Endothelial Cells Regulate Physiological Cardiomyocyte Growth via VEGFR2-Mediated Paracrine Signaling

Riikka Kivelä1, Karthik Amudhala Hemanthakumar1, Katri Vaparanta2,3

  • 1Wihuri Research Institute, Helsinki, Finland and Translational Cancer Biology Program, Research Programs Unit, Faculty of Medicine, University of Helsinki, Finland (R.K., K.A.H., M.R., K.A.).

Circulation
|March 30, 2019
PubMed

Insights

Endothelial cells and cardiomyocytes communicate via signaling pathways to coordinate physiological cardiac growth and hypertrophy. This cross-talk is crucial for maintaining heart function during increased vascularization.

Area of Science:

  • Cardiovascular Biology
  • Cell Signaling
  • Angiogenesis Research

Background:

  • Heart failure is a major global health issue often preceded by pathological cardiac hypertrophy.
  • Cardiac vascular expansion is critical for determining physiological vs. pathological heart growth.
  • Endothelial cell (EC)-cardiomyocyte (CMC) cross-talk regulates cardiac growth, but mechanisms remain unclear.

Purpose of the Study:

  • To elucidate the mechanisms of EC-CMC interaction in cardiac growth.
  • To identify EC-derived signals regulating CMC homeostasis.
  • To understand how angiogenesis influences cardiac hypertrophy and identify therapeutic targets for heart failure.

Main Methods:

  • Utilized genetic mouse models to delete VEGF receptors.
  • Employed adeno-associated viral vectors for myocardial transduction.
  • Conducted cell culture experiments and molecular analyses (qPCR, microarrays, ELISA, IHC).

Main Results:

  • EC deletion of VEGFR1 and VEGFR1-ligand delivery increased coronary vasculature and induced physiological CMC hypertrophy.
  • VEGF signaling via endothelial VEGFR2 mediated these effects, blocked by VEGFR2 inhibition.
  • Notch and ErbB pathways were identified as key mediators of EC-CMC cross-talk.

Conclusions:

  • EC VEGFR2 and CMC ErbB signaling pathways coordinate CMC hypertrophy with angiogenesis.
  • This cross-talk contributes to physiological cardiac growth.
  • The findings offer insights into novel therapeutic strategies for heart failure.
Abstract

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