Molecular Dynamics of the Inclusion Complexes of Cyclohexaamylose with Some Aromatic Amino Acids and Dipeptides
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[1] D. Lilley,et al. Carbon-13-NMR of peptides and proteins , 1978 .
[2] M. Komiyama,et al. Cyclodextrin-catalyzed hydrolyses of acetanilides , 1977 .
[3] D. J. Wood,et al. Proton NMR study of the inclusion of aromatic molecules in .alpha.-cyclodextrin , 1977 .
[4] R. Breslow,et al. SYNTHESIS OF CYCLOHEPTAAMYLOSE 2-, 3-, AND 6-PHOSPHORIC ACIDS, AND A COMPARATIVE STUDY OF THEIR EFFECTIVENESS AS GENERAL ACID OR GENERAL BASE CATALYSTS WITH BOUND SUBSTRATES , 1977 .
[5] G. C. Levy,et al. Hydrogen bonding and related association in linear aliphatic amino alcohols as probed by carbon-13 spin-lattice relaxation times , 1976 .
[6] B. Hingerty,et al. “Induced-fit”-type complex formation of the model enzyme α-cyclodextrin , 1976 .
[7] H. Friebolin,et al. C‐13‐NMR‐spektroskopische untersuchungen an polymerhomologen reihen von α,1→6‐ und α,1→4‐glucanen , 1976 .
[8] J. Behr,et al. Molecular dynamics of .alpha.-cyclodextrin inclusion complexes , 1976 .
[9] K. Schaumburg,et al. Carbon-13 nuclear magnetic resonance studies of the conformations of cyclic dipeptides. , 1975, Journal of the American Chemical Society.
[10] P. Fromageot,et al. 13C-nuclear magnetic resonance studies of 85% 13C-enriched amino acids and small peptides. pH effects on the chemical shifts, coupling constants, kinetics of cis-trans isomerisation and conformation aspects. , 1975, Biochimica et biophysica acta.
[11] K. Schaumburg,et al. Conformational flexibility of angiotensin II. A carbon-13 spin-lattice relaxation study. , 1975, Biochemistry.
[12] P. Colson,et al. Composition, sequence, and conformation of polymers and oligomers of glucose as revealed by carbon-13 nuclear magentic resonance. , 1974, Journal of the American Chemical Society.
[13] J. Fried,et al. Carbon-13 relaxation and proton nuclear magnetic resonance studies of prostaglandin F2alpha. , 1974, Proceedings of the National Academy of Sciences of the United States of America.
[14] Y. Inoue,et al. Carbon‐13 spin‐lattice relaxation study of linear polymers in solution , 1973 .
[15] I. Smith,et al. Carbon-13 nuclear magnetic resonance studies of polyamino acids: the helix-coil transition of poly-L-lysine. , 1973, Archives of biochemistry and biophysics.
[16] J. Roberts,et al. Nuclear magnetic resonance spectroscopy. Carbon-13 chemical shifts of small peptides as a function of pH. , 1972, Journal of the American Chemical Society.
[17] N. Birdsall,et al. 13 C nuclear magnetic resonance relaxation measurements of synthetic lecithins and the effect of spin-labeled lipids. , 1972, Biochemistry.
[18] D. Doddrell,et al. Theory of Nuclear Overhauser Enhancement and 13C–1H Dipolar Relaxation in Proton‐Decoupled Carbon‐13 NMR Spectra of Macromolecules , 1972 .
[19] D. Doddrell,et al. Natural Abundance Carbon‐13 Partially Relaxed Fourier Transform Nuclear Magnetic Resonance Spectra of Complex Molecules , 1971 .
[20] D. Doddrell,et al. Segmental motion in liquid 1-decanol. Application of natural-abundance carbon-13 partially relaxed Fourier transform nuclear magnetic resonance , 1971 .
[21] R. Freeman,et al. Spin-Lattice Relaxation in High-Resolution NMR Spectra of Carbon-13 , 1970 .
[22] J. T. Edward,et al. Molecular Volumes and the Stokes-Einstein Equation. , 1970 .
[23] W. Horsley,et al. Carbon-13 magnetic resonance studies of amino acids and peptides. , 1968, Journal of the American Chemical Society.
[24] M. L. Bender,et al. Acceleration of phenyl ester cleavage by cycloamyloses. A model for enzymic specificity , 1967 .
[25] W. Saenger,et al. Inclusion Compounds. XIX.1a The Formation of Inclusion Compounds of α-Cyclodextrin in Aqueous Solutions. Thermodynamics and Kinetics , 1967 .
[26] C. A. Glass. PROTON MAGNETIC RESONANCE SPECTRA OF D-GLUCOPYRANOSE POLYMERS , 1965 .
[27] Donald E. Williams,et al. The Crystal and Molecular Structure of the Cyclohexaamylose-Potassium Acetate Complex1 , 1965 .
[28] W. Brittin,et al. Nuclear Magnetic Resonance Studies in Multiple Phase Systems: Lifetime of a Water Molecule in an Adsorbing Phase on Silica Gel , 1957 .