TRANSVERSE RELAXATION-OPTIMIZED SPECTROSCOPY (TROSY) FOR NMR-STUDIES OF AROMATIC SPIN SYSTEMS IN C-13-LABELED PROTEINS

Citation
K. Pervushin et al., TRANSVERSE RELAXATION-OPTIMIZED SPECTROSCOPY (TROSY) FOR NMR-STUDIES OF AROMATIC SPIN SYSTEMS IN C-13-LABELED PROTEINS, Journal of the American Chemical Society, 120(25), 1998, pp. 6394-6400
Citations number
34
Categorie Soggetti
Chemistry
ISSN journal
00027863
Volume
120
Issue
25
Year of publication
1998
Pages
6394 - 6400
Database
ISI
SICI code
0002-7863(1998)120:25<6394:TRS(FN>2.0.ZU;2-8
Abstract
Transverse relaxation-optimized spectroscopy (TROSY) yields greatly im proved sensitivity for multidimensional NMR experiments with aromatic spin systems in proteins. TROSY makes use of the fact that due to the large anisotropy of the C-13 chemical shift tensor, the transverse rel axation of one component of the C-13 doublet in aromatic C-13-H-1 moie ties is reduced by interference of dipole-dipole (DD) coupling and che mical shift anisotropy (CSA) relaxation. The full advantage of TROSY f or studies of aromatic spin systems is obtained at presently available resonance frequencies from 500 to 800 MHz. Since the C-13 chemical sh ifts are recorded using a constant-time evolution period, the TROSY im provement in signal-to-noise relative to corresponding conventional NM R experiments increases with increasing molecular size and can be furt her significantly enhanced by combined use of the H-1 and C-13 steady- state magnetizations.With selective observation of the slowly relaxing component of the C-13 doublets in experiments recorded without H-1 de coupling during the C-13 chemical shift evolution period, a 4-10-foId sensitivity gain for individual aromatic C-13-H-1 correlation peaks wa s achieved for the uniformly C-13-labeled 18 kDa protein cyclophilin A . A new 3D ct-TROSY-HCCH-COSY experiment is presented, which correlate s the resonances of C-13 nuclei with those of covalently bound C-13-H- 1 groups and can be applied for complete identification of aromatic sp in systems. In this scheme the chemical shift evolution of neighboring aromatic C-13 spins are recorded in two indirectly detected spectral dimensions, so that the additional third dimension is obtained without increase of the number of delays.