首页> 外文期刊>Stem cells and development >Non-cardiomyocytes influence the electrophysiological maturation of human embryonic stem cell-derived cardiomyocytes during differentiation.
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Non-cardiomyocytes influence the electrophysiological maturation of human embryonic stem cell-derived cardiomyocytes during differentiation.

机译:非心肌细胞在分化过程中影响人胚胎干细胞衍生的心肌细胞的电生理成熟。

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Various types of cardiomyocytes undergo changes in automaticity and electrical properties during fetal heart development. Human embryonic stem cell-derived cardiomyocytes (hESC-CMs), like fetal cardiomyocytes, are electrophysiologically immature and exhibit automaticity. We used hESC-CMs to investigate developmental changes in mechanisms of automaticity and to determine whether electrophysiological maturation is driven by an intrinsic developmental clock and/or is regulated by interactions with non-cardiomyocytes in embryoid bodies (EBs). We isolated pure populations of hESC-CMs from EBs by lentivirus-engineered Puromycin resistance at various stages of differentiation. Using pharmacological agents, calcium (Ca(2+)) imaging, and intracellular recording techniques, we found that intracellular Ca(2+)-cycling mechanisms developed early and contributed to dominant automaticity throughout hESC-CM differentiation. Sarcolemmal ion channels evolved later upon further differentiation within EBs and played an increasing role in controlling automaticity and electrophysiological properties of hESC-CMs. In contrast to the development of intracellular Ca(2+)-handling proteins, ion channel development and electrophysiological maturation of hESC-CMs did not occur when hESC-CMs were isolated from EBs early and maintained in culture without further interaction with non-cardiomyocytes. Adding back non-cardiomyocytes to early-isolated hESC-CMs rescued the arrest of electrophysiological maturation, indicating that non-cardiomyocytes in EBs drive electrophysiological maturation of early hESC-CMs. Non-cardiomyocytes in EBs contain most cell types present in the embryonic heart that are known to influence early cardiac development. Our study is the first to demonstrate that non-cardiomyocytes influence electrophysiological maturation of early hESC-CMs in cultures. Defining the nature of these extrinsic signals will aid in the directed maturation of immature hESC-CMs to mitigate arrhythmogenic risks of cell-based therapies.
机译:在胎儿心脏发育过程中,各种类型的心肌细胞会发生自动性和电特性的变化。人类胚胎干细胞衍生的心肌细胞(hESC-CM),就像胎儿的心肌细胞一样,在电生理上是不成熟的,并且表现出自动化。我们使用hESC-CMs来研究自动化机制的发展变化,并确定电生理成​​熟是否由内在的发育时钟驱动和/或受胚状体(EB)中非心肌细胞的相互作用所调节。我们通过慢病毒工程的嘌呤霉素抗性在分化的各个阶段从EBs中分离出纯的hESC-CMs种群。使用药理剂,钙(Ca(2+))成像和细胞内记录技术,我们发现细胞内Ca(2+)循环机制发展较早,并在整个hESC-CM分化过程中占主导地位。肌膜离子通道后来在EB内进一步分化时进化,并在控制hESC-CM的自动性和电生理特性中起越来越重要的作用。与细胞内Ca(2+)处理蛋白的发展相反,当hESC-CMs从EBs早期分离并保持在培养物中而不与非心肌细胞相互作用时,hESC-CMs不会发生离子通道发育和电生理成熟。将非心肌细胞添加回早期分离的hESC-CM中可以挽救电生理成熟的停滞,这表明EB中的非心肌细胞可以驱动早期hESC-CM的电生理成熟。 EB中的非心肌细胞包含胚胎心脏中存在的大多数影响早期心脏发育的细胞类型。我们的研究首次证明非心肌细胞会影响培养物中早期hESC-CMs的电生理成熟。定义这些外在信号的性质将有助于未成熟的hESC-CMs的定向成熟,从而减轻基于细胞疗法的致心律失常风险。

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