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细胞表面四分子交联素 Tspan8 有助于外泌体诱导的内皮细胞激活的分子途径。

Cell surface tetraspanin Tspan8 contributes to molecular pathways of exosome-induced endothelial cell activation.

机构信息

Department of Tumor Cell Biology, University Hospital of Surgery, D-69120 Heidelberg, Germany.

出版信息

Cancer Res. 2010 Feb 15;70(4):1668-78. doi: 10.1158/0008-5472.CAN-09-2470. Epub 2010 Feb 2.

Abstract

Tumor-derived exosomes containing the tetraspanin Tspan8 can efficiently induce angiogenesis in tumors and tumor-free tissues. However, little information exists on exosome-endothelial cell (EC) interactions or the proangiogenic role of tetraspanins, which are a constitutive component of exosomes. In this study, we used a rat adenocarcinoma model (AS-Tspan8) to explore the effects of exosomal Tspan8 on angiogenesis. Tspan8 contributed to a selective recruitment of proteins and mRNA into exosomes, including CD106 and CD49d, which were implicated in exosome-EC binding and EC internalization. We found that EC internalized Tspan8-CD49d complex-containing exosomes. Exosome uptake induced vascular endothelial growth factor (VEGF)-independent regulation of several angiogenesis-related genes, including von Willebrand factor, Tspan8, chemokines CXCL5 and MIF, chemokine receptor CCR1, and, together with VEGF, VEGF receptor 2. EC uptake of Tspan8-CD49d complex-containing exosomes was accompanied by enhanced EC proliferation, migration, sprouting, and maturation of EC progenitors. Unraveling these new pathways of exosome-initiated EC regulation could provide new options for therapeutic interference with tumor-induced angiogenesis.

摘要

肿瘤来源的外泌体含有四跨膜蛋白 Tspan8,可有效诱导肿瘤和无肿瘤组织中的血管生成。然而,关于外泌体-内皮细胞(EC)相互作用或四跨膜蛋白(是外泌体的固有组成部分)的促血管生成作用的信息很少。在这项研究中,我们使用大鼠腺癌模型(AS-Tspan8)来探索外泌体 Tspan8 对血管生成的影响。Tspan8 有助于将蛋白质和 mRNA 选择性募集到外泌体中,包括 CD106 和 CD49d,它们参与外泌体与 EC 的结合和 EC 的内化。我们发现 EC 内化了含有 Tspan8-CD49d 复合物的外泌体。外泌体摄取诱导了血管内皮生长因子(VEGF)非依赖性的几个与血管生成相关基因的调节,包括血管性血友病因子、Tspan8、趋化因子 CXCL5 和 MIF、趋化因子受体 CCR1,以及与 VEGF 一起调节 VEGF 受体 2。含有 Tspan8-CD49d 复合物的外泌体被 EC 摄取后,EC 的增殖、迁移、出芽和 EC 祖细胞的成熟能力增强。揭示这些外泌体启动的 EC 调节的新途径可能为治疗性干预肿瘤诱导的血管生成提供新的选择。

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