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缺氧诱导因子-1α通过功能性拮抗Myc诱导细胞周期停滞。

HIF-1alpha induces cell cycle arrest by functionally counteracting Myc.

作者信息

Koshiji Minori, Kageyama Yukio, Pete Erin A, Horikawa Izumi, Barrett J Carl, Huang L Eric

机构信息

Laboratory of Human Carcinogenesis, NCI, National Institutes of Health, Bethesda, MD 20892, USA.

出版信息

EMBO J. 2004 May 5;23(9):1949-56. doi: 10.1038/sj.emboj.7600196. Epub 2004 Apr 8.

Abstract

Hypoxia induces angiogenesis and glycolysis for cell growth and survival, and also leads to growth arrest and apoptosis. HIF-1alpha, a basic helix-loop-helix PAS transcription factor, acts as a master regulator of oxygen homeostasis by upregulating various genes under low oxygen tension. Although genetic studies have indicated the requirement of HIF-1alpha for hypoxia-induced growth arrest and activation of p21(cip1), a key cyclin-dependent kinase inhibitor controlling cell cycle checkpoint, the mechanism underlying p21(cip1) activation has been elusive. Here we demonstrate that HIF-1alpha, even in the absence of hypoxic signal, induces cell cycle arrest by functionally counteracting Myc, thereby derepressing p21(cip1). The HIF-1alpha antagonism is mediated by displacing Myc binding from p21(cip1) promoter. Neither HIF-1alpha transcriptional activity nor its DNA binding is essential for cell cycle arrest, indicating a divergent role for HIF-1alpha. In keeping with its antagonism of Myc, HIF-1alpha also downregulates Myc-activated genes such as hTERT and BRCA1. Hence, we propose that Myc is an integral part of a novel HIF-1alpha pathway, which regulates a distinct group of Myc target genes in response to hypoxia.

摘要

缺氧诱导血管生成和糖酵解以促进细胞生长和存活,同时也导致生长停滞和凋亡。HIF-1α是一种碱性螺旋-环-螺旋PAS转录因子,通过在低氧张力下上调各种基因,充当氧稳态的主要调节因子。尽管遗传学研究表明HIF-1α对于缺氧诱导的生长停滞和p21(cip1)的激活是必需的,p21(cip1)是控制细胞周期检查点的关键细胞周期蛋白依赖性激酶抑制剂,但其激活的机制一直难以捉摸。在这里,我们证明即使在没有缺氧信号的情况下,HIF-1α也通过在功能上拮抗Myc来诱导细胞周期停滞,从而解除对p21(cip1)的抑制。HIF-1α的拮抗作用是通过将Myc从p21(cip1)启动子上的结合位点置换来介导的。HIF-1α的转录活性及其与DNA的结合对于细胞周期停滞都不是必需的,这表明HIF-1α具有不同的作用。与其对Myc的拮抗作用一致,HIF-1α还下调Myc激活的基因,如hTERT和BRCA1。因此,我们提出Myc是一种新的HIF-1α途径的组成部分,该途径在缺氧反应中调节一组不同的Myc靶基因。

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