细胞状态的潜在生物标志物。内部和外部刺激都会影响细胞弹性,而弹性的变化会导致细胞特征或功能的改变。电场 (EFs) 的应用是一种很有前途的方法,可以用来改变细胞弹性;然而,其作用的机制尚不清楚。在这里,我们证明了 EF 诱导的人真皮成纤维细胞的弹性变化,并讨论了与肌动蛋白聚合相关的潜在机制。EF(50 mV/mm)刺激后细胞弹性增加,在 30 分钟达到最大值,然后在 30 到 120 分钟之间降低。EF 刺激下的细胞弹性,无论刺激时间如何,都高于对照。F-肌动蛋白通过凝胶蛋白激活调节细胞的弹性。我们展示了 EF 引起的细胞内 Ca 变化,这诱导了凝胶蛋白的激活和 F-肌动蛋白含量的变化。这一结果表明了一系列过程,其中外部电刺激条件调节细胞弹性。