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跨膜蛋白16F(TMEM16F)翻转酶通过内皮细胞内信号传导调节血管生成。

TMEM16F scramblase regulates angiogenesis via endothelial intracellular signaling.

作者信息

Shan Ke Zoe, Le Trieu, Liang Pengfei, Dong Ping, Lowry Augustus J, Kremmyda Polina, Claesson-Welsh Lena, Yang Huanghe

机构信息

Department of Biochemistry, Duke University, School of Medicine, Durham, NC 27710, USA.

Department of Immunology, Genetics and Pathology, Uppsala University, Rudbeck, Beijer and SciLifeLab Laboratory, Uppsala 751 85, Sweden.

出版信息

J Cell Sci. 2024 Jul 15;137(14). doi: 10.1242/jcs.261566. Epub 2024 Jul 18.

Abstract

TMEM16F (also known as ANO6), a Ca2+-activated lipid scramblase (CaPLSase) that dynamically disrupts lipid asymmetry, plays a crucial role in various physiological and pathological processes, such as blood coagulation, neurodegeneration, cell-cell fusion and viral infection. However, the mechanisms through which it regulates these processes remain largely elusive. Using endothelial cell-mediated angiogenesis as a model, here we report a previously unknown intracellular signaling function of TMEM16F. We demonstrate that TMEM16F deficiency impairs developmental retinal angiogenesis in mice and disrupts angiogenic processes in vitro. Biochemical analyses indicate that the absence of TMEM16F enhances the plasma membrane association of activated Src kinase. This in turn increases VE-cadherin phosphorylation and downregulation, accompanied by suppressed angiogenesis. Our findings not only highlight the role of intracellular signaling by TMEM16F in endothelial cells but also open new avenues for exploring the regulatory mechanisms for membrane lipid asymmetry and their implications in disease pathogenesis.

摘要

跨膜蛋白16F(也称为ANO6)是一种钙激活的脂质翻转酶(CaPLSase),可动态破坏脂质不对称性,在各种生理和病理过程中发挥关键作用,如血液凝固、神经退行性变、细胞间融合和病毒感染。然而,其调节这些过程的机制仍 largely难以捉摸。以内皮细胞介导的血管生成为模型,我们在此报告了跨膜蛋白16F以前未知的细胞内信号传导功能。我们证明,跨膜蛋白16F缺陷会损害小鼠视网膜发育性血管生成,并在体外破坏血管生成过程。生化分析表明,跨膜蛋白16F的缺失增强了活化Src激酶与质膜的结合。这反过来又增加了血管内皮钙黏蛋白的磷酸化和下调,同时伴有血管生成受抑制。我们的发现不仅突出了跨膜蛋白16F在内皮细胞中的细胞内信号传导作用,也为探索膜脂质不对称性的调节机制及其在疾病发病机制中的意义开辟了新途径。

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