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一个类似SH3结构域的串联体参与了KIN17中的RNA结合,KIN17是一种在对基因毒素产生反应时被激活的人类蛋白质。

A tandem of SH3-like domains participates in RNA binding in KIN17, a human protein activated in response to genotoxics.

作者信息

le Maire Albane, Schiltz Marc, Stura Enrico A, Pinon-Lataillade Ghislaine, Couprie Joël, Moutiez Mireille, Gondry Muriel, Angulo Jaime F, Zinn-Justin Sophie

机构信息

CEA, DSV, DIEP, Gif-sur-Yvette, F-91191, France.

出版信息

J Mol Biol. 2006 Dec 8;364(4):764-76. doi: 10.1016/j.jmb.2006.09.033. Epub 2006 Sep 16.

Abstract

The human KIN17 protein is an essential nuclear protein conserved from yeast to human and expressed ubiquitously in mammals. Suppression of Rts2, the yeast equivalent of gene KIN17, renders the cells unviable, and silencing the human KIN17 gene slows cell growth dramatically. Moreover, the human gene KIN17 is up-regulated following exposure to ionizing radiations and UV light, depending on the integrity of the human global genome repair machinery. Its ectopic over-expression blocks S-phase progression by inhibiting DNA synthesis. The C-terminal region of human KIN17 is crucial for this anti-proliferation effect. Its high-resolution structure, presented here, reveals a tandem of SH3-like subdomains. This domain binds to ribonucleotide homopolymers with the same preferences as the whole protein. Analysis of its structure complexed with tungstate shows structural variability within the domain. The interaction with tungstate is mediated by several lysine residues located within a positively charged groove at the interface between the two subdomains. This groove could be the site of interaction with RNA, since mutagenesis of two of these highly conserved lysine residue weakens RNA binding.

摘要

人类KIN17蛋白是一种从酵母到人类都保守的必需核蛋白,在哺乳动物中普遍表达。抑制基因KIN17在酵母中的对应物Rts2会使细胞无法存活,而沉默人类KIN17基因会显著减缓细胞生长。此外,根据人类全基因组修复机制的完整性,人类基因KIN17在暴露于电离辐射和紫外线后会上调。其异位过表达通过抑制DNA合成来阻断S期进程。人类KIN17的C末端区域对这种抗增殖作用至关重要。此处展示的其高分辨率结构揭示了一个类似SH3的亚结构域串联。该结构域与核糖核苷酸同聚物结合的偏好与整个蛋白质相同。对其与钨酸盐复合的结构分析显示该结构域内存在结构变异性。与钨酸盐的相互作用由位于两个亚结构域之间界面处带正电荷凹槽内的几个赖氨酸残基介导。这个凹槽可能是与RNA相互作用的位点,因为对这些高度保守的赖氨酸残基中的两个进行诱变会削弱RNA结合。

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