TY - GEN A1 - Steinbrecht, Susanne A1 - Kiebist, Jan A1 - König, Rosalie A1 - Thiessen, Markus A1 - Schmidtke, Kai-Uwe A1 - Kammerer, Sarah A1 - Küpper, Jan-Heiner A1 - Scheibner, Katrin T1 - Synthesis of cyclophosphamide metabolites by a peroxygenase from Marasmius rotula for toxicological studies on human cancer cells T2 - AMB Express N2 - Cyclophosphamide (CPA) represents a widely used anti-cancer prodrug that is converted by liver cytochrome P450 (CYP) enzymes into the primary metabolite 4-hydroxycyclophosphamide (4-OH-CPA), followed by non-enzymatic generation of the bioactive metabolites phosphoramide mustard and acrolein. The use of human drug metabolites as authentic standards to evaluate their toxicity is essential for drug development. However, the chemical synthesis of 4-OH-CPA is complex and leads to only low yields and undesired side products. In past years, fungal unspecific peroxygenases (UPOs) have raised to powerful biocatalysts. They can exert the identical selective oxyfunctionalization of organic compounds and drugs as known for CYP enzymes with hydrogen peroxide being used as sole cosubstrate. Herein, we report the efficient enzymatic hydroxylation of CPA using the unspecific peroxygenase from Marasmius rotula (MroUPO) in a simple reaction design. Depending on the conditions used the primary liver metabolite 4-OH-CPA, its tautomer aldophosphamide (APA) and the overoxidized product 4-ketocyclophosphamide (4-keto-CPA) could be obtained. Using a kinetically controlled approach 4-OH-CPA was isolated with a yield of 32% (purity > 97.6%). Two human cancer cell lines (HepG2 and MCF-7) were treated with purified 4-OH-CPA produced by MroUPO (4-OH-CPAUPO). 4-OH-CPAUPO–induced cytotoxicity as measured by a luminescent cell viability assay and its genotoxicity as measured by γH2AX foci formation was not significantly different to the commercially available standard. The high yield of 4-OH-CPAUPO and its biological activity demonstrate that UPOs can be efficiently used to produce CYP-specific drug metabolites for pharmacological assessment. KW - Biocatalysis KW - Cyclophosphamide KW - Human drug metabolites KW - Peroxygenase KW - Toxicity Y1 - 2020 UR - https://amb-express.springeropen.com/articles/10.1186/s13568-020-01064-w U6 - https://doi.org/10.1186/s13568-020-01064-w SN - 2191-0855 VL - 10 ER - TY - PAT A1 - Scheibner, Katrin A1 - Kiebist, Jan A1 - Schmidtke, Kai-Uwe A1 - Küpper, Jan-Heiner T1 - Verfahren zur enzymatischen Herstellung von zytostatischen 4-Hydroxy-Oxazaphosphorinen“ Y1 - 2020 UR - https://www.b-tu.de/enzymtechnologie/publikationen/patente 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 - Kiebist, Jan A1 - Holla, Wolfgang A1 - Heidrich, Johannes A1 - Poraj-Kobielska, Marzena A1 - Sandvoss, Martin A1 - Simonis, Reiner A1 - Gröbe, Glenn A1 - Atzrodt, Jens A1 - Hofrichter, Martin A1 - Scheibner, Katrin T1 - One-pot synthesis of human metabolites of SAR548304 by fungal peroxygenases T2 - Bioorganic & Medicinal Chemistry N2 - Unspecific peroxygenases (UPOs, EC 1.11.2.1) have proved to be stable oxygen-transferring biocatalysts for H2O2-dependent transformation of pharmaceuticals. We have applied UPOs in a drug development program and consider the enzymatic approach in parallel to a conventional chemical synthesis of the human metabolites of the bile acid reabsorption inhibitor SAR548304. Chemical preparation of N,N-di-desmethyl metabolite was realized by a seven-step synthesis starting from a late precursor of SAR548304 and included among others palladium catalysis and laborious chromatographic purification with an overall yield of 27%. The enzymatic approach revealed that the UPO of Marasmius rotula is particularly suitable for selective N-dealkylation of the drug and enabled us to prepare both human metabolites via one-pot conversion with an overall yield of 66% N,N-di-desmethyl metabolite and 49% of N-mono-desmethylated compound in two separated kinetic-controlled reactions. KW - Peroxgenase Y1 - 2015 UR - http://www.sciencedirect.com/science/article/pii/S0968089615005295 U6 - https://doi.org/10.1016/j.bmc.2015.06.035 SN - 0968-0896 VL - 23 IS - 15 SP - 4324 EP - 4332 ER - TY - GEN A1 - Kiebist, Jan A1 - Schmidtke, Kai-Uwe A1 - Zimmermann, Jörg A1 - Kellner, Harald A1 - Jehmlich, Nico A1 - Ullrich, René A1 - Zänder, Daniel A1 - Hofrichter, Martin A1 - Scheibner, Katrin T1 - A peroxygenase from Chaetomium globosum catalyzes the selective oxygenation of testosterone T2 - ChemBioChem N2 - Unspecific peroxygenases (UPO, EC 1.11.2.1) secreted by fungi open an efficient way to selectively oxyfunctionalize diverse organic substrates including less activated hydrocarbons by transferring peroxide-borne oxygen. Herein, we investigated a cell-free approach to incorporate epoxy and hydroxyl functionalities directly into the bulky molecule of testosterone by a novel unspecific peroxygenase that was produced by the ascomycetous fungus Chaetomium globosum in a complex medium rich in carbon and nitrogen. Purification by fast protein liquid chromatography revealed two enzyme fractions with the same molecular mass of 36 kDa and specific activities of 4.4 to 12 U mg-1. Whereas well-known UPOs of Agrocybe aegerita (AaeUPO) and Marasmius rotula (MroUPO) failed to convert testosterone in a comparative study, the UPO of C. globosum (CglUPO) accepted testosterone as substrate and converted it with up to 7,000 total turnovers (TTN) into two oxygenated products: the 4,5-epoxide of testosterone in β-configuration and 16α-hydroxytestosterone. The reaction was performed at 100-mg scale resulting in the formation of about 90 % of the epoxide and 10 % of the hydroxylation product, which both could be isolated with purities above 96 %. Thus, CglUPO may be a promising biocatalyst for the oxyfunctionalization of bulky steroids and provide a useful tool for the synthesis of pharmaceutically relevant steroidal molecules. KW - peroxidase KW - hydroxylation Y1 - 2017 UR - http://onlinelibrary.wiley.com/doi/10.1002/cbic.201600677/abstract U6 - https://doi.org/10.1002/cbic.201600677 SN - 1439-7633 VL - 18 IS - 6 SP - 563 EP - 569 ER - TY - GEN A1 - Olmedo, Andrés A1 - Aranda, Carmen A1 - Rio, José C. del A1 - Kiebist, Jan A1 - Scheibner, Katrin A1 - Martínez, Angel T. A1 - Gutiérrez, Ana T1 - From Alkanes to Carboxylic Acids: Terminal Oxygenation by a Fungal Peroxygenase T2 - Angewandte Chemie International Edition N2 - A new heme–thiolate peroxidase catalyzes the hydroxylation of n-alkanes at the terminal position—a challenging reaction in organic chemistry—with H2O2 as the only cosubstrate. Besides the primary product, 1-dodecanol, the conversion of dodecane yielded dodecanoic, 12-hydroxydodecanoic, and 1,12-dodecanedioic acids, as identified by GC–MS. Dodecanal could be detected only in trace amounts, and 1,12-dodecanediol was not observed, thus suggesting that dodecanoic acid is the branch point between mono- and diterminal hydroxylation. Simultaneously, oxygenation was observed at other hydrocarbon chain positions (preferentially C2 and C11). Similar results were observed in reactions of tetradecane. The pattern of products formed, together with data on the incorporation of 18O from the cosubstrate H218O2, demonstrate that the enzyme acts as a peroxygenase that is able to catalyze a cascade of mono- and diterminal oxidation reactions of long-chain n-alkanes to give carboxylic acids. KW - Peroxyenase Y1 - 2016 UR - http://onlinelibrary.wiley.com/doi/10.1002/anie.201605430/abstract U6 - https://doi.org/10.1002/anie.201605430 SN - 1521-3773 VL - 55 IS - 40 SP - 12248 EP - 12251 ER - TY - GEN A1 - Olmedo, Andrés A1 - Río, José C. del A1 - Kiebist, Jan A1 - Ullrich, René A1 - Hofrichter, Martin A1 - Scheibner, Katrin A1 - Martínez, Angel T. A1 - Gutiérrez, Ana T1 - Fatty Acid Chain Shortening by a Fungal Peroxygenase T2 - Chemistry A European Journal N2 - A recently discovered peroxygenase from the fungus Marasmius rotula (MroUPO) is able to catalyze the progressive one-carbon shortening of medium and longchain mono- and dicarboxylic acids by itself alone, in the presence of H₂O₂. The mechanism, analyzed using H₂O, starts with an a-oxidation catalyzed by MroUPO generat- ing an α-hydroxy acid, which is further oxidized by the enzyme to a reactive α-keto intermediate whose decarboxylation yields the one-carbon shorter fatty acid. Compared with the previously characterized peroxygenase of Agrocybe aegerita, a wider heme access channel, enabling fatty acid positioning with the carboxylic end near the heme cofactor (as seen in one of the crystal structures available) could be at the origin of the unique ability of MroUPO shortening carboxylic acid chains. KW - Peroxygenase Y1 - 2017 U6 - https://doi.org/10.1002/chem.201704773 SN - 1521-3765 SN - 0947-6539 VL - 23 SP - 16989 EP - 67 ER - TY - GEN A1 - Aranda, Carmen A1 - Olmedo, Andrés A1 - Kiebist, Jan A1 - Scheibner, Katrin A1 - Río, José C. del A1 - Martínez, Angel T. A1 - Gutiérrez, Ana T1 - Selective Epoxidation of Fatty Acids and Fatty Acid Methyl Esters by Fungal Peroxygenases T2 - CHEMCATCHEM N2 - Recently discovered fungal unspecific peroxygenases from Marasmius rotula and Chaetomium globosum catalyze the epoxidation of unsaturated fatty acids (FA) and FA methyl esters (FAME), unlike the well‐known peroxygenases from Agrocybe aegerita and Coprinopsis cinerea. Reactions of a series of unsaturated FA and FAME with cis‐configuration revealed high (up to 100 %) substrate conversion and selectivity towards epoxidation, although some significant differences were observed between enzymes and substrates with the best results being obtained with the C. globosum enzyme. This and the M. rotula peroxygenase appear as promising biocatalysts for the environmentally‐friendly production of reactive FA epoxides given their self‐sufficient monooxygenase activity and the high conversion rate and epoxidation selectivity. KW - Peroxygenase Y1 - 2018 U6 - https://doi.org/10.1002/cctc.201800849 SN - 1867-3899 VL - 10 IS - 18 SP - 3964 EP - 3968 ER - TY - GEN A1 - Kiebist, Jan A1 - Koncz, Tino A1 - Friedrich, Stephanie A1 - Scheibner, Katrin T1 - Oxidative biocatalysts to design new oxyfunctionalization tools for drugs and added value bio-based products T2 - International Biotech Innovation Days 2020 (IBID), 28th – 29th October 2020 KW - Peroxygenase Y1 - 2020 UR - https://www.b-tu.de/ibid/program#c243720 CY - Senftenberg ER - TY - GEN A1 - Scheibner, Katrin A1 - Ullrich, René A1 - Kiebist, Jan A1 - Kellner, Harald A1 - Hofrichter, Martin T1 - Unspezifische Peroxygenasen - Oxyfunktionalisierung außerhalb der Pilzhyphe T2 - Biospektrum KW - Peroxygenase Y1 - 2020 U6 - https://doi.org/10.1007/s12268-020-1338-x SN - 1868-6249 SN - 0947-0867 VL - 26 IS - 1 SP - 103 EP - 106 ER - TY - GEN A1 - Kiebist, Jan A1 - Schmidtke, Kai-Uwe A1 - Schramm, Marina A1 - Hofrichter, Martin A1 - König, Rosalie A1 - Quint, Stephan A1 - Kohlmann, Johannes A1 - Zuhse, Ralf A1 - Ullrich, René A1 - Hofrichter, Martin A1 - Scheibner, Katrin T1 - Biocatalytic syntheses of antiplatelet metabolites of the thienopyridines clopidogrel and prasugrel using fungal peroxygenases T2 - Journal of Fungi N2 - Antithrombotic thienopyridines, such as clopidogrel and prasugrel, are prodrugs that undergo a metabolic two-step bioactivation for their pharmacological efficacy. In the first step, a thiolactone is formed, which is then converted by cytochrome P450-dependent oxidation via sulfenic acids to the active thiol metabolites. These metabolites are the active compounds that inhibit the platelet P2Y12 receptor and thereby prevent atherothrombotic events. Thus far, described biocatalytic and chemical synthesis approaches to obtain active thienopyridine metabolites are rather complex and suffer from low yields. In the present study, several unspecific peroxygenases (UPOs, EC 1.11.2.1) known to efficiently mimic P450 reactions in vitro—but requiring only hydroperoxide as oxidant—were tested for biocatalytic one-pot syntheses. In the course of the reaction optimization, various parameters such as pH and reductant, as well as organic solvent and amount were varied. The best results for the conversion of 1 mM thienopyridine were achieved using 2 U mL−1 of a UPO from agaric fungus Marasmius rotula (MroUPO) in a phosphate-buffered system (pH 7) containing 5 mM ascorbate, 2 mM h−1 H2O2 and 20% acetone. The preparation of the active metabolite of clopidogrel was successful via a two-step oxidation with an overall yield of 25%. In the case of prasugrel, a cascade of porcine liver esterase (PLE) and MroUPO was applied, resulting in a yield of 44%. The two metabolites were isolated with high purity, and their structures were confirmed by MS and MS2 spectrometry as well as NMR spectroscopy. The findings broaden the scope of UPO applications again and demonstrate that they can be effectively used for the selective synthesis of metabolites and late-state diversification of organic molecules, circumventing complex multistage chemical syntheses and providing sufficient material for structural elucidation, reference material, or cellular assays. KW - Peroxygenase KW - clopidogrel Y1 - 2021 UR - https://www.mdpi.com/2309-608X/7/9/752 U6 - https://doi.org/10.3390/jof7090752 SN - 2309-608X VL - 7 IS - 9 SP - 1 EP - 17 ER - TY - GEN A1 - Gomes de Santos, Patricia A1 - Hoang, Manh Dat A1 - Kiebist, Jan A1 - Kellner, Harald A1 - Ullrich, René A1 - Scheibner, Katrin A1 - Hofrichter, Martin A1 - Liers, Christiane A1 - Alcalde, Miguel T1 - Functional Expression of Two Unusual Acidic Peroxygenases from Candolleomyces aberdarensis in Yeasts by Adopting Evolved Secretion Mutations T2 - Applied and environmental microbiology N2 - Fungal unspecific peroxygenases (UPOs) are emergent biocatalysts that perform highly selective C-H oxyfunctionalizations of organic compounds, yet their heterologous production at high levels is required for their practical use in synthetic chemistry. Here, we achieved functional expression of two new unusual acidic peroxygenases from Candolleomyces (Psathyrella) aberdarensis (PabUPO) in yeasts and their production at a large scale in a bioreactor. Our strategy was based on adopting secretion mutations from an Agrocybe aegerita UPO mutant, the PaDa-I variant, designed by directed evolution for functional expression in yeast, which belongs to the same phylogenetic family as PabUPOs, long-type UPOs, and shares 65% sequence identity. After replacing the native signal peptides with the evolved leader sequence from PaDa-I, we constructed and screened site-directed recombination mutant libraries, yielding two recombinant PabUPOs with expression levels of 5.4 and 14.1 mg/liter in Saccharomyces cerevisiae. These variants were subsequently transferred to Pichia pastoris for overproduction in a fed-batch bioreactor, boosting expression levels up to 290 mg/liter, with the highest volumetric activity achieved to date for a recombinant peroxygenase (60,000 U/liter, with veratryl alcohol as the substrate). With a broad pH activity profile, ranging from pH 2.0 to 9.0, these highly secreted, active, and stable peroxygenases are promising tools for future engineering endeavors as well as for their direct application in different industrial and environmental settings. KW - Peroxygenase KW - heterologous functional expression Y1 - 2021 UR - https://journals.asm.org/doi/10.1128/AEM.00878-21 U6 - https://doi.org/10.1128/AEM.00878-21 SN - 1098-5336 SN - 0099-2240 VL - 87 IS - 19 ER - TY - GEN A1 - Hofrichter, Martin A1 - Kellner, Harald A1 - Herzog, Robert A1 - Karich, Alexander A1 - Kiebist, Jan A1 - Scheibner, Katrin A1 - Ullrich, René T1 - Peroxide-Mediated Oxygenation of Organic Compounds by Fungal Peroxygenases T2 - Antioxidants N2 - Unspecific peroxygenases (UPOs), whose sequences can be found in the genomes of thousands of filamentous fungi, many yeasts and certain fungus-like protists, are fascinating biocatalysts that transfer peroxide-borne oxygen (from H2O2 or R-OOH) with high efficiency to a wide range of organic substrates, including less or unactivated carbons and heteroatoms. A twice-proline-flanked cysteine (PCP motif) typically ligates the heme that forms the heart of the active site of UPOs and enables various types of relevant oxygenation reactions (hydroxylation, epoxidation, subsequent dealkylations, deacylation, or aromatization) together with less specific one-electron oxidations (e.g., phenoxy radical formation). In consequence, the substrate portfolio of a UPO enzyme always combines prototypical monooxygenase and peroxidase activities. Here, we briefly review nearly 20 years of peroxygenase research, considering basic mechanistic, molecular, phylogenetic, and biotechnological aspects. KW - unspecific peroxygenase KW - monooxygenase KW - peroxidases KW - hydroxylation KW - epoxidation KW - dealkylation Y1 - 2022 UR - https://www.mdpi.com/2076-3921/11/1/163 U6 - https://doi.org/10.3390/antiox11010163 SN - 2076-3921 VL - 11 IS - 1 SP - 1 EP - 21 ER - TY - GEN A1 - Babot, Esteban D. A1 - Aranda, Carmen A1 - Kiebist, Jan A1 - Scheibner, Katrin A1 - Ullrich, René A1 - Hofrichter, Martin A1 - Martínez, Angel T. A1 - Gutierrez, Ana T1 - Enzymatic Epoxidation of Long-Chain Terminal Alkenes by Fungal Peroxygenases T2 - Antioxidants N2 - Terminal alkenes are among the most attractive starting materials for the synthesis of epoxides, which are essential and versatile intermediate building blocks for the pharmaceutical, flavoring, and polymer industries. Previous research on alkene epoxidation has focused on the use of several oxidizing agents and/or different enzymes, including cytochrome P450 monooxygenases, as well as microbial whole-cell catalysts that have several drawbacks. Alternatively, we explored the ability of unspecific peroxygenases (UPOs) to selectively epoxidize terminal alkenes. UPOs are attractive biocatalysts because they are robust extracellular enzymes and only require H2O2 as cosubstrate. Here, we show how several UPOs, such as those from Cyclocybe (Agrocybe) aegerita (AaeUPO), Marasmius rotula (MroUPO), Coprinopsis cinerea (rCciUPO), Humicola insolens (rHinUPO), and Daldinia caldariorum (rDcaUPO), are able to catalyze the epoxidation of long-chain terminal alkenes (from C12:1 to C20:1) after an initial optimization of several reaction parameters (cosolvent, cosubstrate, and pH). In addition to terminal epoxides, alkenols and other hydroxylated derivatives of the alkenes were formed. Although all UPOs were able to convert and epoxidize the alkenes, notable differences were observed between them, with rCciUPO being responsible for the highest substrate turnover and MroUPO being the most selective with respect to terminal epoxidation. The potential of peroxygenases for epoxidizing long-chain terminal alkenes represents an interesting and green alternative to the existing synthesis technologies. KW - Peroxygenase KW - oxyfunctionalization KW - epoxidation KW - terminal alkenes KW - epoxides Y1 - 2022 UR - https://www.mdpi.com/2076-3921/11/3/522 U6 - https://doi.org/10.3390/antiox11030522 SN - 2076-3921 VL - 11 IS - 3 SP - 1 EP - 12 ER - TY - GEN A1 - Aranda, Carmen A1 - Ullrich, René A1 - Kiebist, Jan A1 - Scheibner, Katrin A1 - Río, José C. del A1 - Hofrichter, Martin A1 - Martínez, Angel T. A1 - Gutiérrez, Ana T1 - Selective synthesis of the resveratrol analogue 4,4′-dihydroxy-trans-stilbene and stilbenoids modification by fungal peroxygenases T2 - Catalysis Science & Technology N2 - This work gives first evidence that the unspecific peroxygenases (UPOs) from the basidiomycetes Agrocybe aegerita (AaeUPO), Coprinopsis cinerea (rCciUPO) and Marasmius rotula (MroUPO) are able to catalyze the regioselective hydroxylation of trans-stilbene to 4,4′-dihydroxy-trans-stilbene (DHS), a resveratrol (RSV) analogue whose preventive effects on cancer invasion and metastasis have very recently been shown. Nearly complete transformation of substrate (yielding DHS) was achieved with the three enzymes tested, using H2O2 as the only co-substrate, with AaeUPO showing exceptionally higher total turnover number (200 000) than MroUPO (26 000) and rCciUPO (1400). Kinetic studies demonstrated that AaeUPO was the most efficient enzyme catalyzing stilbene dihydroxylation with catalytic efficiencies (kcat/Km) one and two orders of magnitude higher than those of MroUPO and rCciUPO, so that 4-hydroxystilbene appears to be the best UPO substrate reported to date. In contrast, the peroxygenase from the ascomycete Chaetomium globosum (CglUPO) failed to hydroxylate trans-stilbene at the aromatic ring and instead produced the trans-epoxide in the alkenyl moiety. In addition, stilbenoids such as pinosylvin (Pin) and RSV were tested as substrates for the enzymatic synthesis of RSV from Pin and oxyresveratrol (oxyRSV) from both RSV and Pin. Overall, lower conversion rates and regioselectivities compared with trans-stilbene were accomplished by three of the UPOs, and no conversion was observed with CglUPO. The highest amount of RSV (63% of products) and oxyRSV (78%) were again attained with AaeUPO. True peroxygenase activity was demonstrated by incorporation of 18O from H218O2 into the stilbene hydroxylation products. Differences in the number of phenylalanine residues at the heme access channels seems related to differences in aromatic hydroxylation activity, since they would facilitate substrate positioning by aromatic-aromatic interactions. The only ascomycete UPO tested (that of C. globosum) turned out to have the most differing active site (distal side of heme cavity) and reactivity with stilbenes resulting in ethenyl epoxidation instead of aromatic hydroxylation. The above oxyfunctionalizations by fungal UPOs represent a novel and simple alternative to chemical synthesis for the production of DHS, RSV and oxyRSV. KW - Peroxygenase Y1 - 2018 U6 - https://doi.org/10.1039/C8CY00272J SN - 2044-4761 SN - 2044-4753 VL - 9 IS - 8 SP - 2394 EP - 2401 ER - TY - GEN A1 - Kellner, Harald A1 - Friedrich, Stephanie A1 - Schmidtke, Kai-Uwe A1 - Ullrich, René A1 - Kiebist, Jan A1 - Zänder, Daniel A1 - Hofrichter, Martin A1 - Scheibner, Katrin T1 - Draft genome sequence of Truncatella angustata (Anamorph) S358 T2 - Microbiology resource announcement N2 - The ascomycete Truncatella angustata has a worldwide distribution. Commonly, it is associated with plants as an endophyte, pathogen, or saprotroph. The genome assembly comprises 44.9 Mbp, a G+C content of 49.2%, and 12,353 predicted genes, among them 12 unspecific peroxygenases (EC 1.11.2.1). KW - unspecific peroxygenase KW - GENOME SEQUENCES KW - Truncatella angustata Y1 - 2022 UR - https://journals.asm.org/doi/epub/10.1128/mra.00052-22 U6 - https://doi.org/10.1128/mra.00052-22 SN - 2169-8287 SN - 2576-098X VL - 11 IS - 7 ER - TY - GEN A1 - König, Rosalie A1 - Kiebist, Jan A1 - Kalmbach, Johannes A1 - Herzog, Robert A1 - Schmidtke, Kai-Uwe A1 - Kellner, Harald A1 - Ullrich, René A1 - Jehmlich, Nico A1 - Hofrichter, Martin A1 - Scheibner, Katrin T1 - Novel unspecific peroxygenase from Truncatella angustata catalyzes the synthesis of bioactive lipid mediators T2 - Microorganisms N2 - Lipid mediators, such as epoxidized or hydroxylated eicosanoids (EETs, HETEs) of arachidonic acid (AA), are important signaling molecules and play diverse roles at different physiological and pathophysiological levels. The EETs and HETEs formed by the cytochrome P450 enzymes are still not fully explored, but show interesting anti-inflammatory properties, which make them attractive as potential therapeutic target or even as therapeutic agents. Conventional methods of chemical synthesis require several steps and complex separation techniques and lead only to low yields. Using the newly discovered unspecific peroxygenase TanUPO from the ascomycetous fungus Truncatella angustata, 90% regioselective conversion of AA to 14,15-EET could be achieved. Selective conversion of AA to 18-HETE, 19-HETE as well as to 11,12-EET and 14,15-EET was also demonstrated with known peroxygenases, i.e., AaeUPO, CraUPO, MroUPO, MweUPO and CglUPO. The metabolites were confirmed by HPLC-ELSD, MS1 and MS2 spectrometry as well as by comparing their analytical data with authentic standards. Protein structure simulations of TanUPO provided insights into its substrate access channel and give an explanation for the selective oxyfunctionalization of AA. The present study expands the scope of UPOs as they can now be used for selective syntheses of AA metabolites that serve as reference material for diagnostics, for structure-function elucidation as well as for therapeutic and pharmacological purposes KW - eicosanoids KW - lipid mediators KW - EETs KW - HETEs KW - unspecific peroxygenases KW - human drug KW - metabolites KW - biocatalysis KW - TanUPO Y1 - 2022 UR - https://www.mdpi.com/2076-2607/10/7/1267 U6 - https://doi.org/10.3390/microorganisms10071267 SN - 2076-2607 VL - 10 IS - 7 SP - 1 EP - 18 ER - TY - GEN A1 - Ingenbosch, Kim N. A1 - Quint, Stephan A1 - Dyllick-Brenzinger, Melanie A1 - Wunschik, Dennis S. A1 - Kiebist, Jan A1 - Süss, Philipp A1 - Liebelt, Ute A1 - Zuhse, Ralf A1 - Menyes, Ulf A1 - Scheibner, Katrin A1 - Mayer, Christian A1 - Opwis, Klaus A1 - Gutmann, Jochen S. A1 - Hoffmann-Jacobsen, Kerstin T1 - Singlet oxygen generation by peroxidases and peroxygenases for chemo-enzymatic synthesis T2 - ChemBioChem N2 - Singlet oxygen is a reactive oxygen species undesired in living cells but a rare and valuable reagent in chemical synthesis. We present a fluorescence spectroscopic analysis of the singlet‐oxygen formation activity of commercial peroxidases and novel peroxygenases. Singlet‐oxygen sensor green (SOSG) is used as fluorogenic singlet oxygen trap. Establishing a kinetic model for the reaction cascade to the fluorescent SOSG endoperoxide permits a kinetic analysis of enzymatic singlet‐oxygen formation. All peroxidases and peroxygenases show singlet‐oxygen formation. No singlet oxygen activity could be found for any catalase under investigation. Substrate inhibition is observed for all reactive enzymes. The commercial dye‐decolorizing peroxidase industrially used for dairy bleaching shows the highest singlet‐oxygen activity and the lowest inhibition. This enzyme was immobilized on a textile carrier and successfully applied for a chemical synthesis. Here, ascaridole was synthesized via enzymatically produced singlet oxygen. KW - Peroxygenase Y1 - 2021 U6 - https://doi.org/10.1002/cbic.202000326 SN - 1439-7633 SN - 1439-4227 VL - 22 IS - 2 SP - 398 EP - 407 ER - TY - CHAP A1 - Kiebist, Jan A1 - Hofrichter, Martin A1 - Zuhse, Ralf A1 - Scheibner, Katrin ED - Grunwald, Peter T1 - Oxyfunctionalization of Pharmaceuticals by Fungal Peroxygenases T2 - Pharmaceutical biocatalysis : chemoenzymatic synthesis of active pharmaceutical ingredients N2 - Throughout drug discovery and development, metabolic studies are driven by an increased interest to understand the potential for side effects and drug-drug interactions. Peroxygenases are a subclass of peroxide-dependent enzymes that catalyze the transfer of a peroxide-borne oxygen to diverse substrates. The selective oxyfunctionalization of organic molecules is one of the major challenges for the chemical community. Benzylic hydroxylation is one of the most frequently observed reactions of unspecific peroxygenases due to the activated nature of benzylic C–H bonds. The hydroxylation of aromatic rings is a common reaction in the formation of drug metabolites by P450s in mammals including humans. In the liver, P450s facilely metabolize secondary and tertiary amines as well as ethers to the corresponding dealkylated metabolites. The regio- and stereoselective direct introduction of oxygen functionalities into complex pharmaceuticals is a great challenge for organic chemists. KW - Peroxygenase Y1 - 2019 SN - 978-981-4800-80-8 SN - 978-1-00-070757-1 SP - 643 EP - 673 PB - Jenny Stanford Publishing Pte. Ltd. CY - Singapore ET - 1. Auflage ER - TY - GEN A1 - Walter, Ruben Magnus A1 - Zemella, Anne A1 - Schramm, Marina A1 - Kiebist, Jan A1 - Kubick, Stefan T1 - Vesicle-based cell-free synthesis of short and long unspecific peroxygenases T2 - Frontiers in Bioengineering and Biotechnology N2 - Unspecific peroxygenases (UPOs, EC 1.11.2.1) are fungal enzymes that catalyze the oxyfunctionalization of non-activated hydrocarbons, making them valuable biocatalysts. Despite the increasing interest in UPOs that has led to the identification of thousands of putative UPO genes, only a few of these have been successfully expressed and characterized. There is currently no universal expression system in place to explore their full potential. Cell-free protein synthesis has proven to be a sophisticated technique for the synthesis of difficult-to-express proteins. In this work, we aimed to establish an insect-based cell-free protein synthesis (CFPS) platform to produce UPOs. CFPS relies on translationally active cell lysates rather than living cells. The system parameters can thus be directly manipulated without having to account for cell viability, thereby making it highly adaptable. The insect-based lysate contains translocationally active, ER-derived vesicles, called microsomes. These microsomes have been shown to allow efficient translocation of proteins into their lumen, promoting post-translational modifications such as disulfide bridge formation and N-glycosylations. In this study the ability of a redox optimized, vesicle-based, eukaryotic CFPS system to synthesize functional UPOs was explored. The influence of different reaction parameters as well as the influence of translocation on enzyme activity was evaluated for a short UPO from Marasmius rotula and a long UPO from Agrocybe aegerita. The capability of the CFPS system described here was demonstrated by the successful synthesis of a novel UPO from Podospora anserina, thus qualifying CFPS as a promising tool for the identification and evaluation of novel UPOs and variants thereof. KW - cell-free protein synthesis KW - enzymes KW - unspecific peroxygenases KW - insect cell lysate Y1 - 2022 U6 - https://doi.org/10.3389/fbioe.2022.964396 SN - 2296-4185 VL - 10 ER -