Kanade Pooja P, Oyunbaatar Nomin-Erdene, Lee Dong-Weon
MEMS and Nanotechnology Laboratory, School of Mechanical Systems Engineering, Chonnam National University, Gwangju-61186, Korea.
Center for Next Generation Sensor Research and Development, Chonnam National University, Gwangju-61186, Korea.
Micromachines (Basel). 2020 Apr 24;11(4):450. doi: 10.3390/mi11040450.
Heart related ailments are some of the most common causes for death in the world, and some of the causes are cardiac toxicity due to drugs. Several platforms have been developed in this regard over the years that can measure electrical or mechanical behavior of cardiomyocytes. In this study, we have demonstrated a biomedical device that can simultaneously measure electrophysiology and contraction force of cardiomyocytes. This dual-function device is composed of a photosensitive polymer-based cantilever, with a pair of metal-based interdigitated electrodes on its surface, such that the cantilever can measure the contraction force of cardiomyocytes and the electrodes can measure the impedance between cells and substrate. The cantilever is patterned with microgrooves so that the cardiomyocytes can align to the cantilever in order to make a higher cantilever deflection in response to contraction force. Preliminary experimental results have identified the potential for use in the drug-induced cardiac toxicity tests, and further optimization is desirable to extend the technique to various bio-sensor areas.
心脏相关疾病是世界上一些最常见的死亡原因,其中一些原因是药物引起的心脏毒性。多年来,在这方面已经开发了几个平台,可以测量心肌细胞的电行为或机械行为。在本研究中,我们展示了一种生物医学设备,它可以同时测量心肌细胞的电生理学和收缩力。这种双功能设备由一个基于光敏聚合物的悬臂组成,其表面有一对基于金属的叉指电极,这样悬臂可以测量心肌细胞的收缩力,电极可以测量细胞与底物之间的阻抗。悬臂上有微槽图案,以便心肌细胞能够与悬臂对齐,从而在受到收缩力时使悬臂产生更大的偏转。初步实验结果已经确定了该设备在药物诱导的心脏毒性测试中的应用潜力,并且需要进一步优化以将该技术扩展到各种生物传感器领域。