Structural basis of substrate conversion in a new aromatic peroxygenase: cytochrome P450 functionality with benefits

Aromatic peroxygenases (APOs) represent a unique oxidoreductase sub-subclass of heme proteins with peroxygenase and peroxidase activity and were thus recently assigned a distinct EC classification (EC 1.11.2.1). They catalyze, inter alia, oxyfunctionalization reactions of aromatic and aliphatic hydr...

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Veröffentlicht in:The Journal of biological chemistry 2013-11, Vol.288 (48), p.34767-34776
Hauptverfasser: Piontek, Klaus, Strittmatter, Eric, Ullrich, René, Gröbe, Glenn, Pecyna, Marek J, Kluge, Martin, Scheibner, Katrin, Hofrichter, Martin, Plattner, Dietmar A
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Sprache:eng
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Zusammenfassung:Aromatic peroxygenases (APOs) represent a unique oxidoreductase sub-subclass of heme proteins with peroxygenase and peroxidase activity and were thus recently assigned a distinct EC classification (EC 1.11.2.1). They catalyze, inter alia, oxyfunctionalization reactions of aromatic and aliphatic hydrocarbons with remarkable regio- and stereoselectivities. When compared with cytochrome P450, APOs appear to be the choice enzymes for oxyfunctionalizations in organic synthesis due to their independence from a cellular environment and their greater chemical versatility. Here, the first two crystal structures of a heavily glycosylated fungal aromatic peroxygenase (AaeAPO) are described. They reveal different pH-dependent ligand binding modes. We model the fitting of various substrates in AaeAPO, illustrating the way the enzyme oxygenates polycyclic aromatic hydrocarbons. Spatial restrictions by a phenylalanine pentad in the active-site environment govern substrate specificity in AaeAPO.
ISSN:0021-9258
1083-351X
DOI:10.1074/jbc.M113.514521