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(ADP-核糖基)水解酶:差异底物识别和抑制的结构基础。

(ADP-ribosyl)hydrolases: Structural Basis for Differential Substrate Recognition and Inhibition.

机构信息

Sir William Dunn School of Pathology, Oxford University, South Parks Road, Oxford OX1 3RE, UK.

University of Illinois, Department of Chemistry, Urbana, IL 61801, USA.

出版信息

Cell Chem Biol. 2018 Dec 20;25(12):1533-1546.e12. doi: 10.1016/j.chembiol.2018.11.001. Epub 2018 Nov 21.

Abstract

Protein ADP-ribosylation is a highly dynamic post-translational modification. The rapid turnover is achieved, among others, by ADP-(ribosyl)hydrolases (ARHs), an ancient family of enzymes that reverses this modification. Recently ARHs came into focus due to their role as regulators of cellular stresses and tumor suppressors. Here we present a comprehensive structural analysis of the enzymatically active family members ARH1 and ARH3. These two enzymes have very distinct substrate requirements. Our data show that binding of the adenosine ribose moiety is highly diverged between the two enzymes, whereas the active sites harboring the distal ribose closely resemble each other. Despite this apparent similarity, we elucidate the structural basis for the selective inhibition of ARH3 by the ADP-ribose analogues ADP-HPD and arginine-ADP-ribose. Together, our biochemical and structural work provides important insights into the mode of enzyme-ligand interaction, helps to understand differences in their catalytic behavior, and provides useful tools for targeted drug design.

摘要

蛋白质 ADP-核糖基化是一种高度动态的翻译后修饰。这种快速周转除其他外,是通过 ADP-(核糖基)水解酶 (ARH) 实现的,这是一种古老的酶家族,可逆转这种修饰。最近,由于它们作为细胞应激和肿瘤抑制因子调节剂的作用,ARHs 成为研究焦点。在这里,我们对具有酶活性的家族成员 ARH1 和 ARH3 进行了全面的结构分析。这两种酶具有非常不同的底物要求。我们的数据表明,两个酶之间的腺苷核糖部分的结合高度不同,而含有远端核糖的活性位点彼此非常相似。尽管存在这种明显的相似性,但我们阐明了 ADP-核糖类似物 ADP-HPD 和精氨酸-ADP-核糖对 ARH3 选择性抑制的结构基础。总之,我们的生化和结构研究为酶-配体相互作用的模式提供了重要的见解,有助于理解它们在催化行为上的差异,并为靶向药物设计提供了有用的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/886b/6309922/25536e298a3c/fx1.jpg

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