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Phosphoinositide 3-kinase gamma gene knockout impairs postischemic neovascularization and endothelial progenitor cell functions

机译:磷酸肌醇3-激酶γ基因敲除会损害缺血后新生血管形成和内皮祖细胞功能

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摘要

Objective— We evaluated whether phosphatidylinositol 3-kinase γ (PI3Kγ) plays a role in reparative neovascularization and endothelial progenitor cell (EPC) function.Methods and Results— Unilateral limb ischemia was induced in mice lacking the PI3Kγ gene (PI3Kγ−/−) or expressing a catalytically inactive mutant (PI3KγKD/KD) and wild-type controls (WT). Capillarization and arteriogenesis were reduced in PI3Kγ−/− ischemic muscles resulting in delayed reperfusion compared with WT, whereas reparative neovascularization was preserved in PI3KγKD/KD. In PI3Kγ−/− muscles, endothelial cell proliferation was reduced, apoptosis was increased, and interstitial space was infiltrated with leukocytes but lacked cKit+ progenitor cells that in WT muscles typically surrounded arterioles. PI3Kγ is constitutively expressed by WT EPCs, with expression levels being upregulated by hypoxia. PI3Kγ−/− EPCs showed a defect in proliferation, survival, integration into endothelial networks, and migration toward SDF-1. The dysfunctional phenotype was associated with nuclear constraining of FOXO1, reduced Akt and eNOS phosphorylation, and decreased nitric oxide (NO) production. Pretreatment with an NO donor corrected the migratory defect of PI3Kγ−/− EPCs. PI3KγKD/KD EPCs showed reduced Akt phosphorylation, but constitutive activation of eNOS and preserved proliferation, survival, and migration.Conclusions— We newly demonstrated that PI3Kγ modulates angiogenesis, arteriogenesis, and vasculogenesis by mechanisms independent from its kinase activity.
机译:目的—我们评估了磷脂酰肌醇3-激酶γ(PI3Kγ)在修复性新血管形成和内皮祖细胞(EPC)功能中的作用。方法和结果-缺乏PI3Kγ基因(PI3Kγ-/-)的小鼠诱发了单侧肢体缺血表达无催化活性的突变体(PI3KγKD/ KD)和野生型对照(WT)。与WT相比,PI3Kγ-/-缺血肌肉的毛细血管化和动脉生成减少,导致再灌注延迟,而在PI3KγKD/ KD中保留了修复性新血管形成。在PI3Kγ-/-肌肉中,内皮细胞增殖减少,凋亡增加,并且间质空间被白细胞浸润,但是缺少WT肌肉中通常包围小动脉的cKit +祖细胞。 PI3Kγ由WT EPC组成型表达,其表达水平被缺氧上调。 PI3Kγ-/-EPCs在增殖,存活,整合到内皮网络以及向SDF-1迁移方面表现出缺陷。功能异常的表型与FOXO1的核约束,减少的Akt和eNOS磷酸化以及减少的一氧化氮(NO)产生有关。用NO供体进行的预处理纠正了PI3Kγ-/-EPC的迁移缺陷。 PI3KγKD/ KD EPCs减少了Akt磷酸化,但eNOS的组成性活化并保留了增殖,存活和迁移。结论—我们新证明了PI3Kγ通过独立于其激酶活性的机制调节血管生成,动脉生成和血管生成。

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