Phelps Kelly J, Tran Kiet, Eifler Tristan, Erickson Anna I, Fisher Andrew J, Beal Peter A
Department of Chemistry, University of California, One Shields Avenue, Davis, CA 95616, USA.
Department of Molecular and Cellular Biology, University of California, One Shields Avenue, Davis, CA 95616, USA.
Nucleic Acids Res. 2015 Jan;43(2):1123-32. doi: 10.1093/nar/gku1345. Epub 2015 Jan 6.
Adenosine deaminases acting on RNA (ADARs) hydrolytically deaminate adenosines (A) in a wide variety of duplex RNAs and misregulation of editing is correlated with human disease. However, our understanding of reaction selectivity is limited. ADARs are modular enzymes with multiple double-stranded RNA binding domains (dsRBDs) and a catalytic domain. While dsRBD binding is understood, little is known about ADAR catalytic domain/RNA interactions. Here we use a recently discovered RNA substrate that is rapidly deaminated by the isolated human ADAR2 deaminase domain (hADAR2-D) to probe these interactions. We introduced the nucleoside analog 8-azanebularine (8-azaN) into this RNA (and derived constructs) to mechanistically trap the protein-RNA complex without catalytic turnover for EMSA and ribonuclease footprinting analyses. EMSA showed that hADAR2-D requires duplex RNA and is sensitive to 2'-deoxy substitution at nucleotides opposite the editing site, the local sequence and 8-azaN nucleotide positioning on the duplex. Ribonuclease V1 footprinting shows that hADAR2-D protects ∼ 23 nt on the edited strand around the editing site in an asymmetric fashion (∼ 18 nt on the 5' side and ∼ 5 nt on the 3' side). These studies provide a deeper understanding of the ADAR catalytic domain-RNA interaction and new tools for biophysical analysis of ADAR-RNA complexes.
作用于RNA的腺苷脱氨酶(ADARs)可对多种双链RNA中的腺苷(A)进行水解脱氨,而编辑失调与人类疾病相关。然而,我们对反应选择性的理解有限。ADARs是具有多个双链RNA结合结构域(dsRBDs)和一个催化结构域的模块化酶。虽然对dsRBD结合已有了解,但对ADAR催化结构域与RNA的相互作用却知之甚少。在这里,我们使用一种最近发现的RNA底物,该底物可被分离的人ADAR2脱氨酶结构域(hADAR2-D)快速脱氨,以探究这些相互作用。我们将核苷类似物8-氮杂nebularine(8-azaN)引入该RNA(及其衍生构建体),从机制上捕获蛋白质-RNA复合物,而不发生催化周转,用于电泳迁移率变动分析(EMSA)和核糖核酸酶足迹分析。EMSA表明,hADAR2-D需要双链RNA,并且对编辑位点对面核苷酸的2'-脱氧取代、局部序列以及双链上8-azaN核苷酸的定位敏感。核糖核酸酶V1足迹分析表明,hADAR2-D以不对称方式(5'侧约18 nt,3'侧约5 nt)在编辑位点周围的编辑链上保护约23 nt。这些研究为深入了解ADAR催化结构域与RNA的相互作用提供了帮助,并为ADAR-RNA复合物的生物物理分析提供了新工具。