Henry Wellcome Building for Molecular Physiology, Old Road Campus, University of Oxford, Oxford OX3 7BN, UK.
J Physiol. 2013 Apr 15;591(8):2027-42. doi: 10.1113/jphysiol.2013.251470. Epub 2013 Feb 11.
Studies of regulation of the haematopoietic growth factor erythropoietin led to the unexpected discovery of a widespread system of direct oxygen sensing that regulates gene expression in animals. The oxygen-sensitive signal is generated by a series of non-haem Fe(II)- and 2-oxoglutarate-dependent dioxygenases that catalyse the post-translational hydroxylation of specific residues in the transcription factor hypoxia-inducible factor (HIF). These hydroxylations promote both oxygen-dependent degradation and oxygen-dependent inactivation of HIF, but are suppressed in hypoxia, leading to the accumulation of HIF and assembly of an active transcriptional complex in hypoxic cells. Hypoxia-inducible factor activates an extensive transcriptional cascade that interfaces with other cell signalling pathways, microRNA networks and RNA-protein translational control systems. The relationship of these cellular signalling pathways to the integrated physiology of oxygen homeostasis and the implication of dysregulating these massive physiological pathways in diseases such as cancer are discussed.
对造血生长因子促红细胞生成素的调控研究意外地发现了一种广泛存在的直接氧感应系统,该系统调节动物的基因表达。氧敏感信号是由一系列非血红素 Fe(II)和 2-氧戊二酸依赖性双加氧酶产生的,这些酶催化转录因子缺氧诱导因子 (HIF)中特定残基的翻译后羟化。这些羟基化促进了 HIF 的氧依赖性降解和氧依赖性失活,但在缺氧条件下被抑制,导致 HIF 的积累和缺氧细胞中活性转录复合物的组装。缺氧诱导因子激活了广泛的转录级联反应,与其他细胞信号通路、microRNA 网络和 RNA-蛋白翻译控制系统相互作用。讨论了这些细胞信号通路与氧稳态的综合生理学之间的关系,以及在癌症等疾病中失调这些大量生理学通路的意义。
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