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R Bazzo

Publications and source records attributed to R Bazzo.

22 records · Page 2Linked to original sources

Uncertainties in structural determinations of oligosaccharide conformation, using measurements of nuclear Overhauser effects.

A fundamental problem in the determination of molecular structure by n.m.r. spectroscopy is insufficient experimental constraints. This problem is particularly marked for oligosaccharides, where few constraints are available across glycosidic linkages. By calculating distances as a function of dihedral angle, it is shown that, in general, two n.O.e. constraints result in two possible conformations for each glycosidic linkage, one of which can usually be discarded on the basis of model building or energy calculations. Using these calculations, an estimate of the uncertainty in the structure can be obtained.

Carbohydrate Conformation↗

500-picosecond molecular dynamics in water of the Man alpha 1----2Man alpha glycosidic linkage present in Asn-linked oligomannose-type structures on glycoproteins.

Molecular dynamics simulations of the Man alpha 1----2Man alpha glycosidic linkage found in the N-linked glycans of glycoproteins were performed in vacuo and in the presence of water. In the latter case significant dampening of the molecular fluctuations was found when compared to the in vacuo simulation. A 500-ps dynamics simulation in water showed only occasional short-lived deviations from the minimum-energy conformation, more consistent with carbohydrate "breathing" than flexibility. These studies add further evidence that oligosaccharides can maintain "fixed" geometries with relatively long lifetimes and are in agreement with experimental NMR-derived parameters for the same linkage in oligomannose structures.

Carbohydrate Conformation↗

Primary sequence dependence of conformation in oligomannose oligosaccharides.

The oligomannose series of oligosaccharides from bovine thyroglobulin (BTG) and the variant surface glycoprotein (VSG) of Trypanosoma brucei have been isolated and sequenced by 1H NMR. The structure of Man9GlcNAc2, the parent molecule of the series, is shown below. Structural isomerism occurs within this series through the removal of residues D1, D2, D3, and C. Using spin-spin coupling and chemical shift data the rotamer distributions about the dihedral angle omega for the Man alpha 1-6Man beta and Man alpha 1-6Man alpha linkages were determined for each member of the series. It is shown that the dihedral angle omega of the Man alpha 1-6Man beta linkage exhibits low flexibility with a preference for the omega = 180 degrees conformation when residue D2 is present and high flexibility when this residue is absent. Flexibility of omega for the Man alpha 1-6Man alpha is largely independent of primary sequence and is intermediate between the two Man alpha 1-6Man beta extremes, again with a preference for the omega = 180 degrees conformation. [see text] There are, however, data which indicate that removal of residue D3 may confer additional flexibility upon the dihedral angle omega of the Man alpha 1-6Man alpha linkage. Molecular graphics modelling, together with chemical and enzymatic modification studies, suggest that the origin of the observed primary sequence dependence of the Man alpha 1-6Man beta linkage arises from steric factors. On the basis of these observations taken together with previous work, it is postulated that recognition of individual oligomannose conformations may play a role in the control of N-linked oligosaccharide biosynthesis.

Carbohydrate Conformation↗

The structure of melittin. A 1H-NMR study in methanol.

The conformation of the 26-residue polypeptide melittin has been studied using 1H-NMR spectroscopy in methanolic solution. The 1H-NMR spectrum of melittin has been assigned using two-dimensional NMR techniques and the secondary structure has been calculated from nuclear Overhauser enhancement data using distance geometry and restrained molecular dynamics analyses. The structure is found to be mainly helical, and similar to that found in crystals from diffraction data: residues 2-11 and 13-26 form regular alpha-helices joined by a 'hinge' between residues 11-12. The structure in this hinge region is shown to be significantly different from that in the crystal structure, leading to a smaller angle between the two helices. The possible significance of the proline residues in this and similar membrane-spanning peptides is discussed.

Amino Acid Sequence↗