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原发性纤毛缺失引发切应力诱导的血管内皮细胞向间充质细胞转化。

Lack of primary cilia primes shear-induced endothelial-to-mesenchymal transition.

机构信息

Department of Anatomy and Embryology, Leiden University Medical Center, Leiden, The Netherlands.

出版信息

Circ Res. 2011 Apr 29;108(9):1093-101. doi: 10.1161/CIRCRESAHA.110.231860. Epub 2011 Mar 10.

Abstract

RATIONALE

Primary cilia are cellular protrusions that serve as mechanosensors for fluid flow. In endothelial cells (ECs), they function by transducing local blood flow information into functional responses, such as nitric oxide production and initiation of gene expression. Cilia are present on ECs in areas of low or disturbed flow and absent in areas of high flow. In the embryonic heart, high-flow regime applies to the endocardial cushion area, and the absence of cilia here coincides with the process of endothelial-to-mesenchymal transition (EndoMT).

OBJECTIVE

In this study, we investigated the role of the primary cilium in defining the responses of ECs to fluid shear stress and in EndoMT.

METHODS AND RESULTS

Nonciliated mouse embryonic ECs with a mutation in Tg737/Ift88 were used to compare the response to fluid shear stress to that of ciliated ECs. In vitro, nonciliated ECs undergo shear-induced EndoMT, which is accompanied by downregulation of Klf4. This Tgfβ/Alk5-dependent transformation is prevented by blocking Tgfβ signaling, overexpression of Klf4, or rescue of the primary cilium. In the hearts of Tg737(orpk/orpk) embryos, Tgfβ/Alk5 signaling was activated in areas in which ECs would normally be ciliated but now lack cilia because of the mutation. In these areas, ECs show increased Smad2 phosphorylation and expression of α-smooth muscle actin.

CONCLUSIONS

This study demonstrates the central role of primary cilia in rendering ECs prone to shear-induced activation of Tgfβ/Alk5 signaling and EndoMT and thereby provides a functional link between primary cilia and flow-related endothelial performance.

摘要

背景

初级纤毛是作为流体流动的机械感受器的细胞突起。在内皮细胞(ECs)中,它们通过将局部血流信息转导为功能性反应来发挥作用,例如一氧化氮的产生和基因表达的启动。纤毛存在于低流速或紊乱流动的 ECs 中,而不存在于高流速的 ECs 中。在胚胎心脏中,高流速状态适用于心内膜垫区域,而此处纤毛的缺失与内皮细胞向间充质转化(EndoMT)过程相吻合。

目的

在这项研究中,我们研究了初级纤毛在确定 ECs 对流体切应力的反应和 EndoMT 中的作用。

方法和结果

使用突变 Tg737/Ift88 的非纤毛小鼠胚胎 ECs 来比较对流体切应力的反应与纤毛 ECs 的反应。在体外,非纤毛 ECs 经历剪切诱导的 EndoMT,伴随着 Klf4 的下调。这种 TGFβ/Alk5 依赖性转化可通过阻断 TGFβ 信号、过表达 Klf4 或恢复初级纤毛来预防。在 Tg737(orpk/orpk) 胚胎的心脏中,TGFβ/Alk5 信号在正常情况下 ECs 应该纤毛化但由于突变而现在缺乏纤毛的区域被激活。在这些区域,ECs 显示出 Smad2 磷酸化和α-平滑肌肌动蛋白表达增加。

结论

这项研究表明,初级纤毛在使 ECs 易于受到剪切诱导的 TGFβ/Alk5 信号激活和 EndoMT 方面发挥核心作用,从而为初级纤毛和与流动相关的内皮功能之间提供了功能联系。

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