Impaired Heart Contractility in Apelin Gene–Deficient Mice Associated With Aging and Pressure Overload

Author:

Kuba Keiji1,Zhang Liyong1,Imai Yumiko1,Arab Sara1,Chen Manyin1,Maekawa Yuichiro1,Leschnik Michael1,Leibbrandt Andreas1,Markovic Mato1,Schwaighofer Julia1,Beetz Nadine1,Musialek Renata1,Neely G. Greg1,Komnenovic Vukoslav1,Kolm Ursula1,Metzler Bernhard1,Ricci Romeo1,Hara Hiromitsu1,Meixner Arabella1,Nghiem Mai1,Chen Xin1,Dawood Fayez1,Wong Kit Man1,Sarao Renu1,Cukerman Eva1,Kimura Akinori1,Hein Lutz1,Thalhammer Johann1,Liu Peter P.1,Penninger Josef M.1

Affiliation:

1. From the Institute of Molecular Biotechnology of the Austrian Academy of Sciences (K.K., Y.I., A.L., G.G.N., V.K., H.H., A.M., R.S., J.M.P.), Vienna; Medical Top Track Program (K.K.) and Department of Molecular Pathogenesis (A.K.), Medical Research Institute, Tokyo Medical and Dental University, Japan; Heart and Stroke/Richard Lewar Centre of Excellence and Toronto General Research Institute (L.Z., S.A., M.C., Y.M., M.N., X.C., F.D., K.M.W., R.S., E.C., P.P.L.), University Health Network, Ontario,...

Abstract

Apelin constitutes a novel endogenous peptide system suggested to be involved in a broad range of physiological functions, including cardiovascular function, heart development, control of fluid homeostasis, and obesity. Apelin is also a catalytic substrate for angiotensin-converting enzyme 2, the key severe acute respiratory syndrome receptor. The in vivo physiological role of Apelin is still elusive. Here we report the generation of Apelin gene–targeted mice. Apelin mutant mice are viable and fertile, appear healthy, and exhibit normal body weight, water and food intake, heart rates, and heart morphology. Intriguingly, aged Apelin knockout mice developed progressive impairment of cardiac contractility associated with systolic dysfunction in the absence of histological abnormalities. We also report that pressure overload induces upregulation of Apelin expression in the heart. Importantly, in pressure overload–induced heart failure, loss of Apelin did not significantly affect the hypertrophy response, but Apelin mutant mice developed progressive heart failure. Global gene expression arrays and hierarchical clustering of differentially expressed genes in hearts of banded Apelin −/y and Apelin +/y mice showed concerted upregulation of genes involved in extracellular matrix remodeling and muscle contraction. These genetic data show that the endogenous peptide Apelin is crucial to maintain cardiac contractility in pressure overload and aging.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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