Tian Jian, Tu Chunlong, Huang Bobo, Liang Yitao, Zhou Jian, Ye Xuesong
Biosensor National Special Laboratory, Key Laboratory of BME of the Ministry of Education, Zhejiang University, Hangzhou, 310027, People's Republic of China.
Department of Biomedical Engineering, Zhejiang University, Hangzhou, 310027, People's Republic of China.
Eur Biophys J. 2017 Jul;46(5):495-507. doi: 10.1007/s00249-016-1192-4. Epub 2016 Dec 23.
Electrophysiology and mechanics are two essential components in the functions of cardiomyocytes and skeletal muscle cells. The simultaneous recording of electrophysiological and mechanical activities is important for the understanding of mechanisms underlying cell functions. For example, on the one hand, mechanisms under cardiovascular drug effects will be investigated in a comprehensive way by the simultaneous recording of electrophysiological and mechanical activities. On the other hand, computational models of electromechanics provide a powerful tool for the research of cardiomyocytes. The electrical and mechanical activities are important in cardiomyocyte models. The simultaneous recording of electrophysiological and mechanical activities can provide much experimental data for the models. Therefore, an efficient method for the simultaneous recording of the electrical and mechanical data from cardiomyocytes is required for the improvement of cardiac modeling. However, as far as we know, most of the previous methods were not easy to be implemented in the electromechanical recording. For this reason, in this study, a union method of microelectrode array and atomic force microscope was proposed. With this method, the extracellular field potential and beating force of cardiomyocytes were recorded simultaneously with a low root-mean-square noise level of 11.67 μV and 60 pN. Drug tests were conducted to verify the feasibility of the experimental platform. The experimental results suggested the method would be useful for the cardiovascular drug screening and refinement of the computational cardiomyocyte models. It may be valuable for exploring the functional mechanisms of cardiomyocytes and skeletal muscle cells under physiological or pathological conditions.
电生理学和力学是心肌细胞和骨骼肌细胞功能的两个重要组成部分。同时记录电生理和力学活动对于理解细胞功能的潜在机制很重要。例如,一方面,通过同时记录电生理和力学活动,可以全面研究心血管药物作用的机制。另一方面,机电计算模型为心肌细胞研究提供了强大的工具。电活动和机械活动在心肌细胞模型中很重要。同时记录电生理和力学活动可以为模型提供大量实验数据。因此,为了改进心脏建模,需要一种从心肌细胞同时记录电和机械数据的有效方法。然而,据我们所知,以前的大多数方法在机电记录中不易实现。因此,在本研究中,提出了一种微电极阵列和原子力显微镜的联合方法。使用这种方法,以11.67 μV和60 pN的低均方根噪声水平同时记录了心肌细胞的细胞外场电位和搏动力。进行了药物测试以验证实验平台的可行性。实验结果表明该方法将有助于心血管药物筛选和计算心肌细胞模型的优化。它对于探索生理或病理条件下心肌细胞和骨骼肌细胞的功能机制可能具有重要价值。