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Induced Pluripotent Stem Cell-Derived Cardiac Progenitors Differentiate to Cardiomyocytes and Form Biosynthetic Tissues

机译:诱导多能干细胞衍生的心脏祖细胞分化为心肌细胞并形成生物合成组织

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摘要

The mammalian heart has little capacity to regenerate, and following injury the myocardium is replaced by non-contractile scar tissue. Consequently, increased wall stress and workload on the remaining myocardium leads to chamber dilation, dysfunction, and heart failure. Cell-based therapy with an autologous, epigenetically reprogrammed, and cardiac-committed progenitor cell source could potentially reverse this process by replacing the damaged myocardium with functional tissue. However, it is unclear whether cardiac progenitor cell-derived cardiomyocytes are capable of attaining levels of structural and functional maturity comparable to that of terminally-fated cardiomyocytes. Here, we first describe the derivation of mouse induced pluripotent stem (iPS) cells, which once differentiated allow for the enrichment of Nkx2-5(+) cardiac progenitors, and the cardiomyocyte-specific expression of the red fluorescent protein. We show that the cardiac progenitors are multipotent and capable of differentiating into endothelial cells, smooth muscle cells and cardiomyocytes. Moreover, cardiac progenitor selection corresponds to cKit(+) cell enrichment, while cardiomyocyte cell-lineage commitment is concomitant with dual expression of either cKit/Flk1 or cKit/Sca-1. We proceed to show that the cardiac progenitor-derived cardiomyocytes are capable of forming electrically and mechanically coupled large-scale 2D cell cultures with mature electrophysiological properties. Finally, we examine the cell progenitors’ ability to form electromechanically coherent macroscopic tissues, using a physiologically relevant 3D culture model and demonstrate that following long-term culture the cardiomyocytes align, and form robust electromechanical connections throughout the volume of the biosynthetic tissue construct. We conclude that the iPS cell-derived cardiac progenitors are a robust cell source for tissue engineering applications and a 3D culture platform for pharmacological screening and drug development studies.
机译:哺乳动物的心脏几乎没有再生能力,受伤后,心肌会被非收缩性疤痕组织所取代。因此,增加的壁应力和剩余心肌上的工作量会导致室扩张,功能障碍和心力衰竭。用自体的,表观遗传学上重新编程的,心脏定型的祖细胞源进行的基于细胞的治疗可能通过用功能组织代替受损的心肌而逆转这一过程。然而,尚不清楚源自心脏祖细胞的心肌细胞是否能够达到与末端肥厚的心肌细胞相当的结构和功能成熟水平。在这里,我们首先描述小鼠诱导的多能干(iPS)细胞的衍生,该细胞一旦分化,就可以富集Nkx2-5(+)心脏祖细胞,以及红色荧光蛋白的心肌细胞特异性表达。我们表明,心脏祖细胞是多能的,能够分化为内皮细胞,平滑肌细胞和心肌细胞。此外,心脏祖细胞的选择对应于cKit(+)细胞的富集,而心肌细胞谱系的承诺与cKit / Flk1或cKit / Sca-1的双重表达同时发生。我们继续表明,心脏祖细胞衍生的心肌细胞能够形成具有成熟的电生理特性的电气和机械耦合的大规模二维细胞培养。最后,我们使用生理学相关的3D培养模型检查了细胞祖细胞形成机电一致的宏观组织的能力,并证明了长期培养后,心肌细胞会对齐,并在整个生物合成组织结构中形成牢固的机电连接。我们得出的结论是,iPS细胞来源的心脏祖细胞是用于组织工程应用的强大细胞来源,并且是用于药理筛选和药物开发研究的3D培养平台。

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