TRPV4 Channels Promote Pathological, but Not Physiological, Cardiac Remodeling through the Activation of Calcineurin/NFAT and TRPC6

Author:

Yáñez-Bisbe Laia1,Moya Mar1,Rodríguez-Sinovas Antonio12ORCID,Ruiz-Meana Marisol12,Inserte Javier12ORCID,Tajes Marta3,Batlle Montserrat4ORCID,Guasch Eduard45ORCID,Mas-Stachurska Aleksandra46,Miró Elisabet1,Rivas Nuria127,Ferreira González Ignacio12789,Garcia-Elias Anna10,Benito Begoña1278

Affiliation:

1. Cardiovascular Diseases Research Group, Vall d’Hebron Institut de Recerca (VHIR), Hospital Universitari Vall d’Hebron, 08035 Barcelona, Spain

2. Centro de Investigación Biomédica en Red de Enfermedades Cardiovasculares (CIBERCV), Instituto de Salud Carlos III, 28029 Madrid, Spain

3. Bio-Heart Cardiovascular Diseases Research Group, Bellvitge Biomedical Research Institute (IDIBELL), L’Hospitalet de Llobregat, 08908 Barcelona, Spain

4. Institute for Biomedical Research August Pi i Sunyer (IDIBAPS), 08036 Barcelona, Spain

5. Cardiology Department, Hospital Clínic, 08036 Barcelona, Spain

6. Cardiology Department, Hospital del Mar, 08003 Barcelona, Spain

7. Cardiology Department, Hospital Universitari Vall d’Hebron, 08035 Barcelona, Spain

8. Department of Medicine, Universitat Autònoma de Barcelona, 08193 Barcelona, Spain

9. Centro de Investigación Biomédica en Red en Epidemiología y Salud Pública (CIBERESP), Instituto de Salud Carlos III, 28029 Madrid, Spain

10. Department of Clinical Research, ASCIRES-CETIR Biomedic Group, 08029 Barcelona, Spain

Abstract

TRPV4 channels, which respond to mechanical activation by permeating Ca2+ into the cell, may play a pivotal role in cardiac remodeling during cardiac overload. Our study aimed to investigate TRPV4 involvement in pathological and physiological remodeling through Ca2+-dependent signaling. TRPV4 expression was assessed in heart failure (HF) models, induced by isoproterenol infusion or transverse aortic constriction, and in exercise-induced adaptive remodeling models. The impact of genetic TRPV4 inhibition on HF was studied by echocardiography, histology, gene and protein analysis, arrhythmia inducibility, Ca2+ dynamics, calcineurin (CN) activity, and NFAT nuclear translocation. TRPV4 expression exclusively increased in HF models, strongly correlating with fibrosis. Isoproterenol-administered transgenic TRPV4−/− mice did not exhibit HF features. Cardiac fibroblasts (CFb) from TRPV4+/+ animals, compared to TRPV4−/−, displayed significant TRPV4 overexpression, elevated Ca2+ influx, and enhanced CN/NFATc3 pathway activation. TRPC6 expression paralleled that of TRPV4 in all models, with no increase in TRPV4−/− mice. In cultured CFb, the activation of TRPV4 by GSK1016790A increased TRPC6 expression, which led to enhanced CN/NFATc3 activation through synergistic action of both channels. In conclusion, TRPV4 channels contribute to pathological remodeling by promoting fibrosis and inducing TRPC6 upregulation through the activation of Ca2+-dependent CN/NFATc3 signaling. These results pose TRPV4 as a primary mediator of the pathological response.

Funder

Instituto de Salud Carlos III—Fondo de Investigación Sanitaria

Sociedad Española de Cardiología

Societat Catalana de Cardiologia

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

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