Luo Xiaojing, Li Wener, Künzel Karolina, Henze Sarah, Cyganek Lukas, Strano Anna, Poetsch Mareike S, Schubert Mario, Guan Kaomei
Institute of Pharmacology and Toxicology, Technische Universität Dresden, Dresden, Germany.
Clinic for Cardiology and Pneumology, Universitätsmedizin Göttingen, Göttingen, Germany.
Front Cell Dev Biol. 2020 Aug 12;8:772. doi: 10.3389/fcell.2020.00772. eCollection 2020.
In adult cardiomyocytes (CMs), the type 2 ryanodine receptor (RYR2) is an indispensable Ca release channel that ensures the integrity of excitation-contraction coupling, which is fundamental for every heartbeat. However, the role and importance of RYR2 during human embryonic cardiac development are still poorly understood. Here, we generated two human induced pluripotent stem cell (iPSC)-based knockout (RYR2) lines using the CRISPR/Cas9 gene editing technology. We found that RYR2-iPSCs could differentiate into CMs with the efficiency similar to control-iPSCs (Ctrl-iPSCs); however, the survival of iPSC-CMs was markedly affected by the lack of functional RYR2. While Ctrl-iPSC-CMs exhibited regular Ca handling, we observed significantly reduced frequency and intense abnormalities of Ca transients in RYR2-iPSC-CMs. Ctrl-iPSC-CMs displayed sensitivity to extracellular Ca ([Ca ]) and caffeine in a concentration-dependent manner, while RYR2-iPSC-CMs showed inconsistent reactions to [Ca ] and were insensitive to caffeine, indicating there is no RYR2-mediated Ca release from the sarcoplasmic reticulum (SR). Instead, compensatory mechanism for calcium handling in RYR2-iPSC-CMs is partially mediated by the inositol 1,4,5-trisphosphate receptor (IP3R). Similar to Ctrl-iPSC-CMs, SR Ca refilling in RYR2-iPSC-CMs is mediated by SERCA. Additionally, RYR2-iPSC-CMs showed a decreased beating rate and a reduced peak amplitude of L-type Ca current. These findings demonstrate that RYR2 is not required for CM lineage commitment but is important for CM survival and contractile function. IP3R-mediated Ca release is one of the major compensatory mechanisms for Ca cycling in human CMs with the RYR2 deficiency.
在成年心肌细胞(CMs)中,2型兰尼碱受体(RYR2)是一种不可或缺的钙释放通道,可确保兴奋 - 收缩偶联的完整性,而兴奋 - 收缩偶联是每次心跳的基础。然而,RYR2在人类胚胎心脏发育过程中的作用和重要性仍知之甚少。在此,我们使用CRISPR/Cas9基因编辑技术构建了两个人诱导多能干细胞(iPSC)来源的敲除(RYR2)细胞系。我们发现RYR2-iPSC能够分化为CMs,其效率与对照iPSC(Ctrl-iPSC)相似;然而,功能性RYR2的缺失显著影响了iPSC-CMs的存活。虽然Ctrl-iPSC-CMs表现出正常的钙处理能力,但我们观察到RYR2-iPSC-CMs中钙瞬变的频率显著降低且异常强烈。Ctrl-iPSC-CMs对细胞外钙([Ca])和咖啡因呈浓度依赖性敏感,而RYR2-iPSC-CMs对[Ca]的反应不一致且对咖啡因不敏感,这表明不存在RYR2介导的肌浆网(SR)钙释放。相反,RYR2-iPSC-CMs中钙处理的补偿机制部分由肌醇1,4,5-三磷酸受体(IP3R)介导。与Ctrl-iPSC-CMs相似,RYR2-iPSC-CMs中SR钙再填充由肌浆网钙ATP酶(SERCA)介导。此外,RYR2-iPSC-CMs的搏动率降低,L型钙电流的峰值幅度减小。这些发现表明,RYR2对于CM谱系定向并非必需,但对CM存活和收缩功能很重要。IP3R介导的钙释放是RYR2缺乏的人类CMs中钙循环的主要补偿机制之一。