Lewis Jordann, Yaseen Basil, Saraf Anita
bioRxiv. 2024 Apr 30:2024.04.29.591754. doi: 10.1101/2024.04.29.591754.
Human induced pluripotent stem cell cardiomyocytes (hiPSC-CMs) allow for high-throughput evaluation of cardiomyocyte (CM) physiology in health and disease. While multimodality testing provides a large breadth of information related to electrophysiology, contractility, and intracellular signaling in small populations of iPSC-CMs, current technologies for analyzing these parameters are expensive and resource-intensive. We sought to design a 2D/3D hybrid organoid system and harness optical imaging techniques to assess electromechanical properties, calcium dynamics, and signal propagation across CMs in a high-throughput manner. We validated our methods using a doxorubicin-based system, as the drug has well-characterized cardiotoxic, pro-arrhythmic effects. hiPSCs were differentiated into CMs, assembled into organoids, and thereafter treated with doxorubicin. The organoids were then replated to form a hybrid 2D/3D iPSC-CM construct where the 3D cardiac organoids acted as the source of electromechanical activity which propagated outwards into a 2D iPSC-CM sheet. The organoid recapitulated cardiac structure and connectivity, while 2D CMs facilitated analysis at an individual cellular level which recreated numerous doxorubicin-induced electrophysiologic and propagation abnormalities. Thus, we have developed a novel 2D/3D hybrid organoid model that employs an integrated optical analysis platform to provide a reliable high-throughput method for studying cardiotoxicity, providing valuable data on calcium, contractility, and signal propagation.
人诱导多能干细胞心肌细胞(hiPSC-CMs)可用于对健康和疾病状态下心肌细胞(CM)的生理学进行高通量评估。虽然多模态测试能提供与少量诱导多能干细胞来源的心肌细胞的电生理学、收缩性和细胞内信号传导相关的大量信息,但目前用于分析这些参数的技术昂贵且资源密集。我们试图设计一种二维/三维混合类器官系统,并利用光学成像技术以高通量方式评估心肌细胞的机电特性、钙动力学和信号传播。我们使用基于阿霉素的系统验证了我们的方法,因为该药物具有特征明确的心脏毒性和促心律失常作用。诱导多能干细胞分化为心肌细胞,组装成类器官,然后用阿霉素处理。然后将类器官重新铺板以形成二维/三维混合诱导多能干细胞-心肌细胞构建体,其中三维心脏类器官作为机电活动的来源,向外传播到二维诱导多能干细胞-心肌细胞片层中。类器官重现了心脏结构和连接性,而二维心肌细胞便于在单个细胞水平进行分析,再现了许多阿霉素诱导的电生理和传播异常。因此,我们开发了一种新型二维/三维混合类器官模型,该模型采用集成光学分析平台,为研究心脏毒性提供了一种可靠的高通量方法,提供了关于钙、收缩性和信号传播的有价值数据。