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Engineering sequence and selectivity of late-stage C-H oxidation in the MycG iterative cytochrome P450

MycG is a multifunctional P450 monooxygenase that catalyzes sequential hydroxylation and epoxidation or a single epoxidation in mycinamicin biosynthesis. In the mycinamicin-producing strain Micromonospora griseorubida A11725, very low-level accumulation of mycinamicin V generated by the initial C-14...

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Autores principales: Iizaka, Yohei, Arai, Ryusei, Takahashi, Akari, Ito, Mikino, Sakai, Miho, Fukumoto, Atsushi, Sherman, David H, Anzai, Yojiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9113108/
https://www.ncbi.nlm.nih.gov/pubmed/34543433
http://dx.doi.org/10.1093/jimb/kuab069
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author Iizaka, Yohei
Arai, Ryusei
Takahashi, Akari
Ito, Mikino
Sakai, Miho
Fukumoto, Atsushi
Sherman, David H
Anzai, Yojiro
author_facet Iizaka, Yohei
Arai, Ryusei
Takahashi, Akari
Ito, Mikino
Sakai, Miho
Fukumoto, Atsushi
Sherman, David H
Anzai, Yojiro
author_sort Iizaka, Yohei
collection PubMed
description MycG is a multifunctional P450 monooxygenase that catalyzes sequential hydroxylation and epoxidation or a single epoxidation in mycinamicin biosynthesis. In the mycinamicin-producing strain Micromonospora griseorubida A11725, very low-level accumulation of mycinamicin V generated by the initial C-14 allylic hydroxylation of MycG is observed due to its subsequent epoxidation to generate mycinamicin II, the terminal metabolite in this pathway. Herein, we investigated whether MycG can be engineered for production of the mycinamicin II intermediate as the predominant metabolite. Thus, mycG was subject to random mutagenesis and screening was conducted in Escherichia coli whole-cell assays. This enabled efficient identification of amino acid residues involved in reaction profile alterations, which included MycG R111Q/V358L, W44R, and V135G/E355K with enhanced monohydroxylation to accumulate mycinamicin V. The MycG V135G/E355K mutant generated 40-fold higher levels of mycinamicin V compared to wild-type M. griseorubida A11725. In addition, the E355K mutation showed improved ability to catalyze sequential hydroxylation and epoxidation with minimal mono-epoxidation product mycinamicin I compared to the wild-type enzyme. These approaches demonstrate the ability to selectively coordinate the catalytic activity of multifunctional P450s and efficiently produce the desired compounds.
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spelling pubmed-91131082022-06-08 Engineering sequence and selectivity of late-stage C-H oxidation in the MycG iterative cytochrome P450 Iizaka, Yohei Arai, Ryusei Takahashi, Akari Ito, Mikino Sakai, Miho Fukumoto, Atsushi Sherman, David H Anzai, Yojiro J Ind Microbiol Biotechnol Metabolic Engineering and Synthetic Biology MycG is a multifunctional P450 monooxygenase that catalyzes sequential hydroxylation and epoxidation or a single epoxidation in mycinamicin biosynthesis. In the mycinamicin-producing strain Micromonospora griseorubida A11725, very low-level accumulation of mycinamicin V generated by the initial C-14 allylic hydroxylation of MycG is observed due to its subsequent epoxidation to generate mycinamicin II, the terminal metabolite in this pathway. Herein, we investigated whether MycG can be engineered for production of the mycinamicin II intermediate as the predominant metabolite. Thus, mycG was subject to random mutagenesis and screening was conducted in Escherichia coli whole-cell assays. This enabled efficient identification of amino acid residues involved in reaction profile alterations, which included MycG R111Q/V358L, W44R, and V135G/E355K with enhanced monohydroxylation to accumulate mycinamicin V. The MycG V135G/E355K mutant generated 40-fold higher levels of mycinamicin V compared to wild-type M. griseorubida A11725. In addition, the E355K mutation showed improved ability to catalyze sequential hydroxylation and epoxidation with minimal mono-epoxidation product mycinamicin I compared to the wild-type enzyme. These approaches demonstrate the ability to selectively coordinate the catalytic activity of multifunctional P450s and efficiently produce the desired compounds. Oxford University Press 2021-09-20 /pmc/articles/PMC9113108/ /pubmed/34543433 http://dx.doi.org/10.1093/jimb/kuab069 Text en © The Author(s) 2021. Published by Oxford University Press on behalf of Society of Industrial Microbiology and Biotechnology. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Metabolic Engineering and Synthetic Biology
Iizaka, Yohei
Arai, Ryusei
Takahashi, Akari
Ito, Mikino
Sakai, Miho
Fukumoto, Atsushi
Sherman, David H
Anzai, Yojiro
Engineering sequence and selectivity of late-stage C-H oxidation in the MycG iterative cytochrome P450
title Engineering sequence and selectivity of late-stage C-H oxidation in the MycG iterative cytochrome P450
title_full Engineering sequence and selectivity of late-stage C-H oxidation in the MycG iterative cytochrome P450
title_fullStr Engineering sequence and selectivity of late-stage C-H oxidation in the MycG iterative cytochrome P450
title_full_unstemmed Engineering sequence and selectivity of late-stage C-H oxidation in the MycG iterative cytochrome P450
title_short Engineering sequence and selectivity of late-stage C-H oxidation in the MycG iterative cytochrome P450
title_sort engineering sequence and selectivity of late-stage c-h oxidation in the mycg iterative cytochrome p450
topic Metabolic Engineering and Synthetic Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9113108/
https://www.ncbi.nlm.nih.gov/pubmed/34543433
http://dx.doi.org/10.1093/jimb/kuab069
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