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The biosynthesis of thymol, carvacrol, and thymohydroquinone in Lamiaceae proceeds via cytochrome P450s and a short-chain dehydrogenase

Thymol and carvacrol are phenolic monoterpenes found in thyme, oregano, and several other species of the Lamiaceae. Long valued for their smell and taste, these substances also have antibacterial and anti-spasmolytic properties. They are also suggested to be precursors of thymohydroquinone and thymo...

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Autores principales: Krause, Sandra T., Liao, Pan, Crocoll, Christoph, Boachon, Benoît, Förster, Christiane, Leidecker, Franziska, Wiese, Natalie, Zhao, Dongyan, Wood, Joshua C., Buell, C. Robin, Gershenzon, Jonathan, Dudareva, Natalia, Degenhardt, Jörg
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8719858/
https://www.ncbi.nlm.nih.gov/pubmed/34930840
http://dx.doi.org/10.1073/pnas.2110092118
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author Krause, Sandra T.
Liao, Pan
Crocoll, Christoph
Boachon, Benoît
Förster, Christiane
Leidecker, Franziska
Wiese, Natalie
Zhao, Dongyan
Wood, Joshua C.
Buell, C. Robin
Gershenzon, Jonathan
Dudareva, Natalia
Degenhardt, Jörg
author_facet Krause, Sandra T.
Liao, Pan
Crocoll, Christoph
Boachon, Benoît
Förster, Christiane
Leidecker, Franziska
Wiese, Natalie
Zhao, Dongyan
Wood, Joshua C.
Buell, C. Robin
Gershenzon, Jonathan
Dudareva, Natalia
Degenhardt, Jörg
author_sort Krause, Sandra T.
collection PubMed
description Thymol and carvacrol are phenolic monoterpenes found in thyme, oregano, and several other species of the Lamiaceae. Long valued for their smell and taste, these substances also have antibacterial and anti-spasmolytic properties. They are also suggested to be precursors of thymohydroquinone and thymoquinone, monoterpenes with anti-inflammatory, antioxidant, and antitumor activities. Thymol and carvacrol biosynthesis has been proposed to proceed by the cyclization of geranyl diphosphate to γ-terpinene, followed by a series of oxidations via p-cymene. Here, we show that γ-terpinene is oxidized by cytochrome P450 monooxygenases (P450s) of the CYP71D subfamily to produce unstable cyclohexadienol intermediates, which are then dehydrogenated by a short-chain dehydrogenase/reductase (SDR) to the corresponding ketones. The subsequent formation of the aromatic compounds occurs via keto–enol tautomerisms. Combining these enzymes with γ-terpinene in in vitro assays or in vivo in Nicotiana benthamiana yielded thymol and carvacrol as products. In the absence of the SDRs, only p-cymene was formed by rearrangement of the cyclohexadienol intermediates. The nature of these unstable intermediates was inferred from reactions with the γ-terpinene isomer limonene and by analogy to reactions catalyzed by related enzymes. We also identified and characterized two P450s of the CYP76S and CYP736A subfamilies that catalyze the hydroxylation of thymol and carvacrol to thymohydroquinone when heterologously expressed in yeast and N. benthamiana. Our findings alter previous views of thymol and carvacrol formation, identify the enzymes involved in the biosynthesis of these phenolic monoterpenes and thymohydroquinone in the Lamiaceae, and provide targets for metabolic engineering of high-value terpenes in plants.
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spelling pubmed-87198582022-01-21 The biosynthesis of thymol, carvacrol, and thymohydroquinone in Lamiaceae proceeds via cytochrome P450s and a short-chain dehydrogenase Krause, Sandra T. Liao, Pan Crocoll, Christoph Boachon, Benoît Förster, Christiane Leidecker, Franziska Wiese, Natalie Zhao, Dongyan Wood, Joshua C. Buell, C. Robin Gershenzon, Jonathan Dudareva, Natalia Degenhardt, Jörg Proc Natl Acad Sci U S A Biological Sciences Thymol and carvacrol are phenolic monoterpenes found in thyme, oregano, and several other species of the Lamiaceae. Long valued for their smell and taste, these substances also have antibacterial and anti-spasmolytic properties. They are also suggested to be precursors of thymohydroquinone and thymoquinone, monoterpenes with anti-inflammatory, antioxidant, and antitumor activities. Thymol and carvacrol biosynthesis has been proposed to proceed by the cyclization of geranyl diphosphate to γ-terpinene, followed by a series of oxidations via p-cymene. Here, we show that γ-terpinene is oxidized by cytochrome P450 monooxygenases (P450s) of the CYP71D subfamily to produce unstable cyclohexadienol intermediates, which are then dehydrogenated by a short-chain dehydrogenase/reductase (SDR) to the corresponding ketones. The subsequent formation of the aromatic compounds occurs via keto–enol tautomerisms. Combining these enzymes with γ-terpinene in in vitro assays or in vivo in Nicotiana benthamiana yielded thymol and carvacrol as products. In the absence of the SDRs, only p-cymene was formed by rearrangement of the cyclohexadienol intermediates. The nature of these unstable intermediates was inferred from reactions with the γ-terpinene isomer limonene and by analogy to reactions catalyzed by related enzymes. We also identified and characterized two P450s of the CYP76S and CYP736A subfamilies that catalyze the hydroxylation of thymol and carvacrol to thymohydroquinone when heterologously expressed in yeast and N. benthamiana. Our findings alter previous views of thymol and carvacrol formation, identify the enzymes involved in the biosynthesis of these phenolic monoterpenes and thymohydroquinone in the Lamiaceae, and provide targets for metabolic engineering of high-value terpenes in plants. National Academy of Sciences 2021-12-20 2021-12-28 /pmc/articles/PMC8719858/ /pubmed/34930840 http://dx.doi.org/10.1073/pnas.2110092118 Text en Copyright © 2021 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Krause, Sandra T.
Liao, Pan
Crocoll, Christoph
Boachon, Benoît
Förster, Christiane
Leidecker, Franziska
Wiese, Natalie
Zhao, Dongyan
Wood, Joshua C.
Buell, C. Robin
Gershenzon, Jonathan
Dudareva, Natalia
Degenhardt, Jörg
The biosynthesis of thymol, carvacrol, and thymohydroquinone in Lamiaceae proceeds via cytochrome P450s and a short-chain dehydrogenase
title The biosynthesis of thymol, carvacrol, and thymohydroquinone in Lamiaceae proceeds via cytochrome P450s and a short-chain dehydrogenase
title_full The biosynthesis of thymol, carvacrol, and thymohydroquinone in Lamiaceae proceeds via cytochrome P450s and a short-chain dehydrogenase
title_fullStr The biosynthesis of thymol, carvacrol, and thymohydroquinone in Lamiaceae proceeds via cytochrome P450s and a short-chain dehydrogenase
title_full_unstemmed The biosynthesis of thymol, carvacrol, and thymohydroquinone in Lamiaceae proceeds via cytochrome P450s and a short-chain dehydrogenase
title_short The biosynthesis of thymol, carvacrol, and thymohydroquinone in Lamiaceae proceeds via cytochrome P450s and a short-chain dehydrogenase
title_sort biosynthesis of thymol, carvacrol, and thymohydroquinone in lamiaceae proceeds via cytochrome p450s and a short-chain dehydrogenase
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8719858/
https://www.ncbi.nlm.nih.gov/pubmed/34930840
http://dx.doi.org/10.1073/pnas.2110092118
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