Genome-wide association mapping and targeted loss of function studies identify <i>Shroom3</i> as a driver of hyperpolyploidy and ventricular dilation

A Alexandra L. Purdy (Department of Cell Biology, Neurobiology, and Anatomy, Medical College of Wisconsin) A Amirala Bakhshian Nik (Department of Physiology, Medical College of Wisconsin) A Anooj A. Arkatkar (Department of Cell Biology, Neurobiology, and Anatomy, Medical College of Wisconsin) P Prottoy Hasan (Department of Cell Biology, Neurobiology, and Anatomy, Medical College of Wisconsin) M Michael A. Flinn (Department of Physiology, Medical College of Wisconsin) P Priyanka Choudhury (Department of Cell Biology, Neurobiology, and Anatomy, Medical College of Wisconsin) C Cheyret Wood (Center for Innovative Design and Analysis, Colorado School of Public Health, University of Colorado Anschutz Medical Campus) A Akiko Takizawa (Department of Physiology, Medical College of Wisconsin) L Lynn Malloy (Department of Physiology, Medical College of Wisconsin) M Monika Tutaj (Department of Physiology, Medical College of Wisconsin) T Thomas A. Drysdale (Children’s Health Research Institute, Victoria Research Labs) D Darren Bridgewater (Department of Pathology and Molecular Medicine, Faculty of Health Sciences, McMaster University) B Brian A. Link (Department of Cell Biology, Neurobiology, and Anatomy, Medical College of Wisconsin) T Timothy F. Plageman (College of Optometry, The Ohio State University) A Anne E. Kwitek M Melinda R. Dwinell L Laura M. Saba (Department of Pharmaceutical Sciences, Skaggs School of Pharmacy and Pharmaceutical Sciences, University of Colorado Anschutz Medical Campus) C Caitlin C. O’Meara (Department of Physiology, Medical College of Wisconsin) M Michaela Patterson (Department of Cell Biology, Neurobiology, and Anatomy, Medical College of Wisconsin)

Abstract

Various states of cardiomyocyte (CM) polyploidy have been associated with cardiac injury responses, including regeneration and heart failure. However, our understanding of the comprehensive mechanisms governing CM ploidy and its relationship with heart physiology is limited. To address this issue and uncover genetic regulators, we surveyed CM ploidy across a new genetic resource known as the Hybrid Rat Diversity Panel (HRDP) and found significant variation in ploidy phenotypes across the panel. Using select rat strains with divergent displays of CM ploidy, we found that CM hyperpolyploidization (≥8 N) positively correlates with various physiological parameters, namely left ventricular dilation and reduced ejection fraction. Genome-wide association mapping identified several loci significantly associated with frequency of hyperpolyploid CMs. Investigation of genes harboring damaging protein coding variants within these loci identified enrichment of cytoarchitectural genes, of which the ACTIN-binding protein, Shroom3 , was found to be strongly and specifically expressed in CMs and harbors 7 damaging protein coding variants. CM-specific deletion of Shroom3 resulted in increased hyperpolyploidization and left ventricular dilation with reduced ejection fraction. Furthermore, functional characterization of single-nucleotide variants resulting in amino acid changes within SHROOM3 confirmed two protein coding variants that disrupted SHROOM3–ACTIN interaction and led to altered expression of genes involved in DNA replication. This study elucidates the genetic determinants of CM ploidy phenotypes and solidifies a correlative relationship between CM ploidy and left ventricular function. Importantly, CM intrinsic expression of at least one gene mapped in this study, Shroom3 , is confirmed to regulate CM hyperpolyploidization and cardiac function.

Article Details

Volume / Issue Vol. 123, Issue 22
Published June 02, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (19)

A

Alexandra L. Purdy

Department of Cell Biology, Neurobiology, and Anatomy, Medical College of Wisconsin

A

Amirala Bakhshian Nik

Department of Physiology, Medical College of Wisconsin

A

Anooj A. Arkatkar

Department of Cell Biology, Neurobiology, and Anatomy, Medical College of Wisconsin

P

Prottoy Hasan

Department of Cell Biology, Neurobiology, and Anatomy, Medical College of Wisconsin

M

Michael A. Flinn

Department of Physiology, Medical College of Wisconsin

P

Priyanka Choudhury

Department of Cell Biology, Neurobiology, and Anatomy, Medical College of Wisconsin

C

Cheyret Wood

Center for Innovative Design and Analysis, Colorado School of Public Health, University of Colorado Anschutz Medical Campus

A

Akiko Takizawa

Department of Physiology, Medical College of Wisconsin

L

Lynn Malloy

Department of Physiology, Medical College of Wisconsin

M

Monika Tutaj

Department of Physiology, Medical College of Wisconsin

T

Thomas A. Drysdale

Children’s Health Research Institute, Victoria Research Labs

D

Darren Bridgewater

Department of Pathology and Molecular Medicine, Faculty of Health Sciences, McMaster University

B

Brian A. Link

Department of Cell Biology, Neurobiology, and Anatomy, Medical College of Wisconsin

T

Timothy F. Plageman

College of Optometry, The Ohio State University

A

Anne E. Kwitek

M

Melinda R. Dwinell

L

Laura M. Saba

Department of Pharmaceutical Sciences, Skaggs School of Pharmacy and Pharmaceutical Sciences, University of Colorado Anschutz Medical Campus

C

Caitlin C. O’Meara

Department of Physiology, Medical College of Wisconsin

M

Michaela Patterson

Department of Cell Biology, Neurobiology, and Anatomy, Medical College of Wisconsin