Extracellular Matrix Secretion by Cardiac Fibroblasts

Author:

Abonnenc Mélanie1,Nabeebaccus Adam A.1,Mayr Ursula1,Barallobre-Barreiro Javier1,Dong Xuebin1,Cuello Friederike1,Sur Sumon1,Drozdov Ignat1,Langley Sarah R.1,Lu Ruifang1,Stathopoulou Konstantina1,Didangelos Athanasios1,Yin Xiaoke1,Zimmermann Wolfram-Hubertus1,Shah Ajay M.1,Zampetaki Anna1,Mayr Manuel1

Affiliation:

1. From the King’s British Heart Foundation Centre, King’s College London, London, United Kingdom (M.A., A.A.N., U.M., J.B.-B., X.D., F.C., I.D., S.R.L., R.L., K.S., A.D., X.Y., A.M.S., A.Z., M.M.); Department of Experimental Pharmacology and Toxicology, University Medical Centre Hamburg-Eppendorf, Hamburg, Germany (F.C., K.S.); Centre for Bioinformatics-School of Physical Sciences and Engineering (I.D.), King's College London, London, United Kingdom; and Institute of Pharmacology (S.S., W.-H.Z.),...

Abstract

Rationale: MicroRNAs (miRNAs), in particular miR-29b and miR-30c, have been implicated as important regulators of cardiac fibrosis. Objective: To perform a proteomics comparison of miRNA effects on extracellular matrix secretion by cardiac fibroblasts. Methods and Results: Mouse cardiac fibroblasts were transfected with pre-/anti-miR of miR-29b and miR-30c, and their conditioned medium was analyzed by mass spectrometry. miR-29b targeted a cadre of proteins involved in fibrosis, including multiple collagens, matrix metalloproteinases, and leukemia inhibitory factor, insulin-like growth factor 1, and pentraxin 3, 3 predicted targets of miR-29b. miR-29b also attenuated the cardiac fibroblast response to transforming growth factor-β. In contrast, miR-30c had little effect on extracellular matrix production but opposite effects regarding leukemia inhibitory factor and insulin-like growth factor 1. Both miRNAs indirectly affected cardiac myocytes. On transfection with pre–miR-29b, the conditioned medium of cardiac fibroblasts lost its ability to support adhesion of rat ventricular myocytes and led to a significant reduction of cardiac myocyte proteins (α-actinin, cardiac myosin-binding protein C, and cardiac troponin I). Similarly, cardiomyocytes derived from mouse embryonic stem cells atrophied under pre–miR-29 conditioned medium, whereas pre–miR-30c conditioned medium had a prohypertrophic effect. Levels of miR-29a, miR-29c, and miR-30c, but not miR-29b, were significantly reduced in a mouse model of pathological but not physiological hypertrophy. Treatment with antagomiRs to miR-29b induced excess fibrosis after aortic constriction without overt deterioration in cardiac function. Conclusions: Our proteomic analysis revealed novel molecular targets of miRNAs that are linked to a fibrogenic cardiac phenotype. Such comprehensive screening methods are essential to define the concerted actions of miRNAs in cardiovascular disease.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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