Srirussamee Kasama, Xue Ruikang, Mobini Sahba, Cassidy Nigel J, Cartmell Sarah H
Department of Materials, The University of Manchester, Manchester, UK.
Department of Biomedical Engineering, Faculty of Engineering, King Mongkut's Institute of Technology Ladkrabang (KMITL), Bangkok, Thailand.
J Tissue Eng. 2021 Feb 16;12:2041731420974147. doi: 10.1177/2041731420974147. eCollection 2021 Jan-Dec.
Electrical stimulation (ES) has potential to be an effective tool for bone injury treatment in clinics. However, the therapeutic mechanism associated with ES is still being discussed. This study aims to investigate the initial mechanism of action by characterising the physical and chemical changes in the extracellular environment during ES and correlate them with the responses of mesenchymal stem/stromal cells (MSCs). Computational modelling was used to estimate the electrical potentials relative to the cathode and the current density across the cell monolayer. We showed expression of phosphorylated ERK1/2, c-FOS, c-JUN, and SPP1 mRNAs, as well as the increased metabolic activities of MSCs at different time points. Moreover, the average of 2.5 μM of HO and 34 μg/L of dissolved Pt were measured from the electrically stimulated media (ES media), which also corresponded with the increases in SPP1 mRNA expression and cell metabolic activities. The addition of sodium pyruvate to the ES media as an antioxidant did not alter the SPP1 mRNA expression, but eliminated an increase in cell metabolic activities induced by ES media treatment. These findings suggest that HO was influencing cell metabolic activity, whereas SPP1 mRNA expression was regulated by other faradic by-products. This study reveals how different electrical stimulation regime alters cellular regenerative responses and the roles of faradic by-products, that might be used as a physical tool to guide and control cell behaviour.
电刺激(ES)有潜力成为临床上治疗骨损伤的有效工具。然而,与电刺激相关的治疗机制仍在探讨中。本研究旨在通过表征电刺激过程中细胞外环境的物理和化学变化,并将其与间充质干/基质细胞(MSC)的反应相关联,来研究其初始作用机制。使用计算模型来估计相对于阴极的电势和跨细胞单层的电流密度。我们展示了不同时间点磷酸化ERK1/2、c-FOS、c-JUN和SPP1 mRNA的表达,以及MSC代谢活性的增加。此外,从电刺激培养基(ES培养基)中测得平均2.5μM的羟基自由基(HO)和34μg/L的溶解铂,这也与SPP1 mRNA表达和细胞代谢活性的增加相对应。向ES培养基中添加丙酮酸钠作为抗氧化剂,并未改变SPP1 mRNA表达,但消除了ES培养基处理诱导的细胞代谢活性增加。这些发现表明,HO影响细胞代谢活性,而SPP1 mRNA表达受其他法拉第副产物调节。本研究揭示了不同的电刺激方案如何改变细胞再生反应以及法拉第副产物的作用,这可能用作指导和控制细胞行为的物理工具。