Department of Physics, University of Oxford, Oxford, UK.
Circ Res. 2012 Jun 8;110(12):1556-63. doi: 10.1161/CIRCRESAHA.111.262535. Epub 2012 May 8.
Human induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) offer a powerful in vitro tool to investigate disease mechanisms and to perform patient-specific drug screening. To date, electrophysiological analysis of iPSC-CMs has been limited to single-cell recordings or low-resolution microelectrode array mapping of small cardiomyocyte aggregates. New methods of generating and optically mapping impulse propagation of large human iPSC-CM cardiac monolayers are needed.
Our first aim was to develop an imaging platform with versatility for multiparameter electrophysiological mapping of cardiac preparations, including human iPSC-CM monolayers. Our second aim was to create large electrically coupled human iPSC-CM monolayers for simultaneous action potential and calcium wave propagation measurements.
A fluorescence imaging platform based on electronically controlled light-emitting diode illumination, a multiband emission filter, and single camera sensor was developed and utilized to monitor simultaneously action potential and intracellular calcium wave propagation in cardiac preparations. Multiple, large-diameter (≥1 cm), electrically coupled human cardiac monolayers were then generated that propagated action potentials and calcium waves at velocities similar to those commonly observed in rodent cardiac monolayers.
The multiparametric imaging system presented here offers a scalable enabling technology to measure simultaneously action potential and intracellular calcium wave amplitude and dynamics of cardiac monolayers. The advent of large-scale production of human iPSC-CMs makes it possible to now generate sufficient numbers of uniform cardiac monolayers that can be utilized for the study of arrhythmia mechanisms and offers advantages over commonly used rodent models.
人类诱导多能干细胞衍生的心肌细胞(iPSC-CMs)为研究疾病机制和进行患者特异性药物筛选提供了强大的体外工具。迄今为止,iPSC-CMs 的电生理分析仅限于单细胞记录或小心肌细胞聚集体的低分辨率微电极阵列映射。需要新的方法来产生和光学映射大的人类 iPSC-CM 心肌单层的冲动传播。
我们的第一个目标是开发一种具有多功能性的成像平台,用于包括人类 iPSC-CM 单层在内的心脏制剂的多参数电生理图。我们的第二个目标是创建大的电耦合人类 iPSC-CM 单层,用于同时进行动作电位和钙波传播测量。
开发了一种基于电子控制发光二极管照明、多波段发射滤波器和单相机传感器的荧光成像平台,并用于监测心脏制剂中动作电位和细胞内钙波传播的同时。然后生成了多个、大直径(≥1cm)、电耦合的人类心脏单层,这些单层传播动作电位和钙波的速度与在啮齿动物心脏单层中通常观察到的速度相似。
这里提出的多参数成像系统提供了一种可扩展的使能技术,可以同时测量心脏单层的动作电位和细胞内钙波幅度和动力学。大规模生产人类 iPSC-CMs 的出现使得现在可以生成足够数量的均匀心脏单层,用于研究心律失常机制,并优于常用的啮齿动物模型。