MiR-133a Modulates Osteogenic Differentiation of Vascular Smooth Muscle Cells

Author:

Liao Xiao-Bo1,Zhang Zhi-Yuan1,Yuan Ke2,Liu Yuan3,Feng Xiang1,Cui Rong-Rong3,Hu Ye-Rong1,Yuan Zhao-Shun1,Gu Lu1,Li Shi-Jun4,Mao Ding-An4,Lu Qiong5,Zhou Xin-Ming1,de Jesus Perez Vinicio A.2,Yuan Ling-Qing3

Affiliation:

1. Departments of Cardiothoracic Surgery (X.-B.L., Z.-Y.Z., X.F., Y.-R.H., Z.-S.Y., L.G., X.-M.Z.), The Second Xiangya Hospital of Central South University, Changsha, 410011, People's Republic of China

2. Department of Medicine (K.Y., V.A.d.J.P.), Stanford University, Stanford, California 94305

3. Institutes of Metabolism and Endocrinology (Y.L., R.-R.C., L.-Q.Y.)

4. Departments of Pediatrics (S.-J.L., D.-A.M.), The Second Xiangya Hospital of Central South University, Changsha, 410011, People's Republic of China

5. Clinical Pharmacy and Pharmacology (Q.L.), The Second Xiangya Hospital of Central South University, Changsha, 410011, People's Republic of China

Abstract

Arterial calcification is a key pathologic component of vascular diseases such as atherosclerosis, coronary artery disease, and peripheral vascular disease. A hallmark of this pathological process is the phenotypic transition of vascular smooth muscle cells (VSMCs) to osteoblast-like cells. Several studies have demonstrated that microRNAs (miRNAs) regulate osteoblast differentiation, but it is unclear whether miRNAs also regulate VSMC-mediated arterial calcification. In the present study, we sought to characterize the role of miR-133a in regulating VSMC-mediated arterial calcification. Northern blotting analysis of VSMCs treated with β-glycerophosphate demonstrated that miR-133a was significantly decreased during osteogenic differentiation. Overexpression of miR-133a inhibited VSMC transdifferentiation into osteoblast-like cells as evidenced by a decrease in alkaline phosphatase activity, osteocalcin secretion, Runx2 expression, and mineralized nodule formation. Conversely, the knockdown of miR-133a using an miR-133a inhibitor promoted osteogenic differentiation of VSMCs by increasing alkaline phosphatase activity, osteocalcin secretion, and Runx2 expression. Runx2 was identified as a direct target of miR-133a by a cotransfection experiment in VSMCs with luciferase reporter plasmids containing wild-type or mutant 3′-untranslated region sequences of Runx2. Furthermore, the pro-osteogenic effects of miR-133a inhibitor were abrogated in Runx2-knockdown cells, and the inhibition of osteogenic differentiation by pre–miR-133a was reversed by overexpression of Runx2, providing functional evidence that the effects of miR-133a in osteogenic differentiation were mediated by targeting Runx2. These results demonstrate that miR-133a is a key negative regulator of the osteogenic differentiation of VSMCs.

Publisher

The Endocrine Society

Subject

Endocrinology

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