Relaxation-optimized NMR spectroscopy of methylene groups in proteins and nucleic acids

被引:69
|
作者
Miclet, E [1 ]
Williams, DC [1 ]
Clore, GM [1 ]
Bryce, DL [1 ]
Boisbouvier, J [1 ]
Bax, A [1 ]
机构
[1] NIDDKD, Phys Chem Lab, Natl Inst Hlth, Bethesda, MD 20892 USA
关键词
D O I
10.1021/ja047904v
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
A large fraction of hydrogens in proteins and nucleic acids is of the methylene type. Their detailed study, however, in terms of structure and dynamics by NMR spectroscopy is hampered by their fast relaxation properties, which give rise to low sensitivity and resolution. It is demonstrated that six different relaxation interference processes, involving H-1-C-13 and H-1-H-1 dipolar interactions and H-1 and C-13 chemical shift anisotropy, can be used simultaneously to mitigate these problems effectively. The approach is applicable to the majority of NMR experiments commonly used to study side chain and backbone conformation. For proteins, its efficiency is evaluated quantitatively for two samples: the third IgG-bincling domain from Streptococcal Protein G and the protein calmodulin complexed with a 26-residue target peptide. Gains in both resolution and sensitivity by up to factors of 3.2 and 2.0, respectively, are observed for Gly residues at high magnetic field strengths, but even at much lower fields gains remain substantial. The resolution enhancement obtained for methylene groups makes possible a detailed analysis of spectral regions commonly considered inaccessible due to spectral crowding. For DNA, the high resolution now obtainable for C-5' sites permits an H-5'/H-5"-based sequential NOE assignment procedure, complementary to the conventional base-H-1'/H-2'/H-2" pathway.
引用
收藏
页码:10560 / 10570
页数:11
相关论文
共 50 条
  • [41] Rotational diffusion tensor of nucleic acids from 13C NMR relaxation
    Jerome Boisbouvier
    Zhengrong Wu
    Akira Ono
    Masatsune Kainosho
    Ad Bax
    Journal of Biomolecular NMR, 2003, 27 : 133 - 142
  • [42] Rotational diffusion tensor of nucleic acids from 13C NMR relaxation
    Boisbouvier, J
    Wu, ZR
    Ono, A
    Kainosho, M
    Bax, A
    JOURNAL OF BIOMOLECULAR NMR, 2003, 27 (02) : 133 - 142
  • [43] Hadamard NMR spectroscopy for relaxation measurements of large (>35 kDa) proteins
    B. Tom Burnley
    Arnout P. Kalverda
    Stephen J. Paisey
    Alan Berry
    Steve W. Homans
    Journal of Biomolecular NMR, 2007, 39 : 239 - 245
  • [44] Propagation of the Allosteric Signal in Phosphofructokinase from Bacillus stearothermophilus Examined by Methyl-Transverse Relaxation-Optimized Spectroscopy Nuclear Magnetic Resonance
    Whitaker, Amy M.
    Naik, Mandar T.
    Mosser, Rockann E.
    Reinhart, Gregory D.
    BIOCHEMISTRY, 2019, 58 (52) : 5294 - 5304
  • [45] Measurement of eight scalar and dipolar couplings for methine-methylene pairs in proteins and nucleic acids
    Miclet, E
    Boisbouvier, J
    Bax, A
    JOURNAL OF BIOMOLECULAR NMR, 2005, 31 (03) : 201 - 216
  • [46] HETEROTOCSY-BASED EXPERIMENTS FOR MEASURING HETERONUCLEAR RELAXATION IN NUCLEIC-ACIDS AND PROTEINS
    SCHWEITZER, BI
    GARDNER, KH
    TUCKERKELLOGG, G
    JOURNAL OF BIOMOLECULAR NMR, 1995, 6 (02) : 180 - 188
  • [47] Hexaamminecobalt(III) - Probing Metal Ion Binding Sites in Nucleic Acids by NMR Spectroscopy
    Rowinska-Zyrek, Magdalena
    Skilandat, Miriam
    Sigel, Roland K. O.
    ZEITSCHRIFT FUR ANORGANISCHE UND ALLGEMEINE CHEMIE, 2013, 639 (8-9): : 1313 - 1320
  • [48] In-cell NMR spectroscopy of nucleic acids: Basic concepts, practical aspects, and applications
    Foldynova-Trantirkova, Silvie
    Harnos, Jakub
    Rynes, Jan
    Zlinska, Vladimira
    Trantirek, Lukas
    PROGRESS IN NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY, 2025, 148
  • [49] APPLICATIONS OF NMR-SPECTROSCOPY TO STUDIES OF REACTIVE INTERMEDIATES AND THEIR INTERACTIONS WITH NUCLEIC-ACIDS
    HARRIS, TM
    STONE, MP
    HARRIS, CM
    CHEMICAL RESEARCH IN TOXICOLOGY, 1988, 1 (02) : 79 - 96
  • [50] Observation of nucleic acids inside living human cells by in-cell NMR spectroscopy
    Yamaoki, Yudai
    Nagata, Takashi
    Sakamoto, Tomoki
    Katahira, Masato
    BIOPHYSICS AND PHYSICOBIOLOGY, 2020, 17 : 36 - 41