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Dynamic profiling of double-stranded RNA binding proteins

机译:动态分析双链RNA结合蛋白

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Double-stranded (ds) RNA is a key player in numerous biological activities in cells, including RNA interference, anti-viral immunity and mRNA transport. The class of proteins responsible for recognizing dsRNA is termed double-stranded RNA binding proteins (dsRBP). However, little is known about the molecular mechanisms underlying the interaction between dsRBPs and dsRNA. Here we examined four human dsRBPs, ADAD2, TRBP, Staufen 1 and ADAR1 on six dsRNA substrates that vary in length and secondary structure. We combined single molecule pull-down (SiMPull), single molecule protein-induced fluorescence enhancement (smPIFE) and molecular dynamics (MD) simulations to investigate the dsRNA-dsRBP interactions. Our results demonstrate that despite the highly conserved dsRNA binding domains, the dsRBPs exhibit diverse substrate specificities and dynamic properties when in contact with different RNA substrates. While TRBP and ADAR1 have a preference for binding simple duplex RNA, ADAD2 and Staufen1 display higher affinity to highly structured RNA substrates. Upon interaction with RNA substrates, TRBP and Staufen1 exhibit dynamic sliding whereas two deaminases ADAR1 and ADAD2 mostly remain immobile when bound. MD simulations provide a detailed atomic interaction map that is largely consistent with the affinity differences observed experimentally. Collectively, our study highlights the diverse nature of substrate specificity and mobility exhibited by dsRBPs that may be critical for their cellular function.
机译:双链(ds)RNA是细胞中众多生物学活动的关键参与者,包括RNA干扰,抗病毒免疫和mRNA转运。负责识别dsRNA的蛋白质类别称为双链RNA结合蛋白(dsRBP)。但是,对于dsRBP和dsRNA之间相互作用的分子机制了解甚少。在这里,我们检查了六个长度和二级结构不同的dsRNA底物上的四个人dsRBP,ADAD2,TRBP,Staufen 1和ADAR1。我们结合了单分子下拉(SiMPull),单分子蛋白质诱导的荧光增强(smPIFE)和分子动力学(MD)模拟来研究dsRNA-dsRBP的相互作用。我们的结果表明,尽管dsRNA结合域高度保守,但dsRBP与不同的RNA底物接触时仍表现出多种底物特异性和动态特性。尽管TRBP和ADAR1倾向于结合简单的双链RNA,但ADAD2和Staufen1对高度结构化的RNA底物显示出更高的亲和力。与RNA底物相互作用时,TRBP和Staufen1表现出动态滑动,而两个脱氨基酶ADAR1和ADAD2结合时大部分保持不动。 MD模拟提供了详细的原子相互作用图,该图与实验观察到的亲和力差异基本一致。总的来说,我们的研究突出了dsRBPs可能对细胞功能至关重要的底物特异性和迁移性的多样性。

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