Redox Chemistry in Laccase-Catalyzed Oxidation of N-Hydroxy Compounds

Окислительно-восстановительная химия лактас-катализируемого окисления N-гидроксильных соединений
Eric Abbate, Feng Xu, Juozas Kulys, Kyle R. Duke, Kaichang Li, Kastis Krikštopaitis, Heinz‐Josef W. Deussen, Vilija Galinyte, Palle Schneider
2000-05-01

N-hydroxy compoundsfungal laccaseslaccase-catalyzed oxidationredox potentialsingle-electron transfer
1-Hydroxybenzotriazole, violuric acid, and N-hydroxyacetanilide are three N-OH compounds capable of mediating a range of laccase-catalyzed biotransformations, such as paper pulp delignification and degradation of polycyclic hydrocarbons. The mechanism of their enzymatic oxidation was studied with seven fungal laccases. The oxidation had a bell-shaped pH-activity profile with an optimal pH ranging from 4 to 7. The oxidation rate was found to be dependent on the redox potential difference between the N-OH substrate and laccase. A laccase with a higher redox potential or an N-OH compound with a lower redox potential tended to have a higher oxidation rate. Similar to the enzymatic oxidation of phenols, phenoxazines, phenothiazines, and other redox-active compounds, an "outer-sphere" type of single-electron transfer from the substrate to laccase and proton release are speculated to be involved in the rate-limiting step for N-OH oxidation.
1
Across seven fungal laccases, N–OH oxidation showed bell-shaped pH–activity profiles with optimal pH values ranging from 4 to 7.
2
Oxidation rates depended on the redox-potential difference between the N–OH substrate and laccase; higher-potential laccases and lower-potential mediators generally oxidized faster.
3
The mechanistic interpretation parallels laccase oxidation of phenols, phenoxazines, phenothiazines, and other redox-active compounds.
4
The proposed rate-limiting mechanism involves outer-sphere single-electron transfer from the N–OH substrate to laccase accompanied by proton release.
5
Three N–OH compounds—1-hydroxybenzotriazole, violuric acid, and N-hydroxyacetanilide—mediate diverse laccase-catalyzed biotransformations, including pulp delignification and polycyclic hydrocarbon degradation.

laccase-catalyzed oxidation of the N-OH compounds 1-hydroxybenzotriazole, violuric acid, and N-hydroxyacetanilide by seven fungal laccases

the pH dependence, redox-potential dependence, and rate-limiting outer-sphere single-electron-transfer mechanism of N-OH oxidation

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2000-05-01
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Eric Abbate
Feng Xu
Juozas Kulys
Kyle R. Duke
Kaichang Li
Kastis Krikštopaitis
Heinz‐Josef W. Deussen
Vilija Galinyte
Palle Schneider
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