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心肌收缩调节对人诱导多能干细胞衍生心肌细胞的急性影响。

Acute effects of cardiac contractility modulation on human induced pluripotent stem cell-derived cardiomyocytes.

机构信息

Office of Science and Engineering Laboratories, Center for Devices and Radiological Health, US Food and Drug Administration, Silver Spring, Maryland, USA.

出版信息

Physiol Rep. 2021 Nov;9(21):e15085. doi: 10.14814/phy2.15085.

Abstract

Cardiac contractility modulation (CCM) is an intracardiac therapy whereby nonexcitatory electrical simulations are delivered during the absolute refractory period of the cardiac cycle. We previously evaluated the effects of CCM in isolated adult rabbit ventricular cardiomyocytes and found a transient increase in calcium and contractility. In the present study, we sought to extend these results to human cardiomyocytes using human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) to develop a robust model to evaluate CCM in vitro. HiPSC-CMs (iCell Cardiomyocytes , Fujifilm Cellular Dynamic, Inc.) were studied in monolayer format plated on flexible substrate. Contractility, calcium handling, and electrophysiology were evaluated by fluorescence- and video-based analysis (CellOPTIQ, Clyde Biosciences). CCM pulses were applied using an A-M Systems 4100 pulse generator. Robust hiPSC-CMs response was observed at 14 V/cm (64 mA) for pacing and 28 V/cm (128 mA, phase amplitude) for CCM. Under these conditions, hiPSC-CMs displayed enhanced contractile properties including increased contraction amplitude and faster contraction kinetics. Likewise, calcium transient amplitude increased, and calcium kinetics were faster. Furthermore, electrophysiological properties were altered resulting in shortened action potential duration (APD). The observed effects subsided when the CCM stimulation was stopped. CCM-induced increase in hiPSC-CMs contractility was significantly more pronounced when extracellular calcium concentration was lowered from 2 mM to 0.5 mM. This study provides a comprehensive characterization of CCM effects on hiPSC-CMs. These data represent the first study of CCM in hiPSC-CMs and provide an in vitro model to assess physiologically relevant mechanisms and evaluate safety and effectiveness of future cardiac electrophysiology medical devices.

摘要

心脏收缩力调节(CCM)是一种心脏内治疗方法,即在心脏周期的绝对不应期内提供非兴奋的电模拟。我们之前评估了 CCM 在离体成年兔心室肌细胞中的作用,发现钙和收缩力短暂增加。在本研究中,我们试图使用人诱导多能干细胞衍生的心肌细胞(hiPSC-CMs)将这些结果扩展到人类心肌细胞,以开发一种强大的体外评估 CCM 的模型。单层培养的 hiPSC-CMs(iCell 心肌细胞,富士胶片细胞动态公司)在柔性基质上培养。通过荧光和视频分析(CellOPTIQ,Clyde Biosciences)评估收缩性、钙处理和电生理学。使用 A-M Systems 4100 脉冲发生器施加 CCM 脉冲。在 14 V/cm(64 mA)起搏和 28 V/cm(128 mA,相位幅度)CCM 下观察到稳健的 hiPSC-CMs 反应。在这些条件下,hiPSC-CMs 表现出增强的收缩特性,包括增加的收缩幅度和更快的收缩动力学。同样,钙瞬变幅度增加,钙动力学更快。此外,电生理特性发生改变,导致动作电位持续时间(APD)缩短。当 CCM 刺激停止时,观察到的效果消退。当将细胞外钙浓度从 2 mM 降低至 0.5 mM 时,CCM 诱导的 hiPSC-CMs 收缩力增加更为明显。这项研究全面描述了 CCM 对 hiPSC-CMs 的影响。这些数据代表了 CCM 在 hiPSC-CMs 中的首次研究,并提供了一种体外模型来评估生理相关机制,并评估未来心脏电生理医疗器械的安全性和有效性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c1b4/8564440/9050e78fc726/PHY2-9-e15085-g006.jpg

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