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Wnt16减弱转化生长因子β诱导的血管平滑肌细胞软骨形成转化。

Wnt16 attenuates TGFβ-induced chondrogenic transformation in vascular smooth muscle.

作者信息

Beazley Kelly E, Nurminsky Dmitry, Lima Florence, Gandhi Chintan, Nurminskaya Maria V

机构信息

From the Department of Biochemistry and Molecular Biology, School of Medicine, University of Maryland, Baltimore.

出版信息

Arterioscler Thromb Vasc Biol. 2015 Mar;35(3):573-9. doi: 10.1161/ATVBAHA.114.304393. Epub 2015 Jan 22.

Abstract

OBJECTIVE

Phenotypic plasticity of vascular smooth muscle cells (VSMCs) contributes to cardiovascular disease. Chondrocyte-like transformation of VSMCs associates with vascular calcification and underlies the formation of aortic cartilaginous metaplasia induced in mice by genetic loss of matrix Gla protein (MGP). Previous microarray analysis identified a dramatic downregulation of Wnt16 in calcified MGP-null aortae, suggesting an antagonistic role for Wnt16 in the chondrogenic transformation of VSMCs.

APPROACH AND RESULTS

Wnt16 is significantly downregulated in MGP-null aortae, before the histological appearance of cartilaginous metaplasia, and in primary MGP-null VSMCs. In contrast, intrinsic TGFβ is activated in MGP-null VSMCs and is necessary for spontaneous chondrogenesis of these cells in high-density micromass cultures. TGFβ3-induced chondrogenic transformation in wild-type VSMCs associates with Smad2/3-dependent Wnt16 downregulation, but Wnt16 does not suppress TGFβ3-induced Smad activation. In addition, TGFβ3 inhibits Notch signaling in wild-type VSMCs, and this pathway is downregulated in MGP-null aortae. Exogenous Wnt16 stimulates Notch activity and attenuates TGFβ3-induced downregulation of Notch in wild-type VSMCs, prevents chondrogenesis in MGP-null and TGFβ3-treated wild-type VSMCs, and stabilizes expression of contractile markers of differentiated VSMCs.

CONCLUSIONS

We describe a novel TGFβ-Wnt16-Notch signaling conduit in the chondrocyte-like transformation of VSMCs and identify endogenous TGFβ activity in MGP-null VSMCs as a critical mediator of chondrogenesis. Our proposed model suggests that the activated TGFβ pathway inhibits expression of Wnt16, which is a positive regulator of Notch signaling and a stabilizer of VSMC phenotype. These data advance the comprehensive mechanistic understanding of VSMC transformation and may identify a novel potential therapeutic target in vascular calcification.

摘要

目的

血管平滑肌细胞(VSMC)的表型可塑性与心血管疾病有关。VSMC的软骨样转化与血管钙化相关,并构成基质Gla蛋白(MGP)基因缺失诱导的小鼠主动脉软骨化生形成的基础。先前的微阵列分析发现,在钙化的MGP基因缺失主动脉中,Wnt16显著下调,提示Wnt16在VSMC软骨形成转化中起拮抗作用。

方法与结果

在软骨化生的组织学表现出现之前,MGP基因缺失的主动脉以及原代MGP基因缺失的VSMC中,Wnt16均显著下调。相比之下,内源性转化生长因子β(TGFβ)在MGP基因缺失的VSMC中被激活,并且是这些细胞在高密度微团培养中自发软骨形成所必需的。TGFβ3诱导野生型VSMC发生软骨形成转化与Smad2/3依赖的Wnt16下调相关,但Wnt16并不抑制TGFβ3诱导的Smad激活。此外,TGFβ3抑制野生型VSMC中的Notch信号通路,并且该通路在MGP基因缺失的主动脉中下调。外源性Wnt16刺激Notch活性,并减弱TGFβ3诱导的野生型VSMC中Notch的下调,阻止MGP基因缺失和TGFβ3处理的野生型VSMC中的软骨形成,并稳定分化的VSMC收缩标记物的表达。

结论

我们描述了一种在VSMC软骨样转化中的新型TGFβ-Wnt16-Notch信号传导途径,并确定MGP基因缺失的VSMC中的内源性TGFβ活性是软骨形成的关键介质。我们提出的模型表明,激活的TGFβ途径抑制Wnt16的表达,Wnt16是Notch信号的正调节因子和VSMC表型的稳定剂。这些数据推进了对VSMC转化的全面机制理解,并可能确定血管钙化中的一个新的潜在治疗靶点。

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