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Updated: Jul 14, 2026

Light-driven Enzymatic Decarboxylation
Published on: May 22, 2016
The coprophilous mushroom Coprinus radians secretes a haloperoxidase that catalyzes aromatic peroxygenation
Dau Hung Anh1, René Ullrich, Dirk Benndorf
1International Graduate School (IHI) Zittau, Unit of Environmental Biotechnology, Markt 23, 02763 Zittau, Germany.
Abstract:
Coprophilous and litter-decomposing species (26 strains) of the genus Coprinus were screened for peroxidase activities by using selective agar plate tests and complex media based on soybean meal. Two species, Coprinus radians and C. verticillatus, were found to produce peroxidases, which oxidized aryl alcohols to the corresponding aldehydes at pH 7 (a reaction that is typical for heme-thiolate haloperoxidases). The peroxidase of Coprinus radians was purified to homogeneity and characterized. Three fractions of the enzyme, CrP I, CrP II, and CrP III, with molecular masses of 43 to 45 kDa as well as isoelectric points between 3.8 and 4.2, were identified after purification by anion-exchange and size exclusion chromatography. The optimum pH of the major fraction (CrP II) for the oxidation of aryl alcohols was around 7, and an H2O2 concentration of 0.7 mM was most suitable regarding enzyme activity and stability. The apparent Km values for ABTS [2,2'-azinobis(3-ethylbenzthiazolinesulfonic acid)], 2,6-dimethoxyphenol, benzyl alcohol, veratryl alcohol, and H2O2 were 49, 342, 635, 88, and 1,201 microM, respectively. The N terminus of CrP II showed 29% and 19% sequence identity to Agrocybe aegerita peroxidase (AaP) and chloroperoxidase, respectively. The UV-visible spectrum of CrP II was highly similar to that of resting-state cytochrome P450 enzymes, with the Soret band at 422 nm and additional maxima at 359, 542, and 571 nm. The reduced carbon monoxide complex showed an absorption maximum at 446 nm, which is characteristic of heme-thiolate proteins. CrP brominated phenol to 2- and 4-bromophenols and selectively hydroxylated naphthalene to 1-naphthol. Hence, after AaP, CrP is the second extracellular haloperoxidase-peroxygenase described so far. The ability to extracellularly hydroxylate aromatic compounds seems to be the key catalytic property of CrP and may be of general significance for the biotransformation of poorly available aromatic substances, such as lignin, humus, and organopollutants in soil litter and dung environments. Furthermore, aromatic peroxygenation is a promising target of biotechnological studies.
Insights
Researchers identified peroxidases in Coprinus fungi that can transform aromatic compounds. This discovery of extracellular haloperoxidase-peroxygenase activity has significant implications for bioremediation and biotechnology.
Area of Science:
- Biochemistry
- Enzymology
- Mycology
Background:
- Fungi, particularly coprophilous and litter-decomposing species, are known for their diverse enzymatic capabilities.
- Peroxidases play crucial roles in the degradation of complex organic matter and xenobiotics.
Purpose of the Study:
- To screen Coprinus species for peroxidase activity.
- To characterize the identified peroxidases, focusing on their catalytic properties and potential applications.
Main Methods:
- Selective agar plate tests and complex soybean meal media were used for screening.
- Anion-exchange and size exclusion chromatography were employed for enzyme purification.
- Spectroscopic analysis (UV-visible) and kinetic studies (Km values) were performed.
Main Results:
- Two Coprinus species, C. radians and C. verticillatus, exhibited peroxidase activity, oxidizing aryl alcohols to aldehydes.
- The peroxidase from C. radians (CrP) was purified into three fractions (CrP I, II, III), with CrP II being the major one.
- CrP II demonstrated optimal activity at pH 7 and 0.7 mM H2O2, with significant substrate affinities (Km) for various compounds including ABTS and veratryl alcohol.
- Spectra of CrP II were characteristic of heme-thiolate proteins, similar to cytochrome P450 enzymes.
- CrP catalyzed bromination of phenol and hydroxylation of naphthalene, indicating haloperoxidase-peroxygenase activity.
Conclusions:
- Coprinus radians peroxidase (CrP) is the second extracellular haloperoxidase-peroxygenase identified, following Agrocybe aegerita peroxidase (AaP).
- The enzyme's ability to hydroxylate aromatic compounds extracellularly is significant for biodegrading recalcitrant substances like lignin and organopollutants.
- Aromatic peroxygenation by CrP presents a promising avenue for biotechnological applications.
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