Yang Jingsi, Ding Nan, Zhao Dandan, Yu Yunsheng, Shao Chunlai, Ni Xuan, Zhao Zhen-Ao, Li Zhen, Chen Jianquan, Ying Zheng, Yu Miao, Lei Wei, Hu Shijun
Department of Cardiovascular Surgery of the First Affiliated Hospital & Institute for Cardiovascular Science, Collaborative Innovation Center of Hematology, State Key Laboratory of Radiation Medicine and Protection, Medical College, Soochow University, Suzhou, China.
Department of Cardiology, The Second Affiliated Hospital of Soochow University, Suzhou, China.
Front Cell Dev Biol. 2021 Jul 30;9:687769. doi: 10.3389/fcell.2021.687769. eCollection 2021.
Human pluripotent stem cell-derived cardiomyocytes (hPSC-CMs) represent an infinite cell source for cardiovascular disease modeling, drug screening and cell therapy. Despite extensive efforts, current approaches have failed to generate hPSC-CMs with fully adult-like phenotypes , and the immature properties of hPSC-CMs in structure, metabolism and electrophysiology have long been impeding their basic and clinical applications. The prenatal-to-postnatal transition, accompanied by severe nutrient starvation and autophagosome formation in the heart, is believed to be a critical window for cardiomyocyte maturation. In this study, we developed a new strategy, mimicking the starvation event by Earle's balanced salt solution (EBSS) treatment, to promote hPSC-CM maturation . We found that EBSS-induced starvation obviously activated autophagy and mitophagy in human embryonic stem cell-derived cardiomyocytes (hESC-CMs). Intermittent starvation, via 2-h EBSS treatment per day for 10 days, significantly promoted the structural, metabolic and electrophysiological maturation of hESC-CMs. Structurally, the EBSS-treated hESC-CMs showed a larger cell size, more organized contractile cytoskeleton, higher ratio of multinucleation, and significantly increased expression of structure makers of cardiomyocytes. Metabolically, EBSS-induced starvation increased the mitochondrial content in hESC-CMs and promoted their capability of oxidative phosphorylation. Functionally, EBSS-induced starvation strengthened electrophysiological maturation, as indicated by the increased action potential duration at 90% and 50% repolarization and the calcium handling capacity. In conclusion, our data indicate that EBSS intermittent starvation is a simple and efficient approach to promote hESC-CM maturation in structure, metabolism and electrophysiology at an affordable time and cost.
人多能干细胞衍生的心肌细胞(hPSC-CMs)为心血管疾病建模、药物筛选和细胞治疗提供了无限的细胞来源。尽管付出了巨大努力,但目前的方法仍未能产生具有完全成人样表型的hPSC-CMs,并且hPSC-CMs在结构、代谢和电生理方面的不成熟特性长期以来一直阻碍着它们的基础和临床应用。产前到产后的转变,伴随着心脏中严重的营养饥饿和自噬体形成,被认为是心肌细胞成熟的关键窗口。在本研究中,我们开发了一种新策略,通过Earle平衡盐溶液(EBSS)处理模拟饥饿事件,以促进hPSC-CM成熟。我们发现EBSS诱导的饥饿明显激活了人胚胎干细胞衍生的心肌细胞(hESC-CMs)中的自噬和线粒体自噬。通过每天2小时的EBSS处理持续10天的间歇性饥饿,显著促进了hESC-CMs的结构、代谢和电生理成熟。在结构上,经EBSS处理的hESC-CMs显示出更大的细胞尺寸、更有组织的收缩细胞骨架、更高的多核化比例,以及心肌细胞结构标志物的表达显著增加。在代谢方面,EBSS诱导的饥饿增加了hESC-CMs中的线粒体含量,并促进了它们的氧化磷酸化能力。在功能上,EBSS诱导的饥饿增强了电生理成熟,表现为90%和50%复极化时动作电位持续时间增加以及钙处理能力增强。总之,我们的数据表明,EBSS间歇性饥饿是一种简单有效的方法,能够在可承受的时间和成本下促进hESC-CMs在结构、代谢和电生理方面的成熟。