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The Cytochrome P450 OxyA from the Kistamicin Biosynthesis Cyclization Cascade is Highly Sensitive to Oxidative Damage

Cytochrome P450 enzymes (P450s) are a superfamily of monooxygenases that utilize a cysteine thiolate–ligated heme moiety to perform a wide range of demanding oxidative transformations. Given the oxidative power of the active intermediate formed within P450s during their active cycle, it is remarkabl...

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Autores principales: Greule, Anja, Izoré, Thierry, Machell, Daniel, Hansen, Mathias H., Schoppet, Melanie, De Voss, James J., Charkoudian, Louise K., Schittenhelm, Ralf B., Harmer, Jeffrey R., Cryle, Max J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9023744/
https://www.ncbi.nlm.nih.gov/pubmed/35464232
http://dx.doi.org/10.3389/fchem.2022.868240
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author Greule, Anja
Izoré, Thierry
Machell, Daniel
Hansen, Mathias H.
Schoppet, Melanie
De Voss, James J.
Charkoudian, Louise K.
Schittenhelm, Ralf B.
Harmer, Jeffrey R.
Cryle, Max J.
author_facet Greule, Anja
Izoré, Thierry
Machell, Daniel
Hansen, Mathias H.
Schoppet, Melanie
De Voss, James J.
Charkoudian, Louise K.
Schittenhelm, Ralf B.
Harmer, Jeffrey R.
Cryle, Max J.
author_sort Greule, Anja
collection PubMed
description Cytochrome P450 enzymes (P450s) are a superfamily of monooxygenases that utilize a cysteine thiolate–ligated heme moiety to perform a wide range of demanding oxidative transformations. Given the oxidative power of the active intermediate formed within P450s during their active cycle, it is remarkable that these enzymes can avoid auto-oxidation and retain the axial cysteine ligand in the deprotonated—and thus highly acidic—thiolate form. While little is known about the process of heme incorporation during P450 folding, there is an overwhelming preference for one heme orientation within the P450 active site. Indeed, very few structures to date contain an alternate heme orientation, of which two are OxyA homologs from glycopeptide antibiotic (GPA) biosynthesis. Given the apparent preference for the unusual heme orientation shown by OxyA enzymes, we investigated the OxyA homolog from kistamicin biosynthesis (OxyA(kis)), which is an atypical GPA. We determined that OxyA(kis) is highly sensitive to oxidative damage by peroxide, with both UV and EPR measurements showing rapid bleaching of the heme signal. We determined the structure of OxyA(kis) and found a mixed population of heme orientations present in this enzyme. Our analysis further revealed the possible modification of the heme moiety, which was only present in samples where the alternate heme orientation was present in the protein. These results suggest that the typical heme orientation in cytochrome P450s can help prevent potential damage to the heme—and hence deactivation of the enzyme—during P450 catalysis. It also suggests that some P450 enzymes involved in GPA biosynthesis may be especially prone to oxidative damage due to the heme orientation found in their active sites.
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spelling pubmed-90237442022-04-23 The Cytochrome P450 OxyA from the Kistamicin Biosynthesis Cyclization Cascade is Highly Sensitive to Oxidative Damage Greule, Anja Izoré, Thierry Machell, Daniel Hansen, Mathias H. Schoppet, Melanie De Voss, James J. Charkoudian, Louise K. Schittenhelm, Ralf B. Harmer, Jeffrey R. Cryle, Max J. Front Chem Chemistry Cytochrome P450 enzymes (P450s) are a superfamily of monooxygenases that utilize a cysteine thiolate–ligated heme moiety to perform a wide range of demanding oxidative transformations. Given the oxidative power of the active intermediate formed within P450s during their active cycle, it is remarkable that these enzymes can avoid auto-oxidation and retain the axial cysteine ligand in the deprotonated—and thus highly acidic—thiolate form. While little is known about the process of heme incorporation during P450 folding, there is an overwhelming preference for one heme orientation within the P450 active site. Indeed, very few structures to date contain an alternate heme orientation, of which two are OxyA homologs from glycopeptide antibiotic (GPA) biosynthesis. Given the apparent preference for the unusual heme orientation shown by OxyA enzymes, we investigated the OxyA homolog from kistamicin biosynthesis (OxyA(kis)), which is an atypical GPA. We determined that OxyA(kis) is highly sensitive to oxidative damage by peroxide, with both UV and EPR measurements showing rapid bleaching of the heme signal. We determined the structure of OxyA(kis) and found a mixed population of heme orientations present in this enzyme. Our analysis further revealed the possible modification of the heme moiety, which was only present in samples where the alternate heme orientation was present in the protein. These results suggest that the typical heme orientation in cytochrome P450s can help prevent potential damage to the heme—and hence deactivation of the enzyme—during P450 catalysis. It also suggests that some P450 enzymes involved in GPA biosynthesis may be especially prone to oxidative damage due to the heme orientation found in their active sites. Frontiers Media S.A. 2022-04-08 /pmc/articles/PMC9023744/ /pubmed/35464232 http://dx.doi.org/10.3389/fchem.2022.868240 Text en Copyright © 2022 Greule, Izoré, Machell, Hansen, Schoppet, De Voss, Charkoudian, Schittenhelm, Harmer and Cryle. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Greule, Anja
Izoré, Thierry
Machell, Daniel
Hansen, Mathias H.
Schoppet, Melanie
De Voss, James J.
Charkoudian, Louise K.
Schittenhelm, Ralf B.
Harmer, Jeffrey R.
Cryle, Max J.
The Cytochrome P450 OxyA from the Kistamicin Biosynthesis Cyclization Cascade is Highly Sensitive to Oxidative Damage
title The Cytochrome P450 OxyA from the Kistamicin Biosynthesis Cyclization Cascade is Highly Sensitive to Oxidative Damage
title_full The Cytochrome P450 OxyA from the Kistamicin Biosynthesis Cyclization Cascade is Highly Sensitive to Oxidative Damage
title_fullStr The Cytochrome P450 OxyA from the Kistamicin Biosynthesis Cyclization Cascade is Highly Sensitive to Oxidative Damage
title_full_unstemmed The Cytochrome P450 OxyA from the Kistamicin Biosynthesis Cyclization Cascade is Highly Sensitive to Oxidative Damage
title_short The Cytochrome P450 OxyA from the Kistamicin Biosynthesis Cyclization Cascade is Highly Sensitive to Oxidative Damage
title_sort cytochrome p450 oxya from the kistamicin biosynthesis cyclization cascade is highly sensitive to oxidative damage
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9023744/
https://www.ncbi.nlm.nih.gov/pubmed/35464232
http://dx.doi.org/10.3389/fchem.2022.868240
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