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Updated: Jan 31, 2026

A Rat Model of Pressure Overload Induced Moderate Remodeling and Systolic Dysfunction as Opposed to Overt Systolic Heart Failure
Published on: April 30, 2020
Hippo Deficiency Leads to Cardiac Dysfunction Accompanied by Cardiomyocyte Dedifferentiation During Pressure Overload
Shohei Ikeda1,2, Wataru Mizushima1, Sebastiano Sciarretta1,3,4
1From the Department of Cell Biology and Molecular Medicine, Cardiovascular Research Institute, Rutgers New Jersey Medical School, Newark (S.I., W.M., S. Sciarretta, M.A., P.Z., R.M., N.F., S.-i.O., M.N., D.P.D.R., L.-H.X., J.S.).
Insights
Hippo pathway inactivation, intended to boost heart repair, unexpectedly worsened heart failure under pressure overload. This was due to YAP-TEAD1-OSM feedback causing cardiomyocyte dedifferentiation, not regeneration.
Area of Science:
- Cardiovascular biology
- Molecular mechanisms of organ size control
- Cardiac regeneration research
Background:
- The Hippo pathway regulates organ size by controlling cell proliferation and apoptosis.
- Hippo pathway inactivation and Yes-associated protein (YAP) activation are explored for promoting heart regeneration post-myocardial infarction.
- Long-term cardiac effects of Hippo deficiency under stress are largely unknown.
Purpose of the Study:
- To investigate the long-term impact of Hippo pathway deficiency on cardiac function during pressure overload.
- To elucidate the molecular mechanisms underlying cardiac response to pressure overload in the absence of Hippo signaling.
Main Methods:
- Utilized cardiac-specific homozygous WW45 knockout (WW45cKO) mice to suppress Hippo pathway kinases (Mst1, Lats2).
- Subjected WW45cKO mice to 12 weeks of transverse aortic constriction to induce pressure overload.
- Analyzed YAP localization, cardiomyocyte apoptosis, cell cycle status, sarcomere structure, and gene expression related to YAP, TEAD1, and OSM.
Main Results:
- WW45cKO mice showed exacerbated cardiac dysfunction and failure under pressure overload, despite reduced apoptosis and increased cardiomyocyte cell cycle reentry.
- Cardiomyocytes in WW45cKO mice exhibited sarcomere disarray and dedifferentiation markers (TEAD1 target genes).
- YAP-TEAD1 pathway inhibition ameliorated cardiac dysfunction and dedifferentiation; YAP-TEAD1 upregulated Oncostatin M (OSM), forming a positive feedback loop with YAP/TEAD1.
Conclusions:
- While YAP activation aids short-term regeneration, long-term Hippo deficiency with pressure overload leads to heart failure.
- The YAP-TEAD1-OSM positive feedback loop drives cardiomyocyte dedifferentiation, contributing to long-term cardiac dysfunction.
- Targeting the YAP-TEAD1-OSM pathway may offer therapeutic strategies for managing heart failure under chronic stress.
Rationale:
The Hippo pathway plays an important role in determining organ size through regulation of cell proliferation and apoptosis. Hippo inactivation and consequent activation of YAP (Yes-associated protein), a transcription cofactor, have been proposed as a strategy to promote myocardial regeneration after myocardial infarction. However, the long-term effects of Hippo deficiency on cardiac function under stress remain unknown.
Objective:
We investigated the long-term effect of Hippo deficiency on cardiac function in the presence of pressure overload (PO).
Methods And Results:
We used mice with cardiac-specific homozygous knockout of WW45 (WW45cKO), in which activation of Mst1 (Mammalian sterile 20-like 1) and Lats2 (large tumor suppressor kinase 2), the upstream kinases of the Hippo pathway, is effectively suppressed because of the absence of the scaffolding protein. We used male mice at 3 to 4 month of age in all animal experiments. We subjected WW45cKO mice to transverse aortic constriction for up to 12 weeks. WW45cKO mice exhibited higher levels of nuclear YAP in cardiomyocytes during PO. Unexpectedly, the progression of cardiac dysfunction induced by PO was exacerbated in WW45cKO mice, despite decreased apoptosis and activated cardiomyocyte cell cycle reentry. WW45cKO mice exhibited cardiomyocyte sarcomere disarray and upregulation of TEAD1 (transcriptional enhancer factor) target genes involved in cardiomyocyte dedifferentiation during PO. Genetic and pharmacological inactivation of the YAP-TEAD1 pathway reduced the PO-induced cardiac dysfunction in WW45cKO mice and attenuated cardiomyocyte dedifferentiation. Furthermore, the YAP-TEAD1 pathway upregulated OSM (oncostatin M) and OSM receptors, which played an essential role in mediating cardiomyocyte dedifferentiation. OSM also upregulated YAP and TEAD1 and promoted cardiomyocyte dedifferentiation, indicating the existence of a positive feedback mechanism consisting of YAP, TEAD1, and OSM.
Conclusions:
Although activation of YAP promotes cardiomyocyte regeneration after cardiac injury, it induces cardiomyocyte dedifferentiation and heart failure in the long-term in the presence of PO through activation of the YAP-TEAD1-OSM positive feedback mechanism.
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