Publication

Rapid Structure Determination of Molecular Solids Using Chemical Shifts Directed by Unambiguous Prior Constraints

Résumé

NMR-based crystallography approaches involving the combination of crystal structure prediction methods, ab initio calculated chemical shifts and solid-state NMR experiments are powerful methods for crystal structure determination of microcrystalline powders. However, currently structural information obtained from solid-state NMR is usually included only after a set of candidate crystal structures has already been independently generated, starting from a set of single-molecule conformations. Here, we show with the case of ampicillin that this can lead to failure of structure determination. We propose a crystal structure determination method that includes experimental constraints during conformer selection. In order to overcome the problem that experimental measurements on the crystalline samples conformational space, we propose constraints based on the are not obviously translatable to restrict the single-molecule analysis of absent cross-peaks in solid-state NMR correlation experiments. We show that these absences provide unambiguous structural constraints on both the crystal structure and the gasphase conformations, and therefore can be used for unambiguous selection. The approach is parametrized on the crystal structure determination of flutamide, flufenamic acid, and cocaine, where we reduce the computational cost by around 50%. Most importantly, the method is then shown to correctly determine the crystal structure of ampicillin, which would have failed using current methods because it adopts a high-energy conformer in its crystal structure. The average positional RMSE on the NMR powder structure is < r(av)> = 0.176 angstrom, which corresponds to an average equivalent displacement parameter U-eq = 0.0103 angstrom(2).

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Concepts associés (34)
Spectroscopie RMN
vignette|redresse|Spectromètre RMN avec passeur automatique d'échantillons utilisé en chimie organique pour la détermination des structures chimiques. vignette|redresse|Animation présentant le principe de la Résonance Magnétique Nucléaire (RMN). La spectroscopie RMN est une technique qui exploite les propriétés magnétiques de certains noyaux atomiques. Elle est basée sur le phénomène de résonance magnétique nucléaire (RMN), utilisé également en sous le nom d’.
Nuclear magnetic resonance spectroscopy of proteins
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Cristallographie aux rayons X
La cristallographie aux rayons X, radiocristallographie ou diffractométrie de rayons X (DRX, on utilise aussi souvent l'abréviation anglaise XRD pour X-ray diffraction) est une technique d'analyse fondée sur la diffraction des rayons X par la matière, particulièrement quand celle-ci est cristalline. La diffraction des rayons X est une diffusion élastique, c'est-à-dire sans perte d'énergie des photons (longueurs d'onde inchangées), qui donne lieu à des interférences d'autant plus marquées que la matière est ordonnée.
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