Fibroblast growth factor-23 promotes rhythm alterations and contractile dysfunction in adult ventricular cardiomyocytes

Author:

Navarro-García José Alberto1,Delgado Carmen2,Fernández-Velasco María3,Val-Blasco Almudena3,Rodríguez-Sánchez Elena1,Aceves-Ripoll Jennifer1,Gómez-Hurtado Nieves2,Bada-Bosch Teresa4,Mérida-Herrero Evangelina4,Hernández Eduardo4,Praga Manuel4,Salguero Rafael56,Solís Jorge5,Arribas Fernando57,Delgado Juan F567,Bueno Héctor578,Kuro-O Makoto9,Ruilope Luis Miguel161011,Ruiz-Hurtado Gema1

Affiliation:

1. Cardiorenal Translational Laboratory, Institute of Research i+12, Hospital Universitario 12 de Octubre, Madrid, Spain

2. Biomedical Research Institute Alberto Sols (CSIC-UAM)/CIBER-CV, Madrid, Spain

3. IdiPAZ Institute for Health Research/CIBER-CV, Madrid, Spain

4. Service of Nephrology, Hospital Universitario 12 de Octubre, Madrid, Spain

5. Service of Cardiology and Institute of Research i+12, Hospital Universitario 12 de Octubre, Madrid, Spain

6. CIBER-CV, Hospital Universitario 12 de Octubre, Madrid, Spain

7. Facultad de Medicina, Universidad Complutense de Madrid, Spain

8. Centro Nacional de Investigaciones Cardiovasculares, Madrid, Spain

9. Division of Anti-ageing Medicine, Centre for Molecular Medicine, Jichi Medical University, Shimotsuke, Tochigi, Japan

10. Department of Preventive Medicine and Public Health, School of Medicine, Universidad Autónoma de Madrid, Madrid, Spain

11. School of Doctoral Studies and Research, European University of Madrid, Madrid, Spain

Abstract

Abstract Background Cardiac dysfunction and arrhythmia are common and onerous cardiovascular events in end-stage renal disease (ESRD) patients, especially those on dialysis. Fibroblast growth factor (FGF)-23 is a phosphate-regulating hormone whose levels dramatically increase as renal function declines. Beyond its role in phosphorus homeostasis, FGF-23 may elicit a direct effect on the heart. Whether FGF-23 modulates ventricular cardiac rhythm is unknown, prompting us to study its role on excitation–contraction (EC) coupling. Methods We examined FGF-23 in vitro actions on EC coupling in adult rat native ventricular cardiomyocytes using patch clamp and confocal microscopy and in vivo actions on cardiac rhythm using electrocardiogram. Results Compared with vehicle treatment, FGF-23 induced a significant decrease in rat cardiomyocyte contraction, L-type Ca2+ current, systolic Ca2+ transients and sarcoplasmic reticulum (SR) load and SR Ca2+-adenosine triphosphatase 2a pump activity. FGF-23 induced pro-arrhythmogenic activity in vitro and in vivo as automatic cardiomyocyte extracontractions and premature ventricular contractions. Diastolic spontaneous Ca2+ leak (sparks and waves) was significantly increased by FGF-23 via the calmodulin kinase type II (CaMKII)-dependent pathway related to hyperphosphorylation of ryanodine receptors at the CaMKII site Ser2814. Both contraction dysfunction and spontaneous pro-arrhythmic Ca2+ events induced by FGF-23 were blocked by soluble Klotho (sKlotho). Conclusions Our results show that FGF-23 reduces contractility and enhances arrhythmogenicity through intracellular Ca2+ mishandling. Blocking its actions on the heart by improving sKlotho bioavailability may enhance cardiac function and reduce arrhythmic events frequently observed in ESRD.

Funder

Spanish Institute of Health Carlos III

Fundación SENEFRO

Sociedad Española de Nefrología

Sociedad Española de Cardiología

Fundación Íñigo Álvarez de Toledo

Fondo Europeo de Desarrollo Regional

Ministerio de Economía, Industria y Competitividad

Comunidad de Madrid

Publisher

Oxford University Press (OUP)

Subject

Transplantation,Nephrology

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