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Regulation of angiogenesis by oxygen sensing mechanisms

机译:通过氧气感应机制调节血管生成

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The choices for blood vessels to undergo angiogenesis or stay quiescent are mostly determined by the status of tissue oxygenation. A major link between tissue hypoxia and active angiogenesis is the accumulation of hypoxia-inducible factor (HIF)-α subunits which play a major role in the transcriptional activation of genes encoding angiogenic factors. HIF-α abundance is negatively regulated by a subfamily of dioxygenases referred to as prolyl hydroxylase domain-containing proteins (PHDs) which use O2 as a substrate to hydroxylate HIF-α subunits and hence tag them for rapid degradation. Under hypoxic conditions, HIF-α subunits accumulate due to reduced hydroxylation efficiency and form transcriptionally active heterodimers with HIF-1? to activate the expression of angiogenic factors and other proteins important for cellular adaptation to hypoxia. Angiogenesis is regulated by a combination of at least two different mechanisms. The paracrine mechanism is mediated by non-endothelial expression of angiogenic factors such as vascular endothelial growth factor (VEGF)-A, which in turn interact with endothelial cell surface receptors to initiate angiogenic activities. In the autocrine mechanism, endothelial cell themselves are induced to express VEGF-A, which collaborate with the paracrine mechanism to support angiogenesis and protect vascular integrity. Because of critical roles of PHDs and HIFs in regulating angiogenic activities, studies are underway to assess their candidacy as targets for angiogenesis therapies.
机译:血管进行血管生成或保持静止的选择主要取决于组织氧合作用的状态。组织缺氧与活性血管生成之间的主要联系是缺氧诱导因子(HIF)-α亚基的积累,其在编码血管生成因子的基因的转录激活中起主要作用。 HIF-α丰度受称为双氧合酶的含亚脯氨酰羟化酶结构域蛋白(PHD)的负家族调节,该蛋白以O2为底物将HIF-α亚基羟化,从而对其进行标记以进行快速降解。在缺氧条件下,HIF-α亚基由于羟基化效率降低而积累,并与HIF-1α形成转录活性异二聚体。激活血管生成因子和其他蛋白质的表达,这些蛋白质对于细胞适应缺氧至关重要。血管生成受至少两种不同机制的组合调节。旁分泌机制是由血管生成因子(例如血管内皮生长因子(VEGF)-A)的非内皮表达介导的,而血管内皮生长因子(VEGF)-A与内皮细胞表面受体相互作用,从而启动血管生成活性。在自分泌机制中,内皮细胞本身被诱导表达VEGF-A,而VEGF-A与旁分泌机制协同作用以支持血管生成并保护血管完整性。由于PHD和HIF在调节血管生成活动中的关键作用,正在进行研究以评估其作为血管生成治疗靶点的候选资格。

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