Choi Kyung-Ok, Lee Taekyong, Lee Naery, Kim Ji-Hyun, Yang Eun Gyeong, Yoon Jung Min, Kim Jin Hwan, Lee Tae Gyu, Park Hyunsung
Department of Life Science, University of Seoul, 90 Cheonnong-dong, Tongdaemun-gu, Seoul 130-743, Korea.
Mol Pharmacol. 2005 Dec;68(6):1803-9. doi: 10.1124/mol.105.015271. Epub 2005 Sep 9.
Hypoxia-induced gene expression is initiated when the hypoxia-inducible factor-1 (HIF-1) alpha subunit is stabilized in response to a lack of oxygen. An HIF-1alpha-specific prolyl-hydroxylase (PHD) catalyzes hydroxylation of the proline-564 and/or -402 residues of HIF-1alpha by an oxygen molecule. The hydroxyproline then interacts with the ubiquitin E3 ligase von Hippel Lindau protein and is degraded by an ubiquitin-dependent proteasome. PHD2 is the most active of three PHD isoforms in hydroxylating HIF-1alpha. Structural analysis showed that the N-terminal region of PHD2 contains a Myeloid translocation protein 8, Nervy, and DEAF1 (MYND)-type zinc finger domain, whereas the catalytic domain is located in its C-terminal region. We found that deletion of the MYND domain increased the activity of both recombinant PHD2 protein and in vitro-translated PHD2. The zinc chelator N,N,N',N'-tetrakis(2-pyridylmethyl)ethylenediamine augmented the activity of wild-type PHD2-F but not that of PHD2 lacking the MYND domain, confirming that the zinc finger domain is inhibitory. Overexpression of PHD2 lacking the MYND domain caused a greater reduction in the stability and function of HIF-1alpha than did overexpression of wild-type PHD2, indicating that the MYND domain also inhibits the catalytic activity of PHD2 in vivo.
当缺氧诱导因子-1(HIF-1)α亚基因缺氧而稳定时,缺氧诱导基因表达启动。一种HIF-1α特异性脯氨酰羟化酶(PHD)催化HIF-1α的脯氨酸-564和/或-402残基被氧分子羟基化。然后,羟脯氨酸与泛素E3连接酶冯·希佩尔·林道蛋白相互作用,并通过泛素依赖性蛋白酶体降解。PHD2是三种PHD同工型中羟化HIF-1α活性最高的。结构分析表明,PHD2的N端区域包含一个髓样易位蛋白8、Nervy和DEAF1(MYND)型锌指结构域,而催化结构域位于其C端区域。我们发现,缺失MYND结构域可增加重组PHD2蛋白和体外翻译的PHD2的活性。锌螯合剂N,N,N',N'-四(2-吡啶甲基)乙二胺增强了野生型PHD2-F的活性,但不增强缺失MYND结构域的PHD2的活性,证实锌指结构域具有抑制作用。与野生型PHD2的过表达相比,缺失MYND结构域的PHD2的过表达导致HIF-1α的稳定性和功能下降幅度更大,表明MYND结构域在体内也抑制PHD2的催化活性。