Werley Christopher A, Chien Miao-Ping, Gaublomme Jellert, Shekhar Karthik, Butty Vincent, Yi B Alexander, Kralj Joel M, Bloxham Blox, Boyer Laurie A, Regev Aviv, Cohen Adam E
Department of Chemistry and Chemical Biology, Harvard University, Cambridge, Massachusetts, United States of America.
Broad Institute, Cambridge, Massachusetts, United States of America.
PLoS One. 2017 Mar 23;12(3):e0172671. doi: 10.1371/journal.pone.0172671. eCollection 2017.
Human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CM) are a promising platform for cardiac studies in vitro, and possibly for tissue repair in humans. However, hiPSC-CM cells tend to retain morphology, metabolism, patterns of gene expression, and electrophysiology similar to that of embryonic cardiomyocytes. We grew hiPSC-CM in patterned islands of different sizes and shapes, and measured the effect of island geometry on action potential waveform and calcium dynamics using optical recordings of voltage and calcium from 970 islands of different sizes. hiPSC-CM in larger islands showed electrical and calcium dynamics indicative of greater functional maturity. We then compared transcriptional signatures of the small and large islands against a developmental time course of cardiac differentiation. Although island size had little effect on expression of most genes whose levels differed between hiPSC-CM and adult primary CM, we identified a subset of genes for which island size drove the majority (58%) of the changes associated with functional maturation. Finally, we patterned hiPSC-CM on islands with a variety of shapes to probe the relative contributions of soluble factors, electrical coupling, and direct cell-cell contacts to the functional maturation. Collectively, our data show that optical electrophysiology is a powerful tool for assaying hiPSC-CM maturation, and that island size powerfully drives activation of a subset of genes involved in cardiac maturation.
人诱导多能干细胞衍生的心肌细胞(hiPSC-CM)是体外心脏研究以及可能用于人类组织修复的一个有前景的平台。然而,hiPSC-CM细胞往往保留与胚胎心肌细胞相似的形态、代谢、基因表达模式和电生理学特性。我们在不同大小和形状的图案化岛中培养hiPSC-CM,并使用对970个不同大小岛的电压和钙的光学记录来测量岛的几何形状对动作电位波形和钙动力学的影响。较大岛中的hiPSC-CM显示出表明功能成熟度更高的电和钙动力学特性。然后,我们将小岛和大岛的转录特征与心脏分化的发育时间进程进行比较。尽管岛的大小对大多数在hiPSC-CM和成人原代心肌细胞之间水平不同的基因的表达影响很小,但我们确定了一个基因子集,对于这些基因,岛的大小驱动了与功能成熟相关的大部分(58%)变化。最后,我们在具有各种形状的岛上对hiPSC-CM进行图案化,以探究可溶性因子、电耦合和直接细胞间接触对功能成熟的相对贡献。总体而言,我们的数据表明光学电生理学是检测hiPSC-CM成熟度的有力工具,并且岛的大小有力地驱动了参与心脏成熟的一个基因子集的激活。