A Novel Regulator of Macrophage Activation

Author:

Zhuang Guoqing1,Meng Cong1,Guo Xin1,Cheruku Patali S.1,Shi Lei1,Xu Hang1,Li Honggui1,Wang Gang1,Evans Ashley R.1,Safe Stephen1,Wu Chaodong1,Zhou Beiyan1

Affiliation:

1. From the Department of Veterinary Physiology and Pharmacology, College of Veterinary Medicine and Biomedical Sciences (G.Z., C.M., L.S., G.W., S.S., B.Z.), Intercollegiate Faculty of Nutrition Program (C.M., X.G., H.X., H.L., C.W.), Department of Biology, College of Science (P.S.C.), and Biomedical Sciences Program, College of Veterinary Medicine and Biomedical Sciences (A.R.E.), Texas A&M University, College Station, and Department of Oncology, Renmin Hospital of Wuhan University, Wuhan, China ...

Abstract

Background— Macrophage activation plays a crucial role in regulating adipose tissue inflammation and is a major contributor to the pathogenesis of obesity-associated cardiovascular diseases. On various types of stimuli, macrophages respond with either classic (M1) or alternative (M2) activation. M1- and M2-mediated signaling pathways and corresponding cytokine production profiles are not completely understood. The discovery of microRNAs provides a new opportunity to understand this complicated but crucial network for macrophage activation and adipose tissue function. Methods and Results— We have examined the activity of microRNA-223 (miR-223) and its role in controlling macrophage functions in adipose tissue inflammation and systemic insulin resistance. miR-223 −/− mice on a high-fat diet exhibited an increased severity of systemic insulin resistance compared with wild-type mice that was accompanied by a marked increase in adipose tissue inflammation. The specific regulatory effects of miR-223 in myeloid cell–mediated regulation of adipose tissue inflammation and insulin resistance were then confirmed by transplantation analysis. Moreover, using bone marrow–derived macrophages, we demonstrated that miR-223 is a novel regulator of macrophage polarization, which suppresses classic proinflammatory pathways and enhances the alternative antiinflammatory responses. In addition, we identified Pknox1 as a genuine miR-223 target gene and an essential regulator for macrophage polarization. Conclusion— For the first time, this study demonstrates that miR-223 acts to inhibit Pknox1, suppressing proinflammatory activation of macrophages; thus, it is a crucial regulator of macrophage polarization and protects against diet-induced adipose tissue inflammatory response and systemic insulin resistance.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Physiology (medical),Cardiology and Cardiovascular Medicine

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