YAP Overcomes Mechanical Barriers to Induce Mitotic Rounding and Adult Cardiomyocyte Division

Y Yuka Morikawa (Cardiomyocyte Renewal Laboratory (Y.M., J.F.M.), The Texas Heart Institute at Baylor College of Medicine, Houston, TX.) J Jong H. Kim (Cardiomyocyte Renewal Laboratory, Texas Heart Institute, Houston (Y.M., J.H.K., R.G.L., L.L., S.L., J.F.M.).) R Rich Gang Li (Cardiomyocyte Renewal Laboratory, Texas Heart Institute, Houston, (S.L., Y.M., R.G.L., J.W., J.F.M.).) L Lin Liu S Shijie Liu V Vaibhav Deshmukh (Department of Integrative Physiology, Baylor College of Medicine, Houston, TX (V.D., F.M., J.D.S., J.F.M.).) M Matthew C. Hill (Cardiovascular Research Center, Massachusetts General Hospital, Boston (M.C.H.).) J James F. Martin

Abstract

BACKGROUND: Many specialized cells in adult organs acquire a state of cell cycle arrest and quiescence through unknown mechanisms. Our limited understanding of mammalian cell cycle arrest is derived primarily from cell culture models. Adult mammalian cardiomyocytes, a classic example of cell cycle arrested cells, exit the cell cycle postnatally and remain in an arrested state for the life of the organism. Cardiomyocytes can be induced to re-enter the cell cycle by YAP5SA, an active form of the Hippo signaling pathway effector YAP. METHODS: We performed clonal analyses to determine the cell cycle kinetics of YAP5SA cardiomyocytes. We also performed single-cell RNA sequencing, marker gene analysis, and functional studies to examine how YAP5SA cardiomyocytes progress through the cell cycle. RESULTS: We discovered that YAP5SA-expressing cardiomyocytes divided efficiently, with >20% of YAP5SA cardiomyocyte clones containing ≥2 cardiomyocytes. YAP5SA cardiomyocytes re-entered cell cycle at the G1/S transition and had an S phase lasting ≈48 hours. Sarcomere disassembly is required for cardiomyocyte progression from S to G2 phase and the induction of mitotic rounding. Although oscillatory Cdk expression was induced in YAP5SA cardiomyocytes, these cells inefficiently progressed through G2 phase. This is improved by inhibiting P21 function, implicating checkpoint activity as an additional barrier to YAP5SA-induced cardiomyocyte division. CONCLUSIONS: Our data reveal that YAP5SA overcomes the mechanically constrained myocardial microenvironment to induce mitotic rounding with cardiomyocyte division, thus providing new insights into the in vivo mechanisms that maintain cell cycle quiescence in adult mammals.

Article Details

Journal Circulation
Volume / Issue Vol. 151, Issue 1
Published January 07, 2025
Pages 76-93
ISSN 0009-7322
Publisher Lippincott Williams & Wilkins

Journal Info

Circulation

Lippincott Williams & Wilkins

ISSN: 0009-7322 Health Sciences

Authors (8)

Y

Yuka Morikawa

Cardiomyocyte Renewal Laboratory (Y.M., J.F.M.), The Texas Heart Institute at Baylor College of Medicine, Houston, TX.

J

Jong H. Kim

Cardiomyocyte Renewal Laboratory, Texas Heart Institute, Houston (Y.M., J.H.K., R.G.L., L.L., S.L., J.F.M.).

R

Rich Gang Li

Cardiomyocyte Renewal Laboratory, Texas Heart Institute, Houston, (S.L., Y.M., R.G.L., J.W., J.F.M.).

L

Lin Liu

S

Shijie Liu

V

Vaibhav Deshmukh

Department of Integrative Physiology, Baylor College of Medicine, Houston, TX (V.D., F.M., J.D.S., J.F.M.).

M

Matthew C. Hill

Cardiovascular Research Center, Massachusetts General Hospital, Boston (M.C.H.).

J

James F. Martin