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A Xenobiotic Detoxification Pathway through Transcriptional Regulation in Filamentous Fungi

Fungi are known to utilize transcriptional regulation of genes that encode efflux transporters to detoxify xenobiotics; however, to date it is unknown how fungi transcriptionally regulate and coordinate different phases of detoxification system (phase I, modification; phase II, conjugation; and phas...

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Autores principales: Sang, Hyunkyu, Hulvey, Jonathan P., Green, Robert, Xu, Hao, Im, Jeongdae, Chang, Taehyun, Jung, Geunhwa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6050962/
https://www.ncbi.nlm.nih.gov/pubmed/30018104
http://dx.doi.org/10.1128/mBio.00457-18
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author Sang, Hyunkyu
Hulvey, Jonathan P.
Green, Robert
Xu, Hao
Im, Jeongdae
Chang, Taehyun
Jung, Geunhwa
author_facet Sang, Hyunkyu
Hulvey, Jonathan P.
Green, Robert
Xu, Hao
Im, Jeongdae
Chang, Taehyun
Jung, Geunhwa
author_sort Sang, Hyunkyu
collection PubMed
description Fungi are known to utilize transcriptional regulation of genes that encode efflux transporters to detoxify xenobiotics; however, to date it is unknown how fungi transcriptionally regulate and coordinate different phases of detoxification system (phase I, modification; phase II, conjugation; and phase III, secretion). Here we present evidence of an evolutionary convergence between the fungal and mammalian lineages, whereby xenobiotic detoxification genes (phase I coding for cytochrome P450 monooxygenases [CYP450s] and phase III coding for ATP-binding cassette [ABC] efflux transporters) are transcriptionally regulated by structurally unrelated proteins. Following next-generation RNA sequencing (RNA-seq) analyses of a filamentous fungus, Sclerotinia homoeocarpa, the causal agent of dollar spot on turfgrasses, a multidrug resistant (MDR) field strain was found to overexpress phase I and III genes, coding for CYP450s and ABC transporters for xenobiotic detoxification. Furthermore, there was confirmation of a gain-of-function mutation of the fungus-specific transcription factor S. homoeocarpa XDR1 (ShXDR1), which is responsible for constitutive and induced overexpression of the phase I and III genes, resulting in resistance to multiple classes of fungicidal chemicals. This fungal pathogen detoxifies xenobiotics through coordinated transcriptional control of CYP450s, biotransforming xenobiotics with different substrate specificities and ABC transporters, excreting a broad spectrum of xenobiotics or biotransformed metabolites. A Botrytis cinerea strain harboring the mutated ShXDR1 showed increased expression of phase I (BcCYP65) and III (BcatrD) genes, resulting in resistance to fungicides. This indicates the regulatory system is conserved in filamentous fungi. This molecular genetic mechanism for xenobiotic detoxification in fungi holds potential for facilitating discovery of new antifungal drugs and further studies of convergent and divergent evolution of xenobiotic detoxification in eukaryote lineages.
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spelling pubmed-60509622018-07-24 A Xenobiotic Detoxification Pathway through Transcriptional Regulation in Filamentous Fungi Sang, Hyunkyu Hulvey, Jonathan P. Green, Robert Xu, Hao Im, Jeongdae Chang, Taehyun Jung, Geunhwa mBio Research Article Fungi are known to utilize transcriptional regulation of genes that encode efflux transporters to detoxify xenobiotics; however, to date it is unknown how fungi transcriptionally regulate and coordinate different phases of detoxification system (phase I, modification; phase II, conjugation; and phase III, secretion). Here we present evidence of an evolutionary convergence between the fungal and mammalian lineages, whereby xenobiotic detoxification genes (phase I coding for cytochrome P450 monooxygenases [CYP450s] and phase III coding for ATP-binding cassette [ABC] efflux transporters) are transcriptionally regulated by structurally unrelated proteins. Following next-generation RNA sequencing (RNA-seq) analyses of a filamentous fungus, Sclerotinia homoeocarpa, the causal agent of dollar spot on turfgrasses, a multidrug resistant (MDR) field strain was found to overexpress phase I and III genes, coding for CYP450s and ABC transporters for xenobiotic detoxification. Furthermore, there was confirmation of a gain-of-function mutation of the fungus-specific transcription factor S. homoeocarpa XDR1 (ShXDR1), which is responsible for constitutive and induced overexpression of the phase I and III genes, resulting in resistance to multiple classes of fungicidal chemicals. This fungal pathogen detoxifies xenobiotics through coordinated transcriptional control of CYP450s, biotransforming xenobiotics with different substrate specificities and ABC transporters, excreting a broad spectrum of xenobiotics or biotransformed metabolites. A Botrytis cinerea strain harboring the mutated ShXDR1 showed increased expression of phase I (BcCYP65) and III (BcatrD) genes, resulting in resistance to fungicides. This indicates the regulatory system is conserved in filamentous fungi. This molecular genetic mechanism for xenobiotic detoxification in fungi holds potential for facilitating discovery of new antifungal drugs and further studies of convergent and divergent evolution of xenobiotic detoxification in eukaryote lineages. American Society for Microbiology 2018-07-17 /pmc/articles/PMC6050962/ /pubmed/30018104 http://dx.doi.org/10.1128/mBio.00457-18 Text en Copyright © 2018 Sang et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Sang, Hyunkyu
Hulvey, Jonathan P.
Green, Robert
Xu, Hao
Im, Jeongdae
Chang, Taehyun
Jung, Geunhwa
A Xenobiotic Detoxification Pathway through Transcriptional Regulation in Filamentous Fungi
title A Xenobiotic Detoxification Pathway through Transcriptional Regulation in Filamentous Fungi
title_full A Xenobiotic Detoxification Pathway through Transcriptional Regulation in Filamentous Fungi
title_fullStr A Xenobiotic Detoxification Pathway through Transcriptional Regulation in Filamentous Fungi
title_full_unstemmed A Xenobiotic Detoxification Pathway through Transcriptional Regulation in Filamentous Fungi
title_short A Xenobiotic Detoxification Pathway through Transcriptional Regulation in Filamentous Fungi
title_sort xenobiotic detoxification pathway through transcriptional regulation in filamentous fungi
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6050962/
https://www.ncbi.nlm.nih.gov/pubmed/30018104
http://dx.doi.org/10.1128/mBio.00457-18
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