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 - 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 - 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 -