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.).

Circulation Research
|December 25, 2018
PubMed

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.
Abstract

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