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An HMM approach expands the landscape of sesquiterpene cyclases across the kingdom Fungi

Sesquiterpene cyclases (STC) catalyse the cyclization of the C15 molecule farnesyl diphosphate into a vast variety of mono- or polycyclic hydrocarbons and, for a few enzymes, oxygenated structures, with diverse stereogenic centres. The huge diversity in sesquiterpene skeleton structures in nature is...

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Autores principales: Hage, Hayat, Couillaud, Julie, Salamov, Asaf, Loussouarn-Yvon, Margot, Durbesson, Fabien, Ormeño, Elena, Grisel, Sacha, Duquesne, Katia, Vincentelli, Renaud, Grigoriev, Igor, Iacazio, Gilles, Rosso, Marie-Noëlle
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Microbiology Society 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10210940/
https://www.ncbi.nlm.nih.gov/pubmed/37073784
http://dx.doi.org/10.1099/mgen.0.000990
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author Hage, Hayat
Couillaud, Julie
Salamov, Asaf
Loussouarn-Yvon, Margot
Durbesson, Fabien
Ormeño, Elena
Grisel, Sacha
Duquesne, Katia
Vincentelli, Renaud
Grigoriev, Igor
Iacazio, Gilles
Rosso, Marie-Noëlle
author_facet Hage, Hayat
Couillaud, Julie
Salamov, Asaf
Loussouarn-Yvon, Margot
Durbesson, Fabien
Ormeño, Elena
Grisel, Sacha
Duquesne, Katia
Vincentelli, Renaud
Grigoriev, Igor
Iacazio, Gilles
Rosso, Marie-Noëlle
author_sort Hage, Hayat
collection PubMed
description Sesquiterpene cyclases (STC) catalyse the cyclization of the C15 molecule farnesyl diphosphate into a vast variety of mono- or polycyclic hydrocarbons and, for a few enzymes, oxygenated structures, with diverse stereogenic centres. The huge diversity in sesquiterpene skeleton structures in nature is primarily the result of the type of cyclization driven by the STC. Despite the phenomenal impact of fungal sesquiterpenes on the ecology of fungi and their potentials for applications, the fungal sesquiterpenome is largely untapped. The identification of fungal STC is generally based on protein sequence similarity with characterized enzymes. This approach has improved our knowledge on STC in a few fungal species, but it has limited success for the discovery of distant sequences. Besides, the tools based on secondary metabolite biosynthesis gene clusters have shown poor performance for terpene cyclases. Here, we used four sets of sequences of fungal STC that catalyse four types of cyclization, and specific amino acid motives to identify phylogenetically related sequences in the genomes of basidiomycetes fungi from the order Polyporales. We validated that four STC genes newly identified from the genome sequence of Leiotrametes menziesii, each classified in a different phylogenetic clade, catalysed a predicted cyclization of farnesyl diphosphate. We built HMM models and searched STC genes in 656 fungal genomes genomes. We identified 5605 STC genes, which were classified in one of the four clades and had a predicted cyclization mechanism. We noticed that the HMM models were more accurate for the prediction of the type of cyclization catalysed by basidiomycete STC than for ascomycete STC.
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spelling pubmed-102109402023-05-26 An HMM approach expands the landscape of sesquiterpene cyclases across the kingdom Fungi Hage, Hayat Couillaud, Julie Salamov, Asaf Loussouarn-Yvon, Margot Durbesson, Fabien Ormeño, Elena Grisel, Sacha Duquesne, Katia Vincentelli, Renaud Grigoriev, Igor Iacazio, Gilles Rosso, Marie-Noëlle Microb Genom Research Articles Sesquiterpene cyclases (STC) catalyse the cyclization of the C15 molecule farnesyl diphosphate into a vast variety of mono- or polycyclic hydrocarbons and, for a few enzymes, oxygenated structures, with diverse stereogenic centres. The huge diversity in sesquiterpene skeleton structures in nature is primarily the result of the type of cyclization driven by the STC. Despite the phenomenal impact of fungal sesquiterpenes on the ecology of fungi and their potentials for applications, the fungal sesquiterpenome is largely untapped. The identification of fungal STC is generally based on protein sequence similarity with characterized enzymes. This approach has improved our knowledge on STC in a few fungal species, but it has limited success for the discovery of distant sequences. Besides, the tools based on secondary metabolite biosynthesis gene clusters have shown poor performance for terpene cyclases. Here, we used four sets of sequences of fungal STC that catalyse four types of cyclization, and specific amino acid motives to identify phylogenetically related sequences in the genomes of basidiomycetes fungi from the order Polyporales. We validated that four STC genes newly identified from the genome sequence of Leiotrametes menziesii, each classified in a different phylogenetic clade, catalysed a predicted cyclization of farnesyl diphosphate. We built HMM models and searched STC genes in 656 fungal genomes genomes. We identified 5605 STC genes, which were classified in one of the four clades and had a predicted cyclization mechanism. We noticed that the HMM models were more accurate for the prediction of the type of cyclization catalysed by basidiomycete STC than for ascomycete STC. Microbiology Society 2023-04-19 /pmc/articles/PMC10210940/ /pubmed/37073784 http://dx.doi.org/10.1099/mgen.0.000990 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License. This article was made open access via a Publish and Read agreement between the Microbiology Society and the corresponding author’s institution.
spellingShingle Research Articles
Hage, Hayat
Couillaud, Julie
Salamov, Asaf
Loussouarn-Yvon, Margot
Durbesson, Fabien
Ormeño, Elena
Grisel, Sacha
Duquesne, Katia
Vincentelli, Renaud
Grigoriev, Igor
Iacazio, Gilles
Rosso, Marie-Noëlle
An HMM approach expands the landscape of sesquiterpene cyclases across the kingdom Fungi
title An HMM approach expands the landscape of sesquiterpene cyclases across the kingdom Fungi
title_full An HMM approach expands the landscape of sesquiterpene cyclases across the kingdom Fungi
title_fullStr An HMM approach expands the landscape of sesquiterpene cyclases across the kingdom Fungi
title_full_unstemmed An HMM approach expands the landscape of sesquiterpene cyclases across the kingdom Fungi
title_short An HMM approach expands the landscape of sesquiterpene cyclases across the kingdom Fungi
title_sort hmm approach expands the landscape of sesquiterpene cyclases across the kingdom fungi
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10210940/
https://www.ncbi.nlm.nih.gov/pubmed/37073784
http://dx.doi.org/10.1099/mgen.0.000990
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