The interaction of tyrosine (Tyr) and the dipeptides glycyltyrosine (Gly-Tyr) and tyrosylglycine (Tyr-Gly) with copper ions has been studied through the use of fluorescence quenching due to the binding of the paramagnetic metal to the fluorophores. The pK, values for the protonation of the tyrosine
Interaction of Cu+ and Cu2+ ions with α-alanine. A density functional study
✍ Scribed by Tiziana Marino; Nino Russo; Marirosa Toscano
- Publisher
- John Wiley and Sons
- Year
- 2002
- Tongue
- English
- Weight
- 207 KB
- Volume
- 37
- Category
- Article
- ISSN
- 1076-5174
- DOI
- 10.1002/jms.331
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✦ Synopsis
Abstract
The Cu^+^ and Cu^2+^ preferred binding sites on α‐alanine and their affinity values for this amino acid were determined at the density functional level using three different hybrid exchange correlation potentials and the 6–311++G** basis set. The results demonstrated that the two ions both give stable complexes with α‐alanine but the stability order of the metalated species and the coordination sites are different depending on the nature of the cation. In particular, the Cu^+^–α‐alanine ground‐state structure is characterized by an η^2^‐N,O coordination with the nitrogen and oxygen atoms belonging to the amino and carbonyl groups, respectively. In contrast, the most stable complex of the Cu^2+^–α‐alanine system has an η^2^‐O,O coordination with the cation bonded to the —CO~2~^−^ moiety of the zwitterionic form of the amino acid. Comparison with the Cu^+^ and Cu^2+^ affinity values for glycine, computed at the same levels of theory, demonstrated that the relative values do not change significantly as different hybrid functionals are used, although the absolute affinities are strongly influenced by the choice of the hybrid potential. Copyright © 2002 John Wiley & Sons, Ltd.
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