The heterocyclic ligand-amino acid complexes used as models of drug binding with plasma proteins have been studied. In this paper, we report the new data on densities and heat capacities of uracil and nicotinic acid in aqueous buffer solutions (pH 7.4) with aromatic amino acids (l-phenylalanine, l-tryptophan) at 298.15 K using the density meter DSA 5000 M (Anton Paar) and the microdifferential scanning calorimeter SCAL-1 (Pushchino, Russia). From these experimental data the apparent molar properties (Vphi, Cp,phi) and the partial molar parameters of volume and heat capacity at infinite dilution (Vphio, Cp,phio) were obtained for all the systems. The partial molar properties of transfer of heterocyclic compounds from buffer to buffer amino acid solutions are determined. The data have been discussed in terms of molecular interactions (hydrophilic, hydrophobic and zwitterionic interactions) on the basis of a cosphere overlap model. These results show that the interactions of l-phenylalanine and l-tryptophan with uracil and nicotinic acid are accompanied by complex formation. Analysis of the resulting data shows that all the complexes formed have -1:2 stoichiometry.
Compounds
#
Formula
Name
1
ClNa
sodium chloride
2
H2O
water
3
H2NaO4P
sodium dihydrogen phosphate
4
HNa2O4P
disodium hydrogen phosphate
Datasets
The table above is generated from the ThermoML associated json file (link above).
POMD and RXND refer to PureOrMixture and Reaction Datasets. The compound numbers are included in properties, variables, and phases, if specificied;
the numbers refer to the table of compounds on the left.
Type
Compound-#
Property
Variable
Constraint
Phase
Method
#Points
POMD
1
2
Molar heat capacity at constant pressure, J/K/mol ; Liquid
Molality, mol/kg - 1; Liquid
Temperature, K; Liquid
Pressure, kPa; Liquid
Liquid
Large sample (1 g) DSC
48
POMD
3
4
2
Mass density, kg/m3 ; Liquid
Molality, mol/kg - 3; Liquid
Molality, mol/kg - 4; Liquid
Pressure, kPa; Liquid
Temperature, K; Liquid
Liquid
Vibrating tube method
1
POMD
3
4
2
Molar heat capacity at constant pressure, J/K/mol ; Liquid