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Updated: Jun 10, 2026

Assessing Cardiomyocyte Subtypes Following Transcription Factor-mediated Reprogramming of Mouse Embryonic Fibroblasts
Published on: March 22, 2017
YAP dysregulation triggers hypertrophy by CCN2 secretion and TGFβ uptake in human pluripotent stem cell-derived
Insights
Hypertrophic Cardiomyopathy (HCM) involves hypercontractile heart cells. This study shows increased heart cell contractility activates YAP signaling, potentially driving HCM progression and fibrosis.
Area of Science:
- Cardiovascular Biology
- Cellular Mechanobiology
- Genetic Cardiology
Background:
- Hypertrophic Cardiomyopathy (HCM) is a prevalent inherited heart disease characterized by hypercontractility, hypertrophy, and fibrosis.
- Single-point mutations in MYH7 are linked to HCM, but the molecular mechanisms connecting altered contractility to cellular pathogenesis are unclear.
- The Hippo Pathway effector YAP is reactivated in pathological cardiac hypertrophy.
Purpose of the Study:
- To investigate if altered cardiomyocyte biomechanics and mechanical environment in HCM affect Hippo Pathway signaling via YAP.
- To determine the relationship between cardiomyocyte contractility and YAP activity in both healthy and HCM models.
- To elucidate the role of nuclear deformation in YAP activation in response to mechanical stress.
Main Methods:
- Utilized genetically edited human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) with MYH7 mutations associated with HCM.
- Employed micropatterned traction force microscopy to assess hypercontractility in MYH7 mutant hiPSC-CMs.
- Modulated cardiomyocyte contractility using inotropic drugs in both healthy and HCM hiPSC-CMs to study YAP activity.
Main Results:
- Confirmed a hypercontractile phenotype in MYH7-mutant hiPSC-CMs.
- Demonstrated a correlative relationship between cardiomyocyte contractility and YAP activity.
- Showed that YAP activation in HCM mutants and drug-treated cells is mediated by enhanced nuclear deformation.
- Linked YAP overactivation to increased CCN2 and TGFβ secretion, promoting fibroblast activation.
Conclusions:
- YAP overactivation, potentially driven by hypercontractility, plays an indirect role in initiating hypertrophic growth and fibrosis in HCM.
- Findings provide insights into HCM pathogenesis and suggest YAP as a potential therapeutic target.
- This study establishes a model for testing therapeutic strategies for HCM.
Abstract:
Hypertrophy Cardiomyopathy (HCM) is the most prevalent hereditary cardiovascular disease - affecting >1:500 individuals. Advanced forms of HCM clinically present with hypercontractility, hypertrophy and fibrosis. Several single-point mutations in b-myosin heavy chain (MYH7) have been associated with HCM and increased contractility at the organ level. Different MYH7 mutations have resulted in increased, decreased, or unchanged force production at the molecular level. Yet, how these molecular kinetics link to cell and tissue pathogenesis remains unclear. The Hippo Pathway, specifically its effector molecule YAP, has been demonstrated to be reactivated in pathological hypertrophic growth. We hypothesized that changes in force production (intrinsically or extrinsically) directly alter the homeostatic mechano-signaling of the Hippo pathway through changes in stresses on the nucleus. Using human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs), we asked whether homeostatic mechanical signaling through the canonical growth regulator, YAP, is altered 1) by changes in the biomechanics of HCM mutant cardiomyocytes and 2) by alterations in the mechanical environment. We use genetically edited hiPSC-CM with point mutations in MYH7 associated with HCM, and their matched controls, combined with micropatterned traction force microscopy substrates to confirm the hypercontractile phenotype in MYH7 mutants. We next modulate contractility in healthy and disease hiPSC-CMs by treatment with positive and negative inotropic drugs and demonstrate a correlative relationship between contractility and YAP activity. We further demonstrate the activation of YAP in both HCM mutants and healthy hiPSC-CMs treated with contractility modulators is through enhanced nuclear deformation. We conclude that the overactivation of YAP, possibly initiated and driven by hypercontractility, correlates with excessive CCN2 secretion (connective tissue growth factor), enhancing cardiac fibroblast/myofibroblast transition and production of known hypertrophic signaling molecule TGFβ. Our study suggests YAP being an indirect player in the initiation of hypertrophic growth and fibrosis in HCM. Our results provide new insights into HCM progression and bring forth a testbed for therapeutic options in treating HCM.
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