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Intracellular adenosine regulates epigenetic programming in endothelial cells to promote angiogenesis

机译:细胞内腺苷调节内皮细胞的表观遗传程序以促进血管生成

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摘要

The nucleoside adenosine is a potent regulator of vascular homeostasis, but it remains unclear how expression or function of the adenosine‐metabolizing enzyme adenosine kinase (ADK) and the intracellular adenosine levels influence angiogenesis. We show here that hypoxia lowered the expression of ADK and increased the levels of intracellular adenosine in human endothelial cells. Knockdown (KD) of ADK elevated intracellular adenosine, promoted proliferation, migration, and angiogenic sprouting in human endothelial cells. Additionally, mice deficient in endothelial ADK displayed increased angiogenesis as evidenced by the rapid development of the retinal and hindbrain vasculature, increased healing of skin wounds, and prompt recovery of arterial blood flow in the ischemic hindlimb. Mechanistically, hypomethylation of the promoters of a series of pro‐angiogenic genes, especially for VEGFR2 in ADK KD cells, was demonstrated by the Infinium methylation assay. Methylation‐specific PCR, bisulfite sequencing, and methylated DNA immunoprecipitation further confirmed hypomethylation in the promoter region of VEGFR2 in ADK‐deficient endothelial cells. Accordingly, loss or inactivation of ADK increased VEGFR2 expression and signaling in endothelial cells. Based on these findings, we propose that ADK downregulation‐induced elevation of intracellular adenosine levels in endothelial cells in the setting of hypoxia is one of the crucial intrinsic mechanisms that promote angiogenesis.
机译:核苷腺苷是血管稳态的有效调节剂,但尚不清楚腺苷代谢酶腺苷激酶(ADK)的表达或功能以及细胞内腺苷水平如何影响血管生成。我们在这里显示缺氧降低了人内皮细胞中ADK的表达并增加了细胞内腺苷的水平。 ADK的Knockdown(KD)升高了细胞内腺苷,促进了人内皮细胞的增殖,迁移和血管新生。此外,缺乏内皮ADK的小鼠表现出增加的血管生成,如视网膜和后脑脉管系统的快速发展,皮肤伤口愈合的增强以及缺血后肢动脉血流的迅速恢复所证明。从机制上讲,通过Infinium甲基化检测证明了一系列促血管生成基因的启动子的甲基化不足,尤其是ADK KD细胞中的VEGFR2。甲基化特异性PCR,亚硫酸氢盐测序和甲基化DNA免疫沉淀进一步证实了ADK缺陷型内皮细胞中VEGFR2启动子区域的甲基化不足。因此,ADK的丧失或失活增加了内皮细胞中VEGFR2的表达和信号传导。基于这些发现,我们认为在缺氧条件下,ADK下调诱导内皮细胞内细胞内腺苷水平升高是促进血管生成的关键内在机制之一。

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