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      Repressive Histone Methylation Regulates Cardiac Myocyte Cell Cycle Exit

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          Abstract

          Mammalian cardiac myocytes (CMs) stop proliferating soon after birth and subsequent heart growth comes from hypertrophy, limiting the adult heart’s regenerative potential after injury. The molecular events that mediate CM cell cycle exit are poorly understood. To determine the epigenetic mechanisms limiting CM cycling in adult CMs (ACMs) and whether trimethylation of lysine 9 of histone H3 (H3K9me3), a histone modification associated with repressed chromatin, is required for the silencing of cell cycle genes, we developed a transgenic mouse model where H3K9me3 is specifically removed in CMs by overexpression of histone demethylase, KDM4D. Although H3K9me3 is found across the genome, its loss in CMs preferentially disrupts cell cycle gene silencing. KDM4D binds directly to cell cycle genes and reduces H3K9me3 levels at these promotors. Loss of H3K9me3 preferentially leads to increased cell cycle gene expression resulting in enhanced CM cycling. Heart mass was increased in KDM4D overexpressing mice by postnatal day 14 (P14) and continued to increase until 9-weeks of age. ACM number, but not size, was significantly increased in KDM4D expressing hearts, suggesting CM hyperplasia accounts for the increased heart mass. Inducing KDM4D after normal development specifically in ACMs resulted in increased cell cycle gene expression and cycling. We demonstrated that H3K9me3 is required for CM cell cycle exit and terminal differentiation in ACMs. Depletion of H3K9me3 in adult hearts prevents and reverses permanent cell cycle exit and allows hyperplastic growth in adult hearts in vivo.

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          Author and article information

          Journal
          0262322
          4968
          J Mol Cell Cardiol
          J. Mol. Cell. Cardiol.
          Journal of molecular and cellular cardiology
          0022-2828
          1095-8584
          1 June 2018
          22 May 2018
          August 2018
          01 August 2019
          : 121
          : 1-12
          Affiliations
          Division of Cardiology, Department of Medicine, Center for Cardiovascular Biology and Institute for Stem Cell and Regenerative Medicine, University of Washington, Seattle, WA
          Author notes
          Corresponding Author: W. Robb MacLellan, WRMacLellan@ 123456cardiology.washington.edu , University of Washington Medical Center, 1959 N.E. Pacific Street, Box 356422, Seattle, WA 98195-6422
          Article
          PMC6542357 PMC6542357 6542357 nihpa972266
          10.1016/j.yjmcc.2018.05.013
          6542357
          29800554
          f1beaaaa-a630-48b8-838f-96215e565854
          History
          Categories
          Article

          Cell cycle gene expression,Cardiac development,Epigenetics,Cardiac myocyte cell cycle

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