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Solid-state 17O NMR study of α-d-glucose: exploring new frontiers in isotopic labeling,sensitivity enhancement,and NMR crystallography
Authors:Jiahui Shen  Victor Terskikh  Jochem Struppe  Alia Hassan  Martine Monette  Ivan Hung  Zhehong Gan  Andreas Brinkmann  Gang Wu
Institution:Department of Chemistry, Queen''s University, 90 Bader Lane, Kingston Ontario K7L 3N6 Canada.; Metrology, National Research Council Canada, Ottawa Ontario K1A 0R6 Canada ; Bruker Biospin Corporation, 15 Fortune Drive, Billerica, MA 01821 USA ; Bruker Switzerland AG, Fällanden Switzerland ; Bruker Biospin Ltd., 2800 High Point Drive, Suite 206, Milton Ontario L9T 6P4 Canada ; National High Magnetic Field Laboratory, 1800 East Paul Dirac Drive, Tallahassee Florida 32310 USA
Abstract:We report synthesis and solid-state 17O NMR characterization of α-d-glucose for which all six oxygen atoms are site-specifically 17O-labeled. Solid-state 17O NMR spectra were recorded for α-d-glucose/NaCl/H2O (2/1/1) cocrystals under static and magic-angle-spinning (MAS) conditions at five moderate, high, and ultrahigh magnetic fields: 14.1, 16.4, 18.8, 21.1, and 35.2 T. Complete 17O chemical shift (CS) and quadrupolar coupling (QC) tensors were determined for each of the six oxygen-containing functional groups in α-d-glucose. Paramagnetic Cu(ii) doping was found to significantly shorten the spin–lattice relaxation times for both 1H and 17O nuclei in these compounds. A combination of the paramagnetic Cu(ii) doping, new CPMAS CryoProbe technology, and apodization weighted sampling led to a sensitivity boost for solid-state 17O NMR by a factor of 6–8, which made it possible to acquire high-quality 2D 17O multiple-quantum (MQ) MAS spectra for carbohydrate compounds. The unprecedented spectral resolution offered by 2D 17O MQMAS spectra permitted detection of a key structural difference for a single hydrogen bond between two types of crystallographically distinct α-d-glucose molecules. This work represents the first case where all oxygen-containing functional groups in a carbohydrate molecule are site-specifically 17O-labeled and fully characterized by solid-state 17O NMR. Gauge Including Projector Augmented Waves (GIPAW) DFT calculations were performed to aid 17O and 13C NMR signal assignments for a complex crystal structure where there are six crystallographically distinct α-d-glucose molecules in the asymmetric unit.

We report the first “total synthesis” of 17O-labeled d-glucose and its solid-state 17O NMR characterization with unprecedented sensitivity and resolution.
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