Brutscher B, Boisbouvier J, Kupce E, Tisné C, Dardel F, Marion D, Simorre J P
Institut de Biologie Structurale-Jean-Pierre Ebel, CNRS-CEA, Grenoble, France.
J Biomol NMR. 2001 Feb;19(2):141-51. doi: 10.1023/a:1008340210079.
Extensive spectral overlap presents a major problem for the NMR study of large RNAs. Here we present NMR techniques for resolution enhancement and spectral simplification of fully 13C labelled RNA. High-resolution 1H-13C correlation spectra are obtained by combining TROSY-type experiments with multiple-band-selective homonuclear 13C decoupling. An additional C-C filter sequence performs base-type-selective spectral editing. Signal loss during the filter is significantly reduced because of TROSY-type spin evolution. These tools can be inserted in any 13C-edited multidimensional NMR experiment. As an example we have chosen the 13C-edited NOESY which is a crucial experiment for sequential resonance assignment of RNA. Application to a 33-nucleotide RNA aptamer and a 76-nucleotide tRNA illustrates the potential of this new methodology.
广泛的光谱重叠给大型RNA的核磁共振(NMR)研究带来了一个主要问题。在此,我们介绍用于增强完全13C标记RNA的分辨率和简化光谱的NMR技术。通过将TROSY型实验与多波段选择性同核13C去耦相结合,可获得高分辨率的1H-13C相关光谱。一个额外的C-C滤波序列可进行碱基类型选择性光谱编辑。由于TROSY型自旋演化,滤波过程中的信号损失显著降低。这些工具可插入任何13C编辑的多维NMR实验中。作为示例,我们选择了13C编辑的NOESY,它是RNA序列共振归属的关键实验。将其应用于一个33个核苷酸的RNA适体和一个76个核苷酸的tRNA,说明了这种新方法的潜力。