Targeting Adiponectin Receptor 1 Phosphorylation Against Ischemic Heart Failure

Author:

Zhu Di1,Zhang Zhen1,Zhao Jianli1,Liu Demin1,Gan Lu1ORCID,Lau Wayne Bond1,Xie Dina1,Meng Zhijun1,Yao Peng1,Tsukuda Jumpei1,Christopher Theodore A.1,Lopez Bernard L.1,Gao Erhe2,Koch Walter J.2,Wang Yajing1,Ma Xin-Liang1

Affiliation:

1. Department of Emergency Medicine, Thomas Jefferson University, Philadelphia, PA (D.Z., Z.Z., J.Z., D.L., L.G., W.B.L., D.X., Z.M., P.Y., J.T., T.A.C., B.L.L., Y.W., X.-L.M.).

2. Department of Cardiovascular Sciences, Center for Translational Medicine, Temple University, Philadelphia, PA (E.G., W.J.K.).

Abstract

Background: Despite significantly reduced acute myocardial infarction (MI) mortality in recent years, ischemic heart failure continues to escalate. Therapeutic interventions effectively reversing pathological remodeling are an urgent unmet medical need. We recently demonstrated that AdipoR1 (APN [adiponectin] receptor 1) phosphorylation by GRK2 (G-protein–coupled receptor kinase 2) contributes to maladaptive remodeling in the ischemic heart. The current study clarified the underlying mechanisms leading to AdipoR1 phosphorylative desensitization and investigated whether blocking AdipoR1 phosphorylation may restore its protective signaling, reversing post-MI remodeling. Methods: Specific sites and underlying molecular mechanisms responsible for AdipoR1 phosphorylative desensitization were investigated in vitro (neonatal and adult cardiomyocytes). The effects of AdipoR1 phosphorylation inhibition upon APN post-MI remodeling and heart failure progression were investigated in vivo. Results: Among 4 previously identified sites sensitive to GRK2 phosphorylation, alanine substitution of Ser 205 (AdipoR1 S205A ), but not other 3 sites, rescued GRK2-suppressed AdipoR1 functions, restoring APN-induced cell salvage kinase activation and reducing oxidative cell death. The molecular investigation followed by functional determination demonstrated that AdipoR1 phosphorylation promoted clathrin-dependent (not caveolae) endocytosis and lysosomal-mediated (not proteasome) degradation, reducing AdipoR1 protein level and suppressing AdipoR1-mediated cytoprotective action. GRK2-induced AdipoR1 endocytosis and degradation were blocked by AdipoR1 S205A overexpression. Moreover, AdipoR1 S205E (pseudophosphorylation) phenocopied GRK2 effects, promoted AdipoR1 endocytosis and degradation, and inhibited AdipoR1 biological function. Most importantly, AdipoR1 function was preserved during heart failure development in AdipoR1-KO (AdipoR1 knockout) mice reexpressing hAdipoR1 S205A . APN administration in the failing heart reversed post-MI remodeling and improved cardiac function. However, reexpressing hAdipoR1 WT in AdipoR1-KO mice failed to restore APN cardioprotection. Conclusions: Ser 205 is responsible for AdipoR1 phosphorylative desensitization in the failing heart. Blockade of AdipoR1 phosphorylation followed by pharmacological APN administration is a novel therapy effective in reversing post-MI remodeling and mitigating heart failure progression.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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