Loss of PI3Kγ Enhances cAMP-Dependent MMP Remodeling of the Myocardial N-Cadherin Adhesion Complexes and Extracellular Matrix in Response to Early Biomechanical Stress

Author:

Guo Danny1,Kassiri Zamaneh1,Basu Ratnadeep1,Chow Fung L.1,Kandalam Vijay1,Damilano Federico1,Liang Wenbin1,Izumo Seigo1,Hirsch Emilio1,Penninger Josef M.1,Backx Peter H.1,Oudit Gavin Y.1

Affiliation:

1. From the Division of Cardiology, Department of Medicine (D.G., F.L.C., G.Y.O.); Mazankowski Alberta Heart Institute (D.G., Z.K., R.B., F.L.C., V.K., G.Y.O.); and Department of Physiology (Z.K., R.B., V.K., G.Y.O.), University of Alberta, Edmonton, Canada; University of Torino (F.D., E.H.), Italy; Department of Physiology (W.L., P.H.B.), University of Toronto, Canada; Beth Israel Deaconess Medical Center (S.I.), Harvard Medical School, Boston Mass; and Institute of Molecular Biotechnology of the...

Abstract

Rationale: Mechanotransduction and the response to biomechanical stress is a fundamental response in heart disease. Loss of phosphoinositide 3-kinase (PI3K)γ, the isoform linked to G protein–coupled receptor signaling, results in increased myocardial contractility, but the response to pressure overload is controversial. Objective: To characterize molecular and cellular responses of the PI3Kγ knockout (KO) mice to biomechanical stress. Methods and Results: In response to pressure overload, PI3KγKO mice deteriorated at an accelerated rate compared with wild-type mice despite increased basal myocardial contractility. These functional responses were associated with compromised phosphorylation of Akt and GSK-3α. In contrast, isolated single cardiomyocytes from banded PI3KγKO mice maintained their hypercontractility, suggesting compromised interaction with the extracellular matrix as the primary defect in the banded PI3KγKO mice. β-Adrenergic stimulation increased cAMP levels with increased phosphorylation of CREB, leading to increased expression of cAMP-responsive matrix metalloproteinases (MMPs), MMP2, MT1-MMP, and MMP13 in cardiomyocytes and cardiofibroblasts. Loss of PI3Kγ resulted in increased cAMP levels with increased expression of MMP2, MT1-MMP, and MMP13 and increased MMP2 activation and collagenase activity in response to biomechanical stress. Selective loss of N-cadherin from the adhesion complexes in the PI3KγKO mice resulted in reduced cell adhesion. The β-blocker propranolol prevented the upregulation of MMPs, whereas MMP inhibition prevented the adverse remodeling with both therapies, preventing the functional deterioration in banded PI3KγKO mice. In banded wild-type mice, long-term propranolol prevented the adverse remodeling and systolic dysfunction with preservation of the N-cadherin levels. Conclusions: The enhanced propensity to develop heart failure in the PI3KγKO mice is attributable to a cAMP-dependent upregulation of MMP expression and activity and disorganization of the N-cadherin/β-catenin cell adhesion complex. β-Blocker therapy prevents these changes thereby providing a novel mechanism of action for these drugs.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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