TY - GEN A1 - Kinne, Matthias A1 - Ullrich, René A1 - Hammel, Kenneth E. A1 - Scheibner, Katrin A1 - Hofrichter, Martin T1 - Regioselective preparation of (R)-2-(4-Hydroxyphenoxy)propionic acid with a fungal peroxygenase T2 - Tetrahedron Letters N2 - The extracellular heme-thiolate peroxygenase of Agrocybe aegerita catalyzed the H2O2-dependent hydroxylation of 2-phenoxypropionic acid (POPA) to give the herbicide precursor 2-(4-hydroxyphenoxy)propionic acid (HPOPA). The reaction proceeded regioselectively with an isomeric purity near 98%, and yielded the desired R-isomer of HPOPA with an enantiomeric excess of 60%. 18O-labeling experiments showed that the phenolic hydroxyl in HPOPA originated from H2O2, which establishes that the reaction is mechanistically a peroxygenation. Our results raise the possibility that fungal peroxygenases may be useful for a variety of organic oxidations. KW - Peroxidase KW - Peroxygenase KW - Oxygenase KW - Cytochrome P450 KW - Hydroxylation KW - 2-(4-Hydroxyphenoxy)propionic acid KW - Ascorbic acid Y1 - 2008 UR - http://www.sciencedirect.com/science/article/pii/S0040403908014421 U6 - https://doi.org/10.1016/j.tetlet.2008.07.152 SN - 1873-3581 VL - 49 IS - 41 SP - 5950 EP - 5953 ER - TY - GEN A1 - Gröbe, Glenn A1 - Ullrich, René A1 - Pecyna, Marek J. A1 - Kapturska, Danuta A1 - Friedrich, Stephanie A1 - Hofrichter, Martin A1 - Scheibner, Katrin T1 - High-yield production of aromatic peroxygenase by the agaric fungus Marasmius rotula T2 - AMB Express N2 - An extracellular peroxygenase from Marasmius rotula was produced in liquid culture, chromatographically purified and partially characterized. This is the third aromatic peroxygenase (APO) that has been characterized in detail and the first one that can be produced in high yields. The highest enzyme levels of about 41,000 U l-1 (corresponding to appr. 445 mg l-1 APO protein) exceeded the hitherto reported levels more than 40-fold and were detected in carbon- and nitrogen-rich complex media. The enzyme was purified by FPLC to apparent homogeneity (SDS-PAGE) with a molecular mass of 32 kDa (27 kDa after deglycosylation) and isoelectric points between 4.97 and 5.27. The UV-visible spectrum of the native enzyme showed a characteristic maximum (Soret band) at 418 nm that shifted after reduction with sodium dithionite and flushing with carbon monoxide to 443 nm. The pH optimum of the M. rotula enzyme was found to vary between pH 5 and 6 for most reactions studied. The apparent Km-values for 2,6-dimethoxyphenol, benzyl alcohol, veratryl alcohol, naphthalene and H2O2 were 0.133, 0.118, 0.279, 0.791 and 3.14 mM, respectively. M. rotula APO was found to be highly stable in a pH range from 5 to 10 as well as in the presence of organic solvents (50% vol/vol) such as methanol, acetonitrile and N,N-dimethylformamide. Unlike other APOs, the peroxygenase of M. rotula showed neither brominating nor chlorinating activities. KW - Peroxygenase KW - Peroxidase KW - Basidiomycota KW - Cytochrome P450 KW - Bioreactor Y1 - 2011 UR - http://www.amb-express.com/content/1/1/31 SN - 2191-0855 ER - TY - GEN A1 - Yarman, Aysu A1 - Gröbe, Glenn A1 - Neumann, Bettina A1 - Kinne, Mathias A1 - Gajovic-Eichelmann, Nenad A1 - Wollenberger, Ulla A1 - Hofrichter, Martin A1 - Ullrich, René A1 - Scheibner, Katrin A1 - Scheller, Frieder W. T1 - The aromatic peroxygenase from Marasmius rutola—a new enzyme for biosensor applications T2 - Analytical and Bioanalytical Chemistry N2 - The aromatic peroxygenase (APO; EC 1.11.2.1) from the agraric basidomycete Marasmius rotula (MroAPO) immobilized at the chitosan-capped gold-nanoparticle-modified glassy carbon electrode displayed a pair of redox peaks with a midpoint potential of −278.5 mV vs. AgCl/AgCl (1 M KCl) for the Fe2+/Fe3+ redox couple of the heme-thiolate-containing protein. MroAPO oxidizes aromatic substrates such as aniline, p-aminophenol, hydroquinone, resorcinol, catechol, and paracetamol by means of hydrogen peroxide. The substrate spectrum overlaps with those of cytochrome P450s and plant peroxidases which are relevant in environmental analysis and drug monitoring. In M. rotula peroxygenase-based enzyme electrodes, the signal is generated by the reduction of electrode-active reaction products (e.g., p-benzoquinone and p-quinoneimine) with electro-enzymatic recycling of the analyte. In these enzyme electrodes, the signal reflects the conversion of all substrates thus representing an overall parameter in complex media. The performance of these sensors and their further development are discussed. KW - Unspecific peroxygenase KW - Biosensors KW - Cytochrome P450 KW - Phenolic substances Y1 - 2012 UR - http://link.springer.com/article/10.1007%2Fs00216-011-5497-y U6 - https://doi.org/10.1007/s00216-011-5497-y SN - 1618-2650 VL - 402 IS - 1 SP - 405 EP - 412 ER - TY - GEN A1 - Peter, Sebastian A1 - Karich, Alexander A1 - Ullrich, René A1 - Gröbe, Glenn A1 - Scheibner, Katrin A1 - Hofrichter, Martin T1 - Enzymatic one-pot conversion of cyclohexane into cyclohexanone: Comparison of four fungal peroxygenases T2 - Journal of Molecular Catalysis : B, Enzymatic N2 - Unspecific peroxygenases (UPO; EC 1.11.2.1) represent a group of secreted heme-thiolate proteins that are capable of catalyzing the mono-oxygenation of diverse organic compounds, using only H2O2 as a co-substrate. Here we show that the four peroxygenases AaeUPO, MroUPO, rCciUPO and rNOVO catalyze the stepwise hydroxylation of cyclohexane to cyclohexanol and cyclohexanone. The catalytic efficiencies (kcat/Km) for the initial hydroxylation were in the same order of magnitude for all four peroxygenases (∼104 M−1 s−1), whereas they differed in the second step. The conversion of cyclohexanol by AaeUPO and rCciUPO was 1–2 orders of magnitude less efficient (∼102 M−1 s−1) than by MroUPO and rNOVO (∼104 M−1 s−1). The highest conversion rate in terms of H2O2 utilization was accomplished by MroUPO under repeated addition of the peroxide (87% in relation to the total products formed). Using the latter UPO, we successfully established a micro-mixing reaction device (SIMM-V2) for the oxidation of cyclohexane. As cyclohexanone is a chemical of high relevance, for example, as starting material for polymer syntheses or as organic solvent, new enzymatic production pathways for this compound are of interest to complement existing chemical and biotechnological approaches. Stable and versatile peroxygenases, as those presented here, may form a promising biocatalytic platform for the development of such enzyme-based processes. KW - cyclohexane KW - cyclohexanol KW - cyclohexanone KW - UPO KW - Peroxygenase Y1 - 2014 UR - http://www.sciencedirect.com/science/article/pii/S138111771300266X U6 - https://doi.org/10.1016/j.molcatb.2013.09.016 IS - 103 SP - 47 EP - 51 ER - TY - GEN A1 - Piontek, Klaus A1 - Strittmatter, Eric A1 - Ullrich, René A1 - Gröbe, Glenn A1 - Pecyna, Marek J. A1 - Kluge, Martin A1 - Scheibner, Katrin A1 - Hofrichter, Martin A1 - Plattner, Dietmar A. T1 - Structural basis of substrate conversion in a new aromatic peroxygenase: cytochrome P450 functionality with benefits T2 - The Journal of Biological Chemistry N2 - 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. KW - Cytochrome P450 KW - Fungi; Glycoprotein KW - Oxyfunctionalization KW - Polycyclic Aromatic Hydrocarbons KW - Peroxygenase Y1 - 2013 U6 - https://doi.org/10.1074/jbc.M113.514521 SN - 1083-351X IS - 288 SP - 34767 EP - 34776 ER - TY - GEN A1 - Kluge, Martin A1 - Ullrich, René A1 - Scheibner, Katrin A1 - Hofrichter, Martin T1 - Formation of naphthalene hydrates in the enzymatic conversion of 1,2-dihydronaphthalene by two fungal peroxygenases and subsequent naphthalene formation T2 - Journal of Molecular Catalysis : B, Enzymatic N2 - The formation of naphthalene hydrates (i.e. 1- and 2-hydroxy-1,2-dihydronaphthalene) displays a new activity (besides epoxidation) in the enzymatic transformation of 1,2-dihydronaphthalene by two fungal unspecific peroxygenases (UPOs) accounting for 16–19% of the overall turnover. These arene hydrates decayed into naphthalene that in turn was converted by UPOs into naphthols. The oxygen transferred during hydroxylation was shown to derive from hydrogen peroxide proving a true peroxygenation reaction. KW - Unspecific peroxygenase KW - Naphthalene hydrates KW - Aromatization KW - Oxygenation Y1 - 2014 UR - http://www.sciencedirect.com/science/article/pii/S1381117713002464 U6 - https://doi.org/10.1016/j.molcatb.2013.08.017 SN - 1381-1177 IS - 103 SP - 56 EP - 60 ER - TY - GEN A1 - Kluge, Martin A1 - Ullrich, René A1 - Scheibner, Katrin A1 - Hofrichter, Martin T1 - Stereoselective benzylic hydroxylation of alkylbenzenes and epoxidation of styrene derivatives catalyzed by the peroxygenase of Agrocybe aegerita T2 - Green Chemistry N2 - Here we report on the stereoselective benzylic hydroxylation and C1-C2 epoxidation of alkylbenzenes and styrene derivatives, respectively, by a heme-thiolate peroxygenase (EC 1.11.2.1) from the fungus Agrocybe aegerita. Benzylic hydroxylation led exclusively to the (R)-1-phenylalkanols. For (R)-1-phenylethanol, (R)-1-phenylpropanol and (R)-1-tetralol, the ee reached >99%. For longer chain lengths, the enantiomeric excesses (ee) and total turnover numbers (TTN) decreased while the number of by-products, e.g. 1-phenylketones, increased. Epoxidation of straight chain and cyclic styrene derivatives gave a heterogeneous picture and resulted in moderate to excellent ee values and TTN: e.g., in the case of (1R,2S)-cis-[small beta]-methylstyrene oxide formation, an ee >99% and a TTN of 110 000 was achieved. Hydroxylation and epoxidation were true peroxygenations, which was demonstrated by the incorporation of 18O from H218O2 into the products. The use of fed-batch devices and varying feeding strategies for the substrate and co-substrate turned out to be a suitable approach to optimize peroxygenase catalysis. Y1 - 2012 UR - http://pubs.rsc.org/en/Content/ArticleLanding/2012/GC/C1GC16173C#!divAbstract SN - 1463-9270 IS - 2 SP - 440 EP - 446 ER - TY - GEN A1 - Poraj-Kobielska, Marzena A1 - Kinne, Matthias A1 - Ullrich, René A1 - Scheibner, Katrin A1 - Hofrichter, Martin T1 - A spectrophotometric assay for the detection of fungal peroxygenases T2 - Analytical Biochemistry N2 - Rapid and simple spectrophotometric methods are required for the unambiguous detection of recently discovered fungal peroxygenases in vivo and in vitro. This paper describes a peroxygenase-specific assay using 5-nitro-1,3-benzodioxole as substrate. The product, 4-nitrocatechol, produces a yellow color at pH 7, which can be followed over time at 425 nm (ε425 = 9,700 M−1 cm−1), and a red color when adjusted to pH >12, which can be measured in form of an end-point determination at 514 nm (ε514 = 11,400 M−1 cm−1). The assay is suitable for detecting peroxygenase activities in complex growth media and environmental samples as well as for high-throughput screenings. KW - Monooxygenase KW - Peroxidase KW - Heme-thiolate KW - P450 KW - Chloroperoxidase KW - 5-Nitro-1,3-benzodioxole Y1 - 2012 UR - http://www.sciencedirect.com/science/article/pii/S0003269711006610 UR - 1096-0309 U6 - https://doi.org/10.1016/j.ab.2011.10.009 VL - 421 IS - 1 SP - 327 EP - 329 ER - TY - GEN A1 - Martínez, Angel T. A1 - Ruiz-Dueñas, Francisco J. A1 - Gutiérrez, Ana A1 - Río, José C. del A1 - Alcalde, Miguel A1 - Liers, Christiane A1 - Ullrich, René A1 - Hofrichter, Martin A1 - Scheibner, Katrin A1 - Kalum, Lisbeth A1 - Vind, Jesper A1 - Lund, Henrik T1 - Search, engineering, and applications of new oxidative biocatalysts T2 - Biofuels, Bioproducts and Biorefining N2 - Most industrial enzymes are hydrolases, such as glycosidases and esterases. However, oxidoreductases have an unexploited potential for substituting harsh (and scarcely selective) chemical processes. A group of basidiomycetes are the only organisms degrading the aromatic lignin polymer, enabling the subsequent use of plant polysaccharides. Therefore, these fungi and their ligninolytic peroxidases are the biocatalysts of choice for industrial delignification and oxidative biotransformations of aromatic and other organic compounds. The latter also include oxygenation reactions, which are catalyzed with high regio/stereo selectivity by fungal peroxygenases. In search for novel and more robust peroxidases/peroxygenases, basidiomycetes from unexplored habitats were screened, and hundreds of genes identified in basidiomycete genomes (in collaboration with the DOE JGI). The most interesting genes were heterologously expressed, and the corresponding enzymes structurally-functionally characterized. The information obtained enabled us to improve the enzyme operational and catalytic properties by directed mutagenesis. However, the structural-functional relationships explaining some desirable properties are not established yet and, therefore, their introduction was addressed by ‘non-rational’ directed evolution. Then, over 100 oxidative biotransformations were analyzed. Among them, it is noteworthy to mention the regio/stereo selective hydroxylation of long/short-chain alkanes (a chemically challenging reaction), epoxidation of alkenes, and production of hydroxy-fatty acids. Concerning aromatic oxygenations, the regioselective hydroxylation of flavonoids, and stereoselective hydroxylation/epoxidation of alkyl/alkenyl-benzenes were among the most remarkable reactions, together with enzymatic hydroxylation of benzene (as an alternative for harsh chemical process). Finally, peroxidases and peroxygenases also showed a potential as delignification biocatalysts and in the decolorization of contaminant dyes from textile industries. KW - peroxygenases KW - peroxidases KW - lignin degradation KW - oxidative industrial biocatalysts KW - enzyme rational design KW - directed enzyme evolution KW - selective oxygenation Y1 - 2014 UR - http://onlinelibrary.wiley.com/doi/10.1002/bbb.1498/abstract U6 - https://doi.org/10.1002/bbb.1498 SN - 1932-1031 VL - 8 IS - 6 SP - 819 EP - 835 ER - TY - PAT A1 - Poraj-Kobielska, Marzena A1 - Scheibner, Katrin A1 - Gröbe, Glenn A1 - Kiebist, Jan A1 - Grün, Manfred A1 - Ullrich, René A1 - Hofrichter, Martin T1 - Verfahren zur Deacylierung von Corticoiden Y1 - 2014 ER - TY - GEN A1 - Kluge, Martin A1 - Ullrich, René A1 - Scheibner, Katrin A1 - Hofrichter, Martin T1 - Spectrophotometric assay for detection of aromatic hydroxylation catalyzed by fungal haloperoxidase–peroxygenase T2 - Applied Microbiology and Biotechnology N2 - Agrocybe aegerita peroxidase (AaP) is a versatile heme-thiolate protein that can act as a peroxygenase and catalyzes, among other reactions, the hydroxylation of aromatic rings. This paper reports a rapid and selective spectrophotometric method for directly detecting aromatic hydroxylation by AaP. The weakly activated aromatic compound naphthalene served as the substrate that was regioselectively converted into 1-naphthol in the presence of the co-substrate hydrogen peroxide. Formation of 1-naphthol was followed at 303 nm (ɛ 303 = 2,010 M−1 cm−1), and the apparent Michaelis–Menten (K m) and catalytic (k cat) constants for the reaction were estimated to be 320 μM and 166 s−1, respectively. This method will be useful in screening of fungi and other microorganisms for extracellular peroxygenase activities and in comparing and assessing different catalytic activities of haloperoxidase–peroxygenases. KW - Hydroxylation KW - Peroxygenase Y1 - 2007 UR - http://link.springer.com/article/10.1007%2Fs00253-007-0942-8 U6 - https://doi.org/10.1007/s00253-007-0942-8 SN - 1432-0614 VL - 75 IS - 6 SP - 1473 EP - 1478 ER - TY - GEN A1 - Ullrich, René A1 - Nüske, Jörg A1 - Scheibner, Katrin A1 - Spantzel, Jörg A1 - Hofrichter, Martin T1 - Novel Haloperoxidase from the Agaric Basidiomycete Agrocybe aegerita Oxidizes Aryl Alcohols and Aldehydes T2 - Applied and Environmental Microbiology N2 - Agrocybe aegerita, a bark mulch- and wood-colonizing basidiomycete, was found to produce a peroxidase (AaP) that oxidizes aryl alcohols, such as veratryl and benzyl alcohols, into the corresponding aldehydes and then into benzoic acids. The enzyme also catalyzed the oxidation of typical peroxidase substrates, such as 2,6-dimethoxyphenol (DMP) or 2,2′-azinobis-(3-ethylbenzothiazoline-6-sulfonate) (ABTS). A. aegerita peroxidase production depended on the concentration of organic nitrogen in the medium, and highest enzyme levels were detected in the presence of soybean meal. Two fractions of the enzyme, AaP I and AaP II, which had identical molecular masses (46 kDa) and isoelectric points of 4.6 to 5.4 and 4.9 to 5.6, respectively (corresponding to six different isoforms), were identified after several steps of purification, including anion- and cation-exchange chromatography. The optimum pH for the oxidation of aryl alcohols was found to be around 7, and the enzyme required relatively high concentrations of H2O2 (2 mM) for optimum activity. The apparent Km values for ABTS, DMP, benzyl alcohol, veratryl alcohol, and H2O2 were 37, 298, 1,001, 2,367 and 1,313 μM, respectively. The N-terminal amino acid sequences of the main AaP II spots blotted after two-dimensional gel electrophoresis were almost identical and exhibited almost no homology to the sequences of other peroxidases from basidiomycetes, but they shared the first three amino acids, as well as two additional amino acids, with the heme chloroperoxidase (CPO) from the ascomycete Caldariomyces fumago. This finding is consistent with the fact that AaP halogenates monochlorodimedone, the specific substrate of CPO. The existence of haloperoxidases in basidiomycetous fungi may be of general significance for the natural formation of chlorinated organic compounds in forest soils. KW - Agrocybe aegerita KW - Peroxygenase KW - Peroxidase KW - Basidiomycete Y1 - 2004 UR - http://aem.asm.org/content/70/8/4575.long U6 - https://doi.org/10.1128/AEM.70.8.4575-4581.2004 SN - 1098-5336 VL - 70 IS - 8 SP - 4575 EP - 4581 ER -