Down-regulation of miR-23b induces phenotypic switching of vascular smooth muscle cellsin vitroandin vivo

血管平滑肌 新生内膜增生 表型转换 生物 再狭窄 体内 细胞生物学 胚胎血管重塑 转录因子 心肌细胞 癌症研究 内科学 内分泌学 医学 基因 支架 生物化学 平滑肌 生物技术
作者
Claudio Iaconetti,Salvatore De Rosa,Alberto Polimeni,Sabato Sorrentino,Clarice Gareri,Annarita Carino,Jolanda Sabatino,María Adelaida Colangelo,Antonio Curcio,Ciro Indolfi
出处
期刊:Cardiovascular Research [Oxford University Press]
卷期号:107 (4): 522-533 被引量:92
标识
DOI:10.1093/cvr/cvv141
摘要

Phenotypic switch of vascular smooth muscle cells (VSMCs) plays a key role in the pathogenesis of different vascular diseases, such as atherosclerosis and restenosis after coronary intervention. MicroRNAs have been identified as key regulators of VSMC biology. The miR-23b is highly expressed in VSMCs and it is involved in differentiation, proliferation, and migration of several non-vascular cell types. However, the role of miR-23b in vascular disease is currently unknown. Thus, the aim of the present study was to evaluate the role of miR-23b on VSMC phenotypic switch in vitro and after vascular injury in vivo.To determine the changes of miR-23b expression in the injured arterial wall, we used the standard rat carotid artery balloon injury model. In vivo studies demonstrated that miR-23b is down-regulated after vascular injury. Gain-of-function studies showed that overexpression of miR-23b inhibited VSMC proliferation and migration, whereas the opposite effect was obtained with the in vitro inhibition of miR-23b. We further demonstrated that miR-23b can significantly promote the expression of VSMC marker genes such as smooth muscle α-actin (ACTA2) and smooth muscle myosin heavy chain (MYH11). Overexpression of miR-23b in balloon-injured arteries by Ad-miR-23b markedly decreased neointimal hyperplasia. Finally, miR-23b specifically suppresses urokinase-type plasminogen activator, SMAD family member 3, and transcription factor forkhead box O4 (FoxO4) expression in phenotypically modulated VSMCs. By luciferase reporter assay, we validated the transcription factor FoxO4 as a direct target of miR-23b in VSMCs.We identify miR-23b as a novel regulator of VSMC phenotypic switch in vitro and following vascular injury in vivo.
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