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A MST1–FOXO1 cascade establishes endothelial tip cell polarity and facilitates sprouting angiogenesis

机译:MST1-FOXO1级联建立内皮尖端细胞极性并促进发芽血管生成

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摘要

Hypoxia is a main driver of sprouting angiogenesis, but how tip endothelial cells are directed to hypoxic regions remains poorly understood. Here, we show that an endothelial MST1–FOXO1 cascade is essential for directional migration of tip cells towards hypoxic regions. In mice, endothelial‐specific deletion of either MST1 or FOXO1 leads to the loss of tip cell polarity and subsequent impairment of sprouting angiogenesis. Mechanistically, MST1 is activated by reactive oxygen species (ROS) produced in mitochondria in response to hypoxia, and activated MST1 promotes the nuclear import of FOXO1, thus augmenting its transcriptional regulation of polarity and migration‐associated genes. Furthermore, endothelial MST1‐FOXO1 cascade is required for revascularization and neovascularization in the oxygen-induced retinopathy model. Together, the results of our study delineate a crucial coupling between extracellular hypoxia and an intracellular ROS‐MST1‐FOXO1 cascade in establishing endothelial tip cell polarity during sprouting angiogenesis.
机译:缺氧是发芽血管生成的主要驱动力,但对尖端内皮细胞如何引导至缺氧区域的了解仍然很少。在这里,我们显示内皮MST1-FOXO1级联对于尖端细胞向缺氧区域的定向迁移至关重要。在小鼠中,MST1或FOXO1的内皮特异性缺失会导致尖端细胞极性丧失,继而损害发芽血管生成。从机理上讲,MST1被线粒体中的活性氧(ROS)激活以响应缺氧,而激活的MST1促进了FOXO1的核输入,从而增强了极性和与迁移相关的基因的转录调控。此外,在氧诱导的视网膜病变模型中,血管重建和新血管形成需要内皮MST1-FOXO1级联反应。在一起,我们的研究结果描绘出细胞外低氧和细胞内ROS-MST1-FOXO1级联之间的关键耦合,在发芽血管生成过程中建立内皮尖端细胞极性。

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