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基于仿生基底的 hiPSC 心肌细胞动作电位和钙处理成熟的光学研究

Optical Investigation of Action Potential and Calcium Handling Maturation of hiPSC-Cardiomyocytes on Biomimetic Substrates.

机构信息

Department of Experimental and Clinical Medicine, Division of Physiology, Università degli studi di Firenze, 50134 Florence, Italy.

Department NeuroFarBa, University of Florence, 50134 Florence, Italy.

出版信息

Int J Mol Sci. 2019 Aug 3;20(15):3799. doi: 10.3390/ijms20153799.

Abstract

Cardiomyocytes from human induced pluripotent stem cells (hiPSC-CMs) are the most promising human source with preserved genetic background of healthy individuals or patients. This study aimed to establish a systematic procedure for exploring development of hiPSC-CM functional output to predict genetic cardiomyopathy outcomes and identify molecular targets for therapy. Biomimetic substrates with microtopography and physiological stiffness can overcome the immaturity of hiPSC-CM function. We have developed a custom-made apparatus for simultaneous optical measurements of hiPSC-CM action potential and calcium transients to correlate these parameters at specific time points (day 60, 75 and 90 post differentiation) and under inotropic interventions. In later-stages, single hiPSC-CMs revealed prolonged action potential duration, increased calcium transient amplitude and shorter duration that closely resembled those of human adult cardiomyocytes from fresh ventricular tissue of patients. Thus, the major contribution of sarcoplasmic reticulum and positive inotropic response to β-adrenergic stimulation are time-dependent events underlying excitation contraction coupling (ECC) maturation of hiPSC-CM; biomimetic substrates can promote calcium-handling regulation towards adult-like kinetics. Simultaneous optical recordings of long-term cultured hiPSC-CMs on biomimetic substrates favor high-throughput electrophysiological analysis aimed at testing (mechanistic hypothesis on) disease progression and pharmacological interventions in patient-derived hiPSC-CMs.

摘要

来自人类诱导多能干细胞(hiPSC-CM)的心肌细胞是最有前途的人类来源,可以保留健康个体或患者的遗传背景。本研究旨在建立一种系统的方法来探索 hiPSC-CM 功能输出的发展,以预测遗传心肌病的结果,并确定治疗的分子靶点。具有微观形貌和生理弹性的仿生基质可以克服 hiPSC-CM 功能的不成熟。我们开发了一种定制的仪器,用于同时进行 hiPSC-CM 动作电位和钙瞬变的光学测量,以在特定时间点(分化后第 60、75 和 90 天)和在变力干预下对这些参数进行关联。在后期,单个 hiPSC-CM 显示出动作电位持续时间延长、钙瞬变幅度增加和持续时间缩短,这与来自患者新鲜心室组织的成人心肌细胞非常相似。因此,肌浆网的主要贡献和对β-肾上腺素能刺激的正性变力反应是兴奋-收缩偶联(ECC)成熟的时间依赖性事件;仿生基质可以促进钙处理调节向成人样动力学发展。在仿生基质上对长期培养的 hiPSC-CM 进行的同时光学记录有利于高通量电生理分析,旨在测试(关于疾病进展的机制假设)和对患者来源的 hiPSC-CM 进行药理学干预。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/49cf/6695920/8ed855af7b4b/ijms-20-03799-g001.jpg

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