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小泛素样修饰(SUMOylation)通过TRPS1调节转录抑制。

SUMOylation modulates transcriptional repression by TRPS1.

作者信息

Kaiser Frank J, Lüdecke Hermann-Josef, Weger Stefan

机构信息

Institut für Humangenetik, Universitätsklinikum Essen, D-45122 Essen, Germany.

出版信息

Biol Chem. 2007 Apr;388(4):381-90. doi: 10.1515/BC.2007.051.

Abstract

Mutations or deletions of the TRPS1 gene on human chromosome 8q.24.1 cause the tricho-rhino-phalangeal syndromes (TRPS), which are characterized by craniofacial and skeletal malformations. The gene encodes a transcription factor that functions as a repressor for GATA-mediated transcription. The activity of transcription factors is often controlled by posttranslational modifications. We show here that TRPS1 is SUMOylated at multiple sites, both in vivo and in vitro, through interaction with UBC9. Overexpression of wild-type UBC9 enhances TRPS1-mediated transcriptional repression. In contrast, a SUMOylation-deficient UBC9 mutant, which nevertheless still binds TRPS1, has no effect. Of the five potential TRPS1 SUMO-target sites, which were predicted based on a minimal SUMOylation consensus sequence (MCS), two are located within the C-terminal repression domain (RD) at lysine residues 1192 (termed S4) and 1201 (S5). S5 was identified as the major acceptor site within this region, and a point mutation of S5 strongly decreases TRPS1-RD-mediated transcriptional repression. Additional mutation of S4 results in abrogation of SUMOylation at the TRPS1-RD and almost complete loss of the repressive properties of TRPS1. These results identify SUMOylation at the TRPS1-RD as a major mechanism that regulates the function of TRPS1.

摘要

人类8号染色体q.24.1上TRPS1基因的突变或缺失会导致毛发-鼻-指综合征(TRPS),其特征为颅面和骨骼畸形。该基因编码一种转录因子,作为GATA介导转录的阻遏物发挥作用。转录因子的活性通常受翻译后修饰的控制。我们在此表明,TRPS1在体内和体外均通过与UBC9相互作用在多个位点发生SUMO化修饰。野生型UBC9的过表达增强了TRPS1介导的转录抑制作用。相比之下,一个SUMO化缺陷的UBC9突变体,尽管仍能与TRPS1结合,但却没有效果。基于最小SUMO化共有序列(MCS)预测的五个潜在TRPS1 SUMO靶位点中,有两个位于C端抑制结构域(RD)内的赖氨酸残基1192(称为S4)和1201(S5)处。S5被确定为该区域内的主要受体位点,S5的点突变会强烈降低TRPS1-RD介导的转录抑制作用。S4的额外突变导致TRPS1-RD处SUMO化修饰的消除以及TRPS1抑制特性几乎完全丧失。这些结果表明TRPS1-RD处的SUMO化修饰是调节TRPS1功能的主要机制。

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