首页> 外文期刊>Data in Brief >Observation of an E2 (Ubc9)-homodimer by crystallography
【24h】

Observation of an E2 (Ubc9)-homodimer by crystallography

机译:晶体学观察E2(Ubc9)-同二聚体

获取原文
       

摘要

Post-translational modifications by the small ubiquitin-like modifiers (SUMO), in particular the formation of poly-SUMO-2 and -3 chains, regulates essential cellular functions and its aberration leads to life-threatening diseases (Geoffroy and Hay, 2009) . It was shown previously that the non-covalent interaction between SUMO and the conjugating enzyme (E2) for SUMO, known as Ubc9, is required for poly-SUMO-2/3 chain formation (Knipscheer et al., 2007) . However, the structure of SUMO-Ubc9 non-covalent complex, by itself, could not explain how the poly-SUMO-2/3 chain forms and consequently a Ubc9 homodimer, although never been observed, was proposed for poly-SUMO-2/3 chain formation (Knipscheer et al., 2007) . Here, we solved the crystal structure of a heterotrimer containing a homodimer of Ubc9 and the RWD domain from RWDD3. The asymmetric Ubc9 homodimer is mediated by the N-terminal region of one Ubc9 molecule and a surface near the catalytic Cys of the second Ubc9 molecule (A). This N-terminal surface of Ubc9 that is involved in the homodimer formation also interacts with the RWD domain, the ubiquitin-fold domain of the SUMO activating enzyme (E1), SUMO, and the E3 ligase, RanBP2 (Knipscheer et al., 2007; Tong et al.. 1997; Tatham et al., 2005;?Reverter and Lima, 2005;?Capili and Lima, 2007; Wang et al., 2009, 2010; Wang and Chen, 2010; Alontaga et al., 2015) . The existence of the Ubc9 homodimer in solution is supported by previously published solution NMR studies of rotational correlation time and chemical shift perturbation (Alontaga et al., 2015; Yuan et al., 1999) . Site-directed mutagenesis and biochemical analysis suggests that this dimeric arrangement of Ubc9 is likely important for poly-SUMO chain formation (B and C). The asymmetric Ubc9 homodimer described for the first time in this work could provide the critical missing link in the poly-SUMO chain formation mechanism. The data presented here are related to the research article entitled, “RWD domain as an E2 (Ubc9) interaction module” (Alontaga et al., 2015) . The data of the crystal structure has been deposited to RCSB protein data bank with identifier: 4Y1L.
机译:小泛素样修饰子(SUMO)的翻译后修饰,特别是聚SUMO-2和-3链的形成,调节细胞的基本功能,其畸变导致威胁生命的疾病(Geoffroy and Hay,2009) 。先前显示,SUMO与SUMO的缀合酶(E2)之间的非共价相互作用(称为Ubc9)是聚SUMO-2 / 3链形成所必需的(Knipscheer等,2007)。但是,SUMO-Ubc9非共价复合物的结构本身无法解释poly-SUMO-2 / 3链的形成方式,因此,虽然从未观察到,但有人提出了针对poly-SUMO-2 /的Ubc9同型二聚体。 3链形成(Knipscheer等,2007)。在这里,我们解决了异源三聚体的晶体结构,该异源三聚体包含Ubc9的同二聚体和来自RWDD3的RWD域。不对称的Ubc9同型二聚体由一个Ubc9分子的N末端区域和第二个Ubc9分子的催化Cys附近的表面介导(A)。 Ubc9的此N端表面参与同型二聚体形成,还与RWD结构域,SUMO活化酶(E1)SUMO的泛素折叠结构域和E3连接酶RanBP2相互作用(Knipscheer等,2007 ; Tong等人,1997; Tatham等人,2005; Reverter和Lima,2005; Capili和Lima,2007; Wang等人,2009,2010; Wang和Chen,2010; Alontaga等人,2015 )。 Ubc9同型二聚体在溶液中的存在得到先前发表的旋转相关时间和化学位移扰动的溶液NMR研究的支持(Alontaga等,2015; Yuan等,1999)。定点诱变和生化分析表明,Ubc9的这种二聚体排列对于聚SUMO链形成(B和C)可能很重要。这项工作中首次描述的不对称Ubc9同型二聚体可能提供了聚SUMO链形成机理中的关键缺失环节。此处提供的数据与题为“ RWD域作为E2(Ubc9)交互模块”的研究文章有关(Alontaga等,2015)。晶体结构的数据已存储到RCSB蛋白数据库中,标识符为:4Y1L。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号