Augustyniak Rafal, Stanek Jan, Colaux Henri, Bodenhausen Geoffrey, Koźmiński Wiktor, Herrmann Torsten, Ferrage Fabien
Département de chimie, Ecole Normale Supérieure - PSL Research University, 24 rue Lhomond, 75005, Paris, France.
Sorbonne Universités, UPMC Université Paris 6, 4 Place Jussieu, 75005, Paris, France.
J Biomol NMR. 2016 Jan;64(1):27-37. doi: 10.1007/s10858-015-0002-0. Epub 2015 Nov 27.
Nuclear magnetic resonance spectroscopy (NMR) can provide a great deal of information about structure and dynamics of biomolecules. The quality of an NMR structure strongly depends on the number of experimental observables and on their accurate conversion into geometric restraints. When distance restraints are derived from nuclear Overhauser effect spectroscopy (NOESY), stereo-specific assignments of prochiral atoms can contribute significantly to the accuracy of NMR structures of proteins and nucleic acids. Here we introduce a series of NOESY-based pulse sequences that can assist in the assignment of chiral CHD methylene protons in random fractionally deuterated proteins. Partial deuteration suppresses spin-diffusion between the two protons of CH2 groups that normally impedes the distinction of cross-relaxation networks for these two protons in NOESY spectra. Three and four-dimensional spectra allow one to distinguish cross-relaxation pathways involving either of the two methylene protons so that one can obtain stereospecific assignments. In addition, the analysis provides a large number of stereospecific distance restraints. Non-uniform sampling was used to ensure optimal signal resolution in 4D spectra and reduce ambiguities of the assignments. Automatic assignment procedures were modified for efficient and accurate stereospecific assignments during automated structure calculations based on 3D spectra. The protocol was applied to calcium-loaded calbindin D9k. A large number of stereospecific assignments lead to a significant improvement of the accuracy of the structure.
核磁共振波谱法(NMR)能够提供大量有关生物分子结构和动力学的信息。NMR结构的质量在很大程度上取决于实验可观测值的数量以及它们准确转换为几何约束的程度。当通过核Overhauser效应光谱法(NOESY)获得距离约束时,前手性原子的立体特异性归属对蛋白质和核酸NMR结构的准确性有显著贡献。在此,我们介绍了一系列基于NOESY的脉冲序列,这些序列可辅助对随机部分氘代蛋白质中的手性CHD亚甲基质子进行归属。部分氘代抑制了CH2基团两个质子之间的自旋扩散,这种自旋扩散通常会阻碍在NOESY谱中区分这两个质子的交叉弛豫网络。三维和四维谱使人们能够区分涉及两个亚甲基质子中任何一个的交叉弛豫途径,从而获得立体特异性归属。此外,该分析提供了大量立体特异性距离约束。使用非均匀采样以确保在四维谱中具有最佳信号分辨率并减少归属的模糊性。在基于三维谱的自动结构计算过程中,对自动归属程序进行了修改,以实现高效且准确的立体特异性归属。该方案应用于钙负载的钙结合蛋白D9k。大量的立体特异性归属显著提高了结构的准确性。