Vishnu Goutham Kota, Shachin Velur Ganesan, Yin Love Ho, Samriddhi Senthilkumar, Ghazal Esfahani Maragheh, Hwa Liang Leo, Hanry Yu
Cardiovascular diseases remain leading causes of mortality, yet progress in therapy development is limited by inadequate human-relevant models. Here, we develop a simplified, multicellular human iPSC-derived cardiac organoid system that enables functional and translational disease modeling. Using a streamlined two-component differentiation strategy, we generate robust beating cardiomyocytes and assemble three- and four-cell-type organoids incorporating endothelial cells, fibroblasts, and macrophages. Integration of a genetically encoded calcium reporter allows real-time, non-invasive functional assessment. Multicellular organoids exhibit enhanced maturation and viability, with macrophages contributing to improved functional properties. Optimized oxygen-permeable culture further enhances organoid performance. This platform recapitulates key features of overnutrition, heart failure, and myocardial infarction, including altered contractility, calcium dynamics, and biomarker expression. Together, this cost-effective and scalable system provides a physiologically relevant platform for studying cardiac disease mechanisms, drug responses, and cardiotoxicity.