Drusin Salvador I, Suarez Irina P, Gauto Diego F, Rasia Rodolfo M, Moreno Diego M
Instituto de Biología Molecular y Celular de Rosario (CONICET-UNR), Ocampo y Esmeralda, Predio CCT, 2000 Rosario, Argentina; Área Física, Departamento de Químico-Física, Facultad de Ciencias, Bioquímicas y Farmacéuticas, Universidad Nacional de Rosario, Suipacha 531, S2002LRK Rosario, Santa Fe, Argentina.
Instituto de Biología Molecular y Celular de Rosario (CONICET-UNR), Ocampo y Esmeralda, Predio CCT, 2000 Rosario, Argentina.
Arch Biochem Biophys. 2016 Apr 15;596:118-25. doi: 10.1016/j.abb.2016.03.013. Epub 2016 Mar 14.
Double stranded RNA (dsRNA) participates in several biological processes, where RNA molecules acquire secondary structure inside the cell through base complementarity. The double stranded RNA binding domain (dsRBD) is one of the main protein folds that is able to recognize and bind to dsRNA regions. The N-terminal dsRBD of DCL1 in Arabidopsis thaliana (DCL1-1), in contrast to other studied dsRBDs, lacks a stable structure, behaving as an intrinsically disordered protein. DCL1-1 does however recognize dsRNA by acquiring a canonical fold in the presence of its substrate. Here we present a detailed modeling and molecular dynamics study of dsRNA recognition by DCL1-1. We found that DCL1-1 forms stable complexes with different RNAs and we characterized the residues involved in binding. Although the domain shows a binding loop substantially shorter than other homologs, it can still interact with the dsRNA and results in bending of the dsRNA A-type helix. Furthermore, we found that R8, a non-conserved residue located in the first dsRNA binding region, recognizes preferentially mismatched base pairs. We discuss our findings in the context of the function of DCL1-1 within the microRNA processing complex.
双链RNA(dsRNA)参与多种生物学过程,在这些过程中,RNA分子通过碱基互补在细胞内形成二级结构。双链RNA结合结构域(dsRBD)是能够识别并结合dsRNA区域的主要蛋白质折叠结构之一。与其他已研究的dsRBD不同,拟南芥中DCL1的N端dsRBD(DCL1-1)缺乏稳定结构,表现为一种内在无序蛋白。然而,DCL1-1在其底物存在的情况下通过获得典型折叠来识别dsRNA。在此,我们展示了对DCL1-1识别dsRNA的详细建模和分子动力学研究。我们发现DCL1-1与不同的RNA形成稳定复合物,并对参与结合的残基进行了表征。尽管该结构域显示出一个比其他同源物明显更短的结合环,但它仍能与dsRNA相互作用并导致dsRNA A型螺旋弯曲。此外,我们发现位于第一个dsRNA结合区域的非保守残基R8优先识别错配碱基对。我们在微小RNA加工复合物中DCL1-1的功能背景下讨论了我们的发现。