Spectroscopic and Density Functional Theory Studies of the Blue—Copper Site in M121SeM and C112SeC Azurin: Cu—Se Versus Cu—S Bonding.

S K-edge X-ray absorption, UV-vis absorption, magnetic circular dichroism (MCD), and resonance Raman spectroscopies are used to investigate the electronic structure differences among WT, M121SeM, and C112SeC Pseudomonas aeruginosa (P.a) azurin. A comparison of S K-edge XAS of WT and M121SeM azurin a...

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Detalles Bibliográficos
Publicado en:Journal of the American Chemical Society Vol. 130; no. 12; pp. 3866 - 3878
Autores principales: Sarangi, Ritimukta, Gorelsky, Serge I., Basumallick, Lipika, Hee Jung Hwang, Pratt, Russell C., Stack, T. Daniel P., Yi Lu, Hodgson, Keith O., Hedman, Britt, Solomon, Edward I.
Formato: Artículo
Publicado: American Chemical Society 3/26/2008
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Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:S K-edge X-ray absorption, UV-vis absorption, magnetic circular dichroism (MCD), and resonance Raman spectroscopies are used to investigate the electronic structure differences among WT, M121SeM, and C112SeC Pseudomonas aeruginosa (P.a) azurin. A comparison of S K-edge XAS of WT and M121SeM azurin and a Cu-thioether model complex shows that the 38% S character in the ground state wave function of the blue-copper (BC) sites solely reflects the Cu-S bond. Resonance Raman (rR) data on WI and C112SeC azurin give direct evidence for the kinematic coupling between the Cu-S stretch and the cysteine deformation modes in WT azurin, which leads to multiple features in the rR spectrum of the BC site. The UV-vis absorption and MCD data on WT, M121SeM, and C112SeC give very similar Go/Do ratios, indicating that the G-term MCD intensity mechanism involves Cu-centered spin-orbit coupling (SOC). The spectroscopic data combined with density functional theory (DFT) calculations indicate that S and Se have similar covalent interactions with Cu at their respective bond lengths of 2.1 and 2.3 Å. This reflects the similar electronegativites of S and Se in the thiolate/selenolate ligand fragment and explains the strong spectroscopic similarities between WT and C112SeC azurin.