Department of Physics, University of Illinois at Urbana-Champaign , Urbana, Illinois 61801, United States.
Biochemistry. 2014 Jun 3;53(21):3457-66. doi: 10.1021/bi500352s. Epub 2014 May 21.
Recognition of double-stranded (ds) RNA is an important part of many cellular pathways, including RNA silencing, viral recognition, RNA editing, processing, and transport. dsRNA recognition is often achieved by dsRNA binding domains (dsRBDs). We use atomistic molecular dynamics simulations to examine the binding interface of the transactivation response RNA binding protein (TRBP) dsRBDs to dsRNA substrates. Our results explain the exclusive selectivity of dsRBDs toward dsRNA and against DNA-RNA hybrid and dsDNA duplexes. We also provide corresponding experimental evidence. The dsRNA duplex is recognized by dsRBDs through the A-form of three duplex grooves and by the chemical properties of RNA bases, which have 2'-hydroxyl groups on their sugar rings. Our simulations show that TRBP dsRBD discriminates dsRNA- from DNA-containing duplexes primarily through interactions at two duplex grooves. The simulations also reveal that the conformation of the DNA-RNA duplex can be altered by dsRBD proteins, resulting in a weak binding of dsRBDs to DNA-RNA hybrids. Our study reveals the structural and molecular basis of protein-RNA interaction that gives rise to the observed substrate specificity of dsRNA binding proteins.
双链 RNA(dsRNA)的识别是许多细胞途径的重要组成部分,包括 RNA 沉默、病毒识别、RNA 编辑、加工和运输。dsRNA 的识别通常通过 dsRNA 结合结构域(dsRBD)来实现。我们使用原子分子动力学模拟来研究转录激活反应 RNA 结合蛋白(TRBP)dsRBD 与 dsRNA 底物的结合界面。我们的结果解释了 dsRBD 对 dsRNA 的独特选择性,以及对 DNA-RNA 杂交和 dsDNA 双链体的选择性。我们还提供了相应的实验证据。dsRNA 双链体通过 A 型三个双链体沟和 RNA 碱基的化学性质被 dsRBD 识别,其糖环上有 2'-羟基。我们的模拟表明,TRBP dsRBD 通过两个双链体沟的相互作用主要区分 dsRNA-和含 DNA 的双链体。模拟还表明,dsRBD 蛋白可以改变 DNA-RNA 杂交体的构象,导致 dsRBD 与 DNA-RNA 杂交体的结合较弱。我们的研究揭示了蛋白质-RNA 相互作用的结构和分子基础,这导致了观察到的 dsRNA 结合蛋白的底物特异性。