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一种生长抑制性BTB/POZ结构域蛋白与E2F转录因子的DP组分的整合。

Integration of a growth-suppressing BTB/POZ domain protein with the DP component of the E2F transcription factor.

作者信息

de la Luna S, Allen K E, Mason S L, La Thangue N B

机构信息

Division of Biochemistry and Molecular Biology, Davidson Building, University of Glasgow, Glasgow G12 8QQ, UK.

出版信息

EMBO J. 1999 Jan 4;18(1):212-28. doi: 10.1093/emboj/18.1.212.

Abstract

Transcription factor E2F plays an important role in orchestrating early cell cycle progression through its ability to co-ordinate and integrate the cell cycle with the transcription apparatus. Physiological E2F arises when members of two distinct families of proteins interact as E2F-DP heterodimers, in which the E2F component mediates transcriptional activation and the physical interaction with pocket proteins, such as the tumour suppressor protein pRb. In contrast, a discrete role for the DP subunit has not been defined. We report the identification and characterization of DIP, a novel mammalian protein that can interact with the DP component of E2F. DIP was found to contain a BTB/POZ domain and shows significant identity with the Drosophila melanogaster germ cell-less gene product. In mammalian cells, DIP is distributed in a speckled pattern at the nuclear envelope region, and can direct certain DP subunits and the associated heterodimeric E2F partner into a similar pattern. DIP-dependent growth arrest is modulated by the expression of DP proteins, and mutant derivatives of DIP that are compromised in cell cycle arrest exhibit reduced binding to the DP subunit. Our study defines a new pathway of growth control that is integrated with the E2F pathway through the DP subunit of the heterodimer.

摘要

转录因子E2F通过协调细胞周期与转录装置,并将二者整合的能力,在早期细胞周期进程中发挥重要作用。当两个不同蛋白质家族的成员作为E2F-DP异二聚体相互作用时,会产生生理性E2F,其中E2F组分介导转录激活以及与口袋蛋白(如肿瘤抑制蛋白pRb)的物理相互作用。相比之下,DP亚基的具体作用尚未明确。我们报告了DIP的鉴定和特征,DIP是一种新型哺乳动物蛋白,可与E2F的DP组分相互作用。发现DIP含有一个BTB/POZ结构域,与果蝇无生殖细胞基因产物具有显著同源性。在哺乳动物细胞中,DIP以斑点状分布于核膜区域,并可将某些DP亚基及相关异二聚体E2F伴侣引导至类似分布模式。DIP依赖性生长停滞受DP蛋白表达的调节,在细胞周期停滞方面存在缺陷的DIP突变衍生物与DP亚基的结合能力降低。我们的研究定义了一条新的生长控制途径,该途径通过异二聚体的DP亚基与E2F途径整合。

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