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G 蛋白依赖性基础状态和诱发性内皮细胞 vWF 分泌。

G protein-dependent basal and evoked endothelial cell vWF secretion.

机构信息

Department of Pharmacology and.

出版信息

Blood. 2014 Jan 16;123(3):442-50. doi: 10.1182/blood-2013-03-489351. Epub 2013 Sep 30.

Abstract

von Willebrand factor (vWF) secretion by endothelial cells (ECs) is essential for hemostasis and thrombosis; however, the molecular mechanisms are poorly understood. Interestingly, we observed increased bleeding in EC-Gα13(-/-);Gα12(-/-) mice that could be normalized by infusion of human vWF. Blood from Gα12(-/-) mice exhibited significantly reduced vWF levels but normal vWF multimers and impaired laser-induced thrombus formation, indicating that Gα12 plays a prominent role in EC vWF secretion required for hemostasis and thrombosis. In isolated buffer-perfused mouse lungs, basal vWF levels were significantly reduced in Gα12(-/-), whereas thrombin-induced vWF secretion was defective in both EC-Gαq(-/-);Gα11(-/-) and Gα12(-/-) mice. Using siRNA in cultured human umbilical vein ECs and human pulmonary artery ECs, depletion of Gα12 and soluble N-ethylmaleimide-sensitive-fusion factor attachment protein α (α-SNAP), but not Gα13, inhibited both basal and thrombin-induced vWF secretion, whereas overexpression of activated Gα12 promoted vWF secretion. In Gαq, p115 RhoGEF, and RhoA-depleted human umbilical vein ECs, thrombin-induced vWF secretion was reduced by 40%, whereas basal secretion was unchanged. Finally, in vitro binding assays revealed that Gα12 N-terminal residues 10-15 mediated the binding of Gα12 to α-SNAP, and an engineered α-SNAP binding-domain minigene peptide blocked basal and evoked vWF secretion. Discovery of obligatory and complementary roles of Gα12 and Gαq/11 in basal vs evoked EC vWF secretion may provide promising new therapeutic strategies for treatment of thrombotic disease.

摘要

血管性血友病因子(vWF)由内皮细胞(ECs)分泌,对于止血和血栓形成至关重要;然而,其分子机制尚不清楚。有趣的是,我们观察到内皮细胞特异性 Gα13(-/-);Gα12(-/-) 小鼠出血增加,而输注人 vWF 可使其正常化。Gα12(-/-) 小鼠的血液显示 vWF 水平显著降低,但 vWF 多聚体正常,激光诱导血栓形成受损,表明 Gα12 在止血和血栓形成所需的 EC vWF 分泌中发挥突出作用。在分离的缓冲液灌注的小鼠肺中,Gα12(-/-) 中的基础 vWF 水平显著降低,而在 EC-Gαq(-/-);Gα11(-/-) 和 Gα12(-/-) 小鼠中,凝血酶诱导的 vWF 分泌均有缺陷。在培养的人脐静脉内皮细胞和人肺动脉内皮细胞中使用 siRNA,Gα12 和可溶性 N-乙基马来酰亚胺敏感的融合蛋白附着蛋白 α(α-SNAP)耗竭,但不是 Gα13,抑制基础和凝血酶诱导的 vWF 分泌,而激活的 Gα12 的过表达促进 vWF 分泌。在 Gαq、p115 RhoGEF 和 RhoA 耗尽的人脐静脉内皮细胞中,凝血酶诱导的 vWF 分泌减少了 40%,而基础分泌不变。最后,体外结合实验显示,Gα12 N 端残基 10-15 介导 Gα12 与 α-SNAP 的结合,并且工程化的 α-SNAP 结合结构域小基因肽阻断基础和诱发的 vWF 分泌。Gα12 和 Gαq/11 在基础和诱发的 EC vWF 分泌中的必需和互补作用的发现,可能为治疗血栓性疾病提供有希望的新治疗策略。

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