Microfibrillar-Associated Protein 4 Regulates Stress-Induced Cardiac Remodeling

Author:

Dorn Lisa E.1ORCID,Lawrence William1ORCID,Petrosino Jennifer M.1,Xu Xianyao2,Hund Thomas J.2ORCID,Whitson Bryan A.34ORCID,Stratton Matthew S.1,Janssen Paul M. L.1,Mohler Peter J.13ORCID,Schlosser Anders5,Sorensen Grith L.5ORCID,Accornero Federica1ORCID

Affiliation:

1. Physiology and Cell Biology (L.E.D., W.L., J.M.P., M.S.S., P.M.L.J., P.J.M., F.A.), The Ohio State University Wexner Medical Center, Columbus.

2. Biomedical Engineering, The Ohio State University, Columbus (X.X., T.J.H.).

3. Bob and Corrine Frick Center for Heart Failure and Arrhythmia (B.A.W., P.J.M.), The Ohio State University Wexner Medical Center, Columbus.

4. Dorothy M. Davis Heart and Lung Research Institute and Surgery (B.A.W.), The Ohio State University Wexner Medical Center, Columbus.

5. Cancer and Inflammation Research, Institute of Molecular Medicine, University of Southern Denmark, Odense (A.S., G.L.S.).

Abstract

Rationale: Cardiac hypertrophy, a major risk factor for heart failure, occurs when cardiomyocytes remodel in response to complex signaling induced by injury or cell stress. Although cardiomyocytes are the ultimate effectors of cardiac hypertrophy, nonmyocyte populations play a large yet understudied role in determining how cardiomyocytes respond to stress. Objective: To identify novel paracrine regulators of cardiomyocyte hypertrophic remodeling. Methods and Results: We have identified a novel role for a nonmyocyte-derived and TGFβ1 (transforming growth factor β1)–induced extracellular matrix protein MFAP4 (microfibrillar-associated protein 4) in the pathophysiology of cardiac remodeling. We have determined that nonmyocyte cells are the primary sources of MFAP4 in the heart in response to TGFβ1 stimulation. Furthermore, we have demonstrated a crucial role of MFAP4 in the cardiac adaptation to stress. Global knockout of MFAP4 led to increased cardiac hypertrophy and worsened cardiac function following chronic pressure overload. Also, one week of angiotensin-mediated neurohumoral stimulation was sufficient to exacerbate cardiomyocyte hypertrophy in MFAP4 null mice. In contrast, administration of exogenous MFAP4 to isolated cardiomyocytes blunted their phenylephrine-induced hypertrophic growth through an integrin-dependent mechanism. Finally, MFAP4 deficiency leads to dysregulated integration of G protein-coupled receptor and integrin signaling in the heart. Conclusions: Altogether, our results demonstrate a critical paracrine role of MFAP4 in the development of cardiac hypertrophy and could inform future treatment options for patients with heart failure.

Funder

HHS | NIH | National Heart, Lung, and Blood Institute

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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