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Hippo signaling impedes adult heart regeneration

  • Todd Heallen
  • , Yuka Morikawa
  • , John Leach
  • , Ge Tao
  • , James T. Willerson
  • , Randy L. Johnson
  • , James F. Martin

Research output: Contribution to journalArticlepeer-review

Abstract

Heart failure due to cardiomyocyte loss after ischemic heart disease is the leading cause of death in the United States in large part because heart muscle regenerates poorly. The endogenous mechanisms preventing mammalian cardiomyocyte regeneration are poorly understood. Hippo signaling, an ancient organ size control pathway, is a kinase cascade that inhibits developing cardiomyocyte proliferation but it has not been studied postnatally or in fully mature adult cardiomyocytes. Here, we investigated Hippo signaling in adult cardiomyocyte renewal and regeneration. We found that unstressed Hippo-deficient adult mouse cardiomyocytes re-enter the cell cycle and undergo cytokinesis. Moreover, Hippo deficiency enhances cardiomyocyte regeneration with functional recovery after adult myocardial infarction as well as after postnatal day eight (P8) cardiac apex resection and P8 myocardial infarction. In damaged hearts, Hippo mutant cardiomyocytes also have elevated proliferation. Our findings reveal that Hippo signaling is an endogenous repressor of adult cardiomyocyte renewal and regeneration. Targeting the Hippo pathway in human disease might be beneficial for the treatment of heart disease.

Original languageEnglish (US)
Pages (from-to)4683-4690
Number of pages8
JournalDevelopment (Cambridge)
Volume140
Issue number23
DOIs
StatePublished - Dec 1 2013

Keywords

  • Cell cycle
  • Mouse
  • Proliferation
  • Regeneration

ASJC Scopus subject areas

  • Molecular Biology
  • Developmental Biology

MD Anderson CCSG core facilities

  • Genetically Engineered Mouse Facility
  • Research Animal Support Facility

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