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Multiple-step relayed correlation spectroscopy: sequential resonance assignments in oligosaccharides.
Author(s) -
Steve W. Homans,
Raymond A. Dwek,
Daryl L. Fernandes,
T. W. Rademacher
Publication year - 1984
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.81.20.6286
Subject(s) - spectroscopy , nuclear magnetic resonance spectroscopy , proton , nuclear overhauser effect , chemistry , anomer , nuclear magnetic resonance , envelope (radar) , spectral line , two dimensional nuclear magnetic resonance spectroscopy , resonance (particle physics) , resolution (logic) , molecular physics , physics , atomic physics , stereochemistry , nuclear physics , computer science , telecommunications , quantum mechanics , astronomy , radar , artificial intelligence
A general property of the high-resolution proton NMR spectra of oligosaccharides is the appearance of low-field well-resolved resonances corresponding to the anomeric (H1) and H2 protons. The remaining skeletal protons resonate in the region 3-4 ppm, giving rise to an envelope of poorly resolved resonances. Assignments can be made from the H1 and H2 protons to their J-coupled neighbors (H2 and H3) within this main envelope by using 1H-1H correlated spectroscopy. However, the tight coupling (J congruent to delta) between further protons results in poor spectral dispersion with consequent assignment ambiguities. We describe here three-step two-dimensional relayed correlation spectroscopy and show how it can be used to correlate the resolved anomeric (H1) and H2 protons with remote (H4, H5) protons directly through a linear network of couplings using sequential magnetization transfer around the oligosaccharide rings. Resonance assignments are then obtained by inspection of cross-peaks that appear in well-resolved regions of the two-dimensional spectrum. This offers a general solution to the assignment problem in oligosaccharides and, importantly, these assignments will subsequently allow for the three-dimensional solution conformation to be determined by using one-dimensional and two-dimensional nuclear Overhauser experiments.

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