Tuning the Type 1 Reduction Potential of Multicopper Oxidases: Uncoupling the Effects of Electrostatics and H-Bonding to Histidine Ligands
Регулирование восстановительного потенциала типа 1 мультикупровых оксидаз: разделение эффектов электростатики и водородного связывания с лигандами-гистидинами
2023-06-09
SCID: 54.1/nuwhxb6s
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density functional theoryelectrostatic effectshydrogen bondingmulticopper oxidasestype 1 copper potential
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Abstract (AI)
In multicopper oxidases (MCOs), the type 1 (T1) Cu accepts electrons from the substrate and transfers these to the trinuclear Cu cluster (TNC) where O 2 is reduced to H 2 O. The T1 potential in MCOs varies from 340 to 780 mV, a range not explained by the existing literature. This study focused on the ∼350 mV difference in potential of the T1 center in Fet3p and Trametes versicolor laccase (TvL) that have the same 2His1Cys ligand set. A range of spectroscopies performed on the oxidized and reduced T1 sites in these MCOs shows that they have equivalent geometric and electronic structures. However, the two His ligands of the T1 Cu in Fet3p are H-bonded to carboxylate residues, while in TvL they are H-bonded to noncharged groups. Electron spin echo envelope modulation spectroscopy shows that there are significant differences in the second-sphere H-bonding interactions in the two T1 centers. Redox titrations on type 2-depleted derivatives of Fet3p and its D409A and E185A variants reveal that the two carboxylates (D409 and E185) lower the T1 potential by 110 and 255–285 mV, respectively. Density functional theory calculations uncouple the effects of the charge of the carboxylates and their difference in H-bonding interactions with the His ligands on the T1 potential, indicating 90–150 mV for anionic charge and ∼100 mV for a strong H-bond. Finally, this study provides an explanation for the generally low potentials of metallooxidases relative to the wide range of potentials of the organic oxidases in terms of different oxidized states of their TNCs involved in catalytic turnover.
Key Findings
1
Density functional theory separates carboxylate charge and hydrogen bonding effects, attributing 90–150 mV to anionic charge and approximately 100 mV to a strong histidine H-bond.
2
Different oxidized states of the trinuclear copper cluster explain why metallooxidases generally have lower potentials than organic oxidases despite broad potential variation among organic oxidases.
3
Fet3p T1 histidines form second-sphere hydrogen bonds with carboxylates, whereas Trametes versicolor laccase histidines interact with noncharged groups, producing distinct H-bonding environments.
4
In Fet3p, carboxylates D409 and E185 lower the T1 potential by 110 mV and 255–285 mV, respectively.
5
The approximately 350 mV T1 potential difference between Fet3p and Trametes versicolor laccase occurs despite equivalent geometric and electronic structures and identical 2His1Cys coordination.
Research Object
The type 1 copper (T1) centers of multicopper oxidases, specifically Fet3p and Trametes versicolor laccase, including their histidine ligands and second-sphere carboxylate or neutral hydrogen-bonding environments
Research Subject
The effects of electrostatic charge and hydrogen bonding to histidine ligands on the T1 Cu redox potential, and their contribution to the differing potentials of Fet3p and Trametes versicolor laccase
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2023-06-09
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