Fibroblast GATA-4 and GATA-6 promote myocardial adaptation to pressure overload by enhancing cardiac angiogenesis

Basic Res Cardiol. 2021 Apr 19;116(1):26. doi: 10.1007/s00395-021-00862-y.

Abstract

Heart failure due to high blood pressure or ischemic injury remains a major problem for millions of patients worldwide. Despite enormous advances in deciphering the molecular mechanisms underlying heart failure progression, the cell-type specific adaptations and especially intercellular signaling remain poorly understood. Cardiac fibroblasts express high levels of cardiogenic transcription factors such as GATA-4 and GATA-6, but their role in fibroblasts during stress is not known. Here, we show that fibroblast GATA-4 and GATA-6 promote adaptive remodeling in pressure overload induced cardiac hypertrophy. Using a mouse model with specific single or double deletion of Gata4 and Gata6 in stress activated fibroblasts, we found a reduced myocardial capillarization in mice with Gata4/6 double deletion following pressure overload, while single deletion of Gata4 or Gata6 had no effect. Importantly, we confirmed the reduced angiogenic response using an in vitro co-culture system with Gata4/6 deleted cardiac fibroblasts and endothelial cells. A comprehensive RNA-sequencing analysis revealed an upregulation of anti-angiogenic genes upon Gata4/6 deletion in fibroblasts, and siRNA mediated downregulation of these genes restored endothelial cell growth. In conclusion, we identified a novel role for the cardiogenic transcription factors GATA-4 and GATA-6 in heart fibroblasts, where both proteins act in concert to promote myocardial capillarization and heart function by directing intercellular crosstalk.

Keywords: Angiogenesis; Cardiac remodeling; Fibroblast; Intercellular crosstalk.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Angiogenic Proteins / genetics
  • Angiogenic Proteins / metabolism
  • Animals
  • Aorta / physiopathology
  • Aorta / surgery
  • Arterial Pressure
  • Cardiomegaly / etiology
  • Cardiomegaly / genetics
  • Cardiomegaly / metabolism*
  • Cardiomegaly / physiopathology
  • Cell Communication
  • Cells, Cultured
  • Constriction
  • Disease Models, Animal
  • Epithelial Cells / metabolism*
  • Fibroblasts / metabolism*
  • Fibroblasts / pathology
  • GATA4 Transcription Factor / genetics
  • GATA4 Transcription Factor / metabolism*
  • GATA6 Transcription Factor / genetics
  • GATA6 Transcription Factor / metabolism*
  • Heart Failure / etiology
  • Heart Failure / genetics
  • Heart Failure / metabolism*
  • Heart Failure / physiopathology
  • Humans
  • Mice
  • Mice, Knockout
  • Microvascular Density
  • Myocardium / metabolism*
  • Myocardium / pathology
  • Neovascularization, Physiologic*
  • Signal Transduction
  • Ventricular Remodeling*

Substances

  • Angiogenic Proteins
  • GATA4 Transcription Factor
  • GATA6 Transcription Factor
  • Gata4 protein, mouse
  • Gata6 protein, mouse