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Updated: Aug 6, 2026

Model of Ischemic Heart Disease and Video-Based Comparison of Cardiomyocyte Contraction Using hiPSC-Derived Cardiomyocytes
Published on: May 5, 2020
Human iPSC-derived engineered heart tissue model of diastolic dysfunction in heart failure with preserved ejection
Hidenori Tani1, Kotaro Haga2, Taijun Moriwaki2
1Fujita Medical Innovation Center Tokyo, Fujita Health University, Tokyo, Japan; Department of Cardiology, Keio University School of Medicine, Tokyo, Japan.
None:
The prognosis for heart failure (HF) with preserved ejection fraction (HFpEF) remains poor, with treatment evidence and studies at the human cellular level limited. Here, we aimed to model HFpEF-associated diastolic dysfunction in vitro by generating human engineered heart tissues (hEHTs) using human induced pluripotent stem cells and culturing the tissues under high fatty acid and L-NG-nitroarginine methyl ester supplementation. Medium-loaded hEHTs showed a marked reduction in relaxation function while preserving contraction function; secreted high levels of the HF marker, BNP; exhibited abnormal calcium transients; and showed structural and functional features of HF. After treatment with several existing HF drugs, a sodium-glucose cotransporter 2 inhibitor (SGLT2i) improved the decline in relaxation function and contributed to an improvement in the diastolic dysfunction phenotype. This mechanism exhibited an anti-inflammatory effect mediated by the recovery of the eNOS-NO-cGMP-PKG signaling pathway. These findings serve as a basis for elucidating the pathogenesis and mechanisms of improvement in HFpEF.
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