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A Theoretical
Case Study of Type I and Type II beta-Turns.
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Czinki E, Csaszar
AG, Perczel A.
Department of Theoretical Chemistry Eotvos
University,
1518 Budapest 112 P.O. Box 32,
Hungary, Fax: (+36) 1209-0602.
Abstract: NMR chemical
shielding anisotropy tensors have been computed by employing a medium size
basis set and the GIAO-DFT(B3LYP) formalism of electronic structure theory
for all of the atoms of type I and type II beta-turn models. The models
contain all possible combinations of the amino acid residues Gly, Ala, Val,
and Ser, with all possible side-chain orientations where applicable in a
dipeptide. The several hundred structures investigated contain either constrained
or optimized phi, psi, and chi dihedral angles. A statistical analysis of
the resulting large database was performed and multidimensional (2D and 3D)
chemical-shift/chemical-shift plots were generated. The (1)H(alpha-13)C(alpha),
(13)C(alpha-1)H(alpha-13)C(beta), and (13)C(alpha-1)H(alpha-13)C' 2D and
3D plots have the notable feature that the conformers clearly cluster in
distinct regions. This allows straightforward identification of the backbone
and side-chain conformations of the residues forming beta-turns. Chemical
shift calculations on larger For-(L-Ala)(n)-NH(2) (n=4, 6, 8) models, containing
a single type I or type II beta-turn, prove that the simple models employed
are adequate. A limited number of chemical shift calculations performed
at the highly correlated CCSD(T) level prove the adequacy of the computational
method chosen. For all nuclei, statistically averaged theoretical and experimental
shifts taken from the BioMagnetic Resonance Bank (BMRB) exhibit good correlation.
These results confirm and extend our previous findings that chemical shift
information from selected multiple-pulse NMR experiments could be employed
directly to extract folding information for polypeptides and proteins.
PMID: 12596154 [PubMed - in process]
Chemistry
2003 Mar 3;9(5):1182-91
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