Prolonged β-adrenergic stimulation disperses ryanodine receptor clusters in cardiomyocytes and has implications for heart failure

Author:

Shen Xin12ORCID,van den Brink Jonas3,Bergan-Dahl Anna12,Kolstad Terje R12ORCID,Norden Einar S12,Hou Yufeng12,Laasmaa Martin12ORCID,Aguilar-Sanchez Yuriana45,Quick Ann P45,Espe Emil KS12,Sjaastad Ivar12,Wehrens Xander HT45,Edwards Andrew G36,Soeller Christian7ORCID,Louch William E12ORCID

Affiliation:

1. Institute for Experimental Medical Research, Oslo University Hospital and University of Oslo

2. K.G. Jebsen Centre for Cardiac Research, University of Oslo

3. Simula Research Laboratory

4. Section of Cardiology, Departments of Medicine and Pediatrics, Baylor College of Medicine

5. Department of Molecular Physiology & Biophysics, Cardiovascular Research Institute, Baylor College of Medicine

6. Department of Pharmacology, UC Davis

7. Department of Physiology, University of Bern

Abstract

Ryanodine receptors (RyRs) exhibit dynamic arrangements in cardiomyocytes, and we previously showed that ‘dispersion’ of RyR clusters disrupts Ca2+ homeostasis during heart failure (HF) (Kolstad et al., eLife, 2018). Here, we investigated whether prolonged β-adrenergic stimulation, a hallmark of HF, promotes RyR cluster dispersion and examined the underlying mechanisms. We observed that treatment of healthy rat cardiomyocytes with isoproterenol for 1 hr triggered progressive fragmentation of RyR clusters. Pharmacological inhibition of Ca2+/calmodulin-dependent protein kinase II (CaMKII) reversed these effects, while cluster dispersion was reproduced by specific activation of CaMKII, and in mice with constitutively active Ser2814-RyR. A similar role of protein kinase A (PKA) in promoting RyR cluster fragmentation was established by employing PKA activation or inhibition. Progressive cluster dispersion was linked to declining Ca2+ spark fidelity and magnitude, and slowed release kinetics from Ca2+ propagation between more numerous RyR clusters. In healthy cells, this served to dampen the stimulatory actions of β-adrenergic stimulation over the longer term and protect against pro-arrhythmic Ca2+ waves. However, during HF, RyR dispersion was linked to impaired Ca2+ release. Thus, RyR localization and function are intimately linked via channel phosphorylation by both CaMKII and PKA, which, while finely tuned in healthy cardiomyocytes, underlies impaired cardiac function during pathology.

Funder

Norwegian Research Council

European Research Council

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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