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不同HMGI/Y家族蛋白的DNA复合物的独特组织形式及其在有丝分裂磷酸化时的调节。

Distinct organization of DNA complexes of various HMGI/Y family proteins and their modulation upon mitotic phosphorylation.

作者信息

Piekielko A, Drung A, Rogalla P, Schwanbeck R, Heyduk T, Gerharz M, Bullerdiek J, Wiśniewski J R

机构信息

III. Zoologisches Institut-Entwicklungsbiologie, Universität Göttingen, D-37073 Göttingen, Germany.

出版信息

J Biol Chem. 2001 Jan 19;276(3):1984-92. doi: 10.1074/jbc.M004065200. Epub 2000 Oct 16.

Abstract

High mobility group (HMG) proteins HMGI, HMGY, HMGI-C, and Chironomus HMGI are DNA-binding proteins thought to modulate the assembly and the function of transcriptional complexes. Each of these proteins contains three DNA-binding domains (DBD), properties of which appear to be regulated by phosphorylation. High levels of these proteins are characteristic for rapidly dividing cells in embryonic tissues and tumors. On the basis of their occurrence, specific functions for each of these proteins have been postulated. In this study we demonstrate differences in the nature of contacts of these proteins with promoter region of the interferon-beta gene. We show that HMGI and HMGY interact with this DNA via three DBDs, whereas HMGI-C and Chironomus HMGI bind to this DNA using only two domains. Phosphorylation of HMGY protein by Cdc2 kinase leads to impairing of contacts between the N-terminally located DBD and a single promoter element. The perturbations in the architecture of the protein.DNA complexes involve changes in the degree of unbending of the intrinsically bent IFNbeta promoter. Our results provide first insights into the molecular basis of functional specificity of proteins of the HMGI/Y family and their regulation by phosphorylation.

摘要

高迁移率族(HMG)蛋白HMGI、HMGY、HMGI-C和摇蚊HMGI是DNA结合蛋白,被认为可调节转录复合物的组装和功能。这些蛋白中的每一种都包含三个DNA结合结构域(DBD),其特性似乎受磷酸化调节。这些蛋白的高水平是胚胎组织和肿瘤中快速分裂细胞的特征。基于它们的存在,已推测出这些蛋白各自的特定功能。在本研究中,我们证明了这些蛋白与干扰素-β基因启动子区域接触性质的差异。我们表明,HMGI和HMGY通过三个DBD与该DNA相互作用,而HMGI-C和摇蚊HMGI仅使用两个结构域与该DNA结合。Cdc2激酶对HMGY蛋白的磷酸化导致位于N端的DBD与单个启动子元件之间的接触受损。蛋白质-DNA复合物结构的扰动涉及内在弯曲的IFNβ启动子的解弯曲程度的变化。我们的结果首次揭示了HMGI/Y家族蛋白功能特异性及其磷酸化调节的分子基础。

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