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A Proximal Culture Method to Study Paracrine Signaling Between Cells
Published on: August 28, 2018
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.).
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.
Background:
Heart failure, which is a major global health problem, is often preceded by pathological cardiac hypertrophy. The expansion of the cardiac vasculature, to maintain adequate supply of oxygen and nutrients, is a key determinant of whether the heart grows in a physiological compensated manner or a pathological decompensated manner. Bidirectional endothelial cell (EC)-cardiomyocyte (CMC) cross talk via cardiokine and angiocrine signaling plays an essential role in the regulation of cardiac growth and homeostasis. Currently, the mechanisms involved in the EC-CMC interaction are not fully understood, and very little is known about the EC-derived signals involved. Understanding how an excess of angiogenesis induces cardiac hypertrophy and how ECs regulate CMC homeostasis could provide novel therapeutic targets for heart failure.
Methods:
Genetic mouse models were used to delete vascular endothelial growth factor (VEGF) receptors, adeno-associated viral vectors to transduce the myocardium, and pharmacological inhibitors to block VEGF and ErbB signaling in vivo. Cell culture experiments were used for mechanistic studies, and quantitative polymerase chain reaction, microarrays, ELISA, and immunohistochemistry were used to analyze the cardiac phenotypes.
Results:
Both EC deletion of VEGF receptor (VEGFR)-1 and adeno-associated viral vector-mediated delivery of the VEGFR1-specific ligands VEGF-B or placental growth factor into the myocardium increased the coronary vasculature and induced CMC hypertrophy in adult mice. The resulting cardiac hypertrophy was physiological, as indicated by preserved cardiac function and exercise capacity and lack of pathological gene activation. These changes were mediated by increased VEGF signaling via endothelial VEGFR2, because the effects of VEGF-B and placental growth factor on both angiogenesis and CMC growth were fully inhibited by treatment with antibodies blocking VEGFR2 or by endothelial deletion of VEGFR2. To identify activated pathways downstream of VEGFR2, whole-genome transcriptomics and secretome analyses were performed, and the Notch and ErbB pathways were shown to be involved in transducing signals for EC-CMC cross talk in response to angiogenesis. Pharmacological or genetic blocking of ErbB signaling also inhibited part of the VEGF-B-induced effects in the heart.
Conclusions:
This study reveals that cross talk between the EC VEGFR2 and CMC ErbB signaling pathways coordinates CMC hypertrophy with angiogenesis, contributing to physiological cardiac growth.
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