Carlon Azzurra, Ravera Enrico, Hennig Janosch, Parigi Giacomo, Sattler Michael, Luchinat Claudio
Magnetic Resonance Center "CERM" and Department of Chemistry "Ugo Schiff", University of Florence and Magnetic Resonance Consortium (CIRMMP) , Via L. Sacconi 6, 50019 Sesto Fiorentino, Firenze, Italy.
Center for Integrated Protein Science Munich (CIPSM) at Department Chemie, Technische Universität München , 85747 Garching, Germany.
J Am Chem Soc. 2016 Feb 10;138(5):1601-10. doi: 10.1021/jacs.5b11598. Epub 2016 Jan 29.
Integrated experimental approaches play an increasingly important role in structural biology, taking advantage of the complementary information provided by different techniques. In particular, the combination of NMR data with X-ray diffraction patterns may provide accurate and precise information about local conformations not available from average-resolution X-ray structures alone. Here, we refined the structure of a ternary protein-protein-RNA complex comprising three domains, Sxl and Unr, bound to a single-stranded region derived in the msl2 mRNA. The joint X-ray and NMR refinement reveals that-despite the poor quality of the fit found for the original structural model-the NMR data can be largely accommodated within the uncertainty in the atom positioning (structural noise) from the primary X-ray data and that the overall domain arrangements and binding interfaces are preserved on passing from the crystalline state to the solution. The refinement highlights local conformational differences, which provide additional information on specific features of the structure. For example, conformational dynamics and heterogeneity observed at the interface between the CSD1 and the Sxl protein components in the ternary complex are revealed by the combination of NMR and crystallographic data. The joint refinement protocol offers unique opportunities to detect structural differences arising from various experimental conditions and reveals static or dynamic differences in the conformation of the biomolecule between the solution and the crystals.
综合实验方法在结构生物学中发挥着越来越重要的作用,它利用不同技术提供的互补信息。特别是,核磁共振(NMR)数据与X射线衍射图谱的结合可以提供关于局部构象的准确而精确的信息,而这些信息仅从平均分辨率的X射线结构中是无法获得的。在这里,我们优化了一个三元蛋白质-蛋白质-RNA复合物的结构,该复合物包含三个结构域,即Sxl和Unr,它们与源自msl2 mRNA的单链区域结合。X射线和NMR联合优化表明,尽管原始结构模型的拟合质量较差,但NMR数据在很大程度上可以纳入来自原始X射线数据的原子定位不确定性(结构噪声)范围内,并且从晶体状态转变到溶液状态时,整体结构域排列和结合界面得以保留。该优化突出了局部构象差异,这些差异为结构的特定特征提供了额外信息。例如,通过NMR和晶体学数据的结合,揭示了三元复合物中CSD1和Sxl蛋白质组分之间界面处观察到的构象动力学和异质性。联合优化方案为检测各种实验条件引起的结构差异提供了独特的机会,并揭示了生物分子在溶液和晶体之间构象的静态或动态差异。