Mir-30d Regulates Cardiac Remodeling by Intracellular and Paracrine Signaling

Author:

Li Jin1,Salvador Ane M.2,Li Guoping2,Valkov Nedyalka2,Ziegler Olivia2,Yeri Ashish2,Yang Xiao Chun2,Meechoovet Bessie3,Alsop Eric3,Rodosthenous Rodosthenis S.2,Kundu Piyusha2,Huan Tianxiao4,Levy Daniel4,Tigges John5,Pico Alexander R.6ORCID,Ghiran Ionita5,Silverman Michael G.2,Meng Xiangmin1,Kitchen Robert2ORCID,Xu Jiahong7,Van Keuren-Jensen Kendall3,Shah Ravi2,Xiao Junjie1,Das Saumya2ORCID

Affiliation:

1. Cardiac Regeneration and Ageing Lab, Institute of Cardiovascular Sciences, School of Life Science, Shanghai University, China (J.L., X.M., J. Xiao).

2. Cardiovascular Research Center, Massachusetts General Hospital and Harvard Medical School, Boston (A.M.S., G.L., N.V., O.Z., A.Y., C.Y.X., R.S.R., PK., M.G.S., R.K., R.S., S.D.).

3. Neurogenomics Division, TGen, Phoenix, AZ (B.M., E.A., K.V.K.-J.).

4. The Framingham Heart Study and The Population Sciences Branch, Division of Intramural Research, National Heart, Lung and Blood Institute, NIH, Bethesda, MD (T.H., D.L.).

5. Division of Allergy and Inflammation, Beth Israel Deaconess Medical Center, Boston, MA (J.T., I.G.).

6. Gladstone Institutes, San Francisco, CA (A.R.P.).

7. Department of Cardiology, Tongji Hospital, Tongji University School of Medicine, Shanghai, China (J. Xu).

Abstract

Rationale: Previous translational studies implicate plasma extracellular microRNA-30d (miR-30d) as a biomarker in left ventricular remodeling and clinical outcome in heart failure (HF) patients, although precise mechanisms remain obscure. Objective: To investigate the mechanism of miR-30d–mediated cardioprotection in HF. Methods and Results: In rat and mouse models of ischemic HF, we show that miR-30d gain of function (genetic, lentivirus, or agomiR-mediated) improves cardiac function, decreases myocardial fibrosis, and attenuates cardiomyocyte (CM) apoptosis. Genetic or locked nucleic acid–based knock-down of miR-30d expression potentiates pathological left ventricular remodeling, with increased dysfunction, fibrosis, and cardiomyocyte death. RNA sequencing of in vitro miR-30d gain and loss of function, together with bioinformatic prediction and experimental validation in cardiac myocytes and fibroblasts, were used to identify and validate direct targets of miR-30d. miR-30d expression is selectively enriched in cardiomyocytes, induced by hypoxic stress and is acutely protective, targeting MAP4K4 (mitogen-associate protein kinase 4) to ameliorate apoptosis. Moreover, miR-30d is secreted primarily in extracellular vesicles by cardiomyocytes and inhibits fibroblast proliferation and activation by directly targeting integrin α5 in the acute phase via paracrine signaling to cardiac fibroblasts. In the chronic phase of ischemic remodeling, lower expression of miR-30d in the heart and plasma extracellular vesicles is associated with adverse remodeling in rodent models and human subjects and is linked to whole-blood expression of genes implicated in fibrosis and inflammation, consistent with observations in model systems. Conclusions: These findings provide the mechanistic underpinning for the cardioprotective association of miR-30d in human HF. More broadly, our findings support an emerging paradigm involving intercellular communication of extracellular vesicle–contained miRNAs (microRNAs) to transregulate distinct signaling pathways across cell types. Functionally validated RNA biomarkers and their signaling networks may warrant further investigation as novel therapeutic targets in HF.

Funder

HHS | National Institutes of Health

HHS | NIH | National Center for Advancing Translational Sciences

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

National Natural Science Foundation of China

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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