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KCTD 蛋白对 Culllin3 的分子识别:来自实验和计算研究的见解

Molecular recognition of Cullin3 by KCTDs: insights from experimental and computational investigations.

作者信息

Balasco Nicole, Pirone Luciano, Smaldone Giovanni, Di Gaetano Sonia, Esposito Luciana, Pedone Emilia Maria, Vitagliano Luigi

机构信息

Institute of Biostructures and Bioimaging, C.N.R., 80134 Napoli, Italy; Second University of Napoli, 81100 Caserta, Italy.

Institute of Crystallography, C.N.R., 70126 Bari, Italy.

出版信息

Biochim Biophys Acta. 2014 Jul;1844(7):1289-98. doi: 10.1016/j.bbapap.2014.04.006. Epub 2014 Apr 18.

Abstract

Recent investigations have highlighted a key role of the proteins of the KCTD (K-potassium channel tetramerization domain containing proteins) family in several fundamental biological processes. Despite the growing importance of KCTDs, our current understanding of their biophysical and structural properties is very limited. Biochemical characterizations of these proteins have shown that most of them act as substrate adaptor in E3 ligases during protein ubiquitination. Here we present a characterization of the KCTD5-Cullin3 interactions which are mediated by the KCTD5 BTB domain. Isothermal titration calorimetry experiments reveal that KCTD5 avidly binds the Cullin3 (Cul3). The complex presents a 5:5 stoichiometry and a dissociation constant of 59 nM. Molecular modeling and molecular dynamics simulations clearly indicate that the two proteins form a stable (KCTD5-Cul3)(5) pinwheel-shaped heterodecamer in which two distinct KCTD5 subunits cooperate in the binding of each cullin chain. Molecular dynamics simulations indicate that different types of interactions contribute to the stability of the assembly. Interestingly, residues involved in Cul3 recognitions are conserved in the KCTD5 orthologs and paralogs implicated in important biological processes. These residues are also rather well preserved in most of the other KCTD proteins. By using molecular modeling techniques, the entire ubiquitination system including the E3 ligase, the E2 conjugating enzyme and ubiquitin was generated. The analysis of the molecular architecture of this complex machinery provides insights into the ubiquitination processes which involve E3 ligases with a high structural complexity.

摘要

最近的研究突出了KCTD(含钾离子通道四聚化结构域蛋白)家族的蛋白质在几个基本生物学过程中的关键作用。尽管KCTD的重要性日益增加,但我们目前对其生物物理和结构特性的了解非常有限。对这些蛋白质的生化特性分析表明,它们中的大多数在蛋白质泛素化过程中作为E3连接酶中的底物衔接子发挥作用。在此,我们展示了由KCTD5的BTB结构域介导的KCTD5与Cullin3相互作用的特性。等温滴定量热法实验表明,KCTD5能强烈结合Cullin3(Cul3)。该复合物呈现5:5的化学计量比,解离常数为59 nM。分子建模和分子动力学模拟清楚地表明,这两种蛋白质形成了一个稳定的(KCTD5-Cul3)(5)风车状异源十聚体,其中两个不同的KCTD5亚基在每条Cullin链的结合中协同作用。分子动力学模拟表明,不同类型的相互作用有助于该组装体的稳定性。有趣的是,参与Cul3识别的残基在涉及重要生物学过程的KCTD5直系同源物和旁系同源物中是保守的。这些残基在大多数其他KCTD蛋白中也保存得相当好。通过使用分子建模技术,生成了包括E3连接酶、E2缀合酶和泛素在内的整个泛素化系统。对这个复杂机制的分子结构分析为涉及具有高结构复杂性的E3连接酶的泛素化过程提供了见解。

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