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Christopher Haydock

Publications and source records attributed to Christopher Haydock.

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Conformational gel analysis and graphics: Measurement of side chain rotational isomer populations by NMR and molecular mechanics

Conformational gel analysis and graphics systematically identifies and evaluates plausible alternatives to the side chain conformations found by conventional peptide or protein structure determination methods. The proposed analysis determines the populations of side chain rotational isomers and the probability distribution of these populations. The following steps are repeated for each side chain of a peptide or protein: first, extract the local molecular mechanics of side chain rotational isomerization from a single representative global conformation; second, expand the predominant set of rotational isomers to include all probable rotational isomers down to those that constitute just a small percentage of the population; and third, evaluate the constraints vicinal coupling constants and NOESY cross relaxation rates place on rotational isomer populations. In this article we apply conformational gel analysis to the cobalt glycyl-leucine dipeptide and detail the steps necessary to generalize the analysis to other amino acid side chains in other peptides and proteins. For a side chain buried within a protein interior, it is noteworthy that the set of probable rotational isomers may contain one or more rotational isomers that are not identified by conventional NMR structure determination methods. In cases such as this the conformational gel graphics fully accounts for the interplay of molecular mechanics and NMR data constraints on the population estimates. The analysis is particularly suited to identifying side chain rotational isomers that constitute a small percentage of the population, but nevertheless might be structurally and functionally very significant.

physics.bio-ph

Measurability of side chain rotational isomer populations: NMR and molecular mechanics of cobalt glycyl-leucine dipeptide model system

The cobalt glycyl-leucine dipeptide is a model system for studying the effects of Karplus equation calibration, molecular mechanics accuracy, backbone conformation, and thermal motions on the measurability of side chain rotational isomer populations. We analyze measurements of 8 vicinal coupling constants about the alpha to beta-carbon and beta to gamma-carbon bonds of the leucine side chain and of 10 NOESY cross relaxation rates across these bonds. Molecular mechanics and peptide and protein crystallographic databases are an essential part of this analysis because they independently suggest that the trans gauche-plus and gauche-minus trans rotational isomers of the leucine side chain predominate. They also both suggest that puckering of the cobalt dipeptide ring system reduces the gauche-plus gauche-plus rotational isomer population to less than about 10%. At the present +/- 1 Hz calibration accuracy of Karplus equations for vicinal coupling constants, the predominant trans gauche-plus and gauche-minus trans rotational isomer populations can be measured with about 5% accuracy, but the population of the gauche-plus gauche-plus rotational isomer is probably very near or just below the limit of measurability. These estimates also depend upon qualitative assessments of the accuracy of the molecular mechanics energy wells. We introduce gel graphics that are ideally suited to presenting qualitative error and measurability estimates.

physics.bio-ph

Electron capture decay of indium-111 human carbonic anhydrase I: A time differential K X ray coincidence perturbed angular correlation study

The relaxation effects in the perturbed angular correlation spectra of indium-111 human carbonic anhydrase I (HCA I) are the result of chemical transmutation and/or the complex Auger cascades that follow the electron capture decay of indium-111. Time differential K X ray coincidence perturbed angular correlation (PAC) spectroscopy shows that these relaxation effects are independent of the Auger cascade intensity. This suggests that chemical transmutation is responsible for the relaxation effects, and that bond breaking and damage product formation around the decay site resulting from localized energy deposition by Auger and Coster-Kronig electrons probably occur in the microsecond time regime. Numerical simulations of chemical transmutation relaxation effects in the time differential PAC spectrum of indium-111 HCA I are also presented.

physics.med-ph