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Deletion C-terminal thioesterase abolishes melanin biosynthesis, affects metabolism and reduces the pathogenesis of Fonsecaea monophora

Dematiaceous Fonsecaea monophora is one of the major pathogens of chromoblastomycosis. It has been well established that melanization is catalyzed by the type I polyketide synthase (PKS) in F. monophora. Multidomain protein Type I PKS is encoded by six genes, in which the last enzyme thioesterase (T...

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Autores principales: Li, Minying, Huang, Huan, Liu, Jun, Zhang, Xiaohui, Li, Qian, Li, Dongmei, Luo, Mingfen, Wang, Xiaoyue, Zeng, Weiying, Sun, Jiufeng, Liu, Hongfang, Xi, Liyan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9255740/
https://www.ncbi.nlm.nih.gov/pubmed/35696422
http://dx.doi.org/10.1371/journal.pntd.0010485
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author Li, Minying
Huang, Huan
Liu, Jun
Zhang, Xiaohui
Li, Qian
Li, Dongmei
Luo, Mingfen
Wang, Xiaoyue
Zeng, Weiying
Sun, Jiufeng
Liu, Hongfang
Xi, Liyan
author_facet Li, Minying
Huang, Huan
Liu, Jun
Zhang, Xiaohui
Li, Qian
Li, Dongmei
Luo, Mingfen
Wang, Xiaoyue
Zeng, Weiying
Sun, Jiufeng
Liu, Hongfang
Xi, Liyan
author_sort Li, Minying
collection PubMed
description Dematiaceous Fonsecaea monophora is one of the major pathogens of chromoblastomycosis. It has been well established that melanization is catalyzed by the type I polyketide synthase (PKS) in F. monophora. Multidomain protein Type I PKS is encoded by six genes, in which the last enzyme thioesterase (TE) catalyzes the cyclization and releases polyketide. Two PKS genes AYO21_03016 (pks1) and AYO21_10638 have been found in F. monophora and both PKS loci have the same gene arrangement but the TE domain in AYO21_10638 is truncated at 3’- end. TE may be the key enzyme to maintain the function of pks1. To test this hypothesis, we constructed a 3’-end 500 bp deletion mutant of AYO21_03016 (Δpks1-TE-C500) and its complemented strain. We profiled metabolome of this mutant and analyzed the consequences of impaired metabolism in this mutant by fungal growth in vitro and by pathogenesis in vivo. Compared with wild-type strain, we found that the mutant repressed pks1 expression and other 5 genes expression levels were reduced by more than 50%, perhaps leading to a corresponding melanin loss. The mutant also reduced sporulation and delayed germination, became vulnerable to various environmental stresses and was less resistance to macrophage or neutrophil killings in vitro, and less virulence in mice footpad model. Metabolomic analysis indicated that many metabolites were remarkably affected in Δpks1-TE-C500, in particular, an increased nicotinamide and antioxidant glutathione. In conclusion, we confirmed the crucial role of C-terminal TE in maintaining fully function of pks1 in F. monophora. Deletion of TE negatively impacts on the synthesis of melanin and metabolites that eventually affect growth and virulence of F. monophora. Any potential inhibitor of TE then could be a novel antifungal target for drug development.
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spelling pubmed-92557402022-07-06 Deletion C-terminal thioesterase abolishes melanin biosynthesis, affects metabolism and reduces the pathogenesis of Fonsecaea monophora Li, Minying Huang, Huan Liu, Jun Zhang, Xiaohui Li, Qian Li, Dongmei Luo, Mingfen Wang, Xiaoyue Zeng, Weiying Sun, Jiufeng Liu, Hongfang Xi, Liyan PLoS Negl Trop Dis Research Article Dematiaceous Fonsecaea monophora is one of the major pathogens of chromoblastomycosis. It has been well established that melanization is catalyzed by the type I polyketide synthase (PKS) in F. monophora. Multidomain protein Type I PKS is encoded by six genes, in which the last enzyme thioesterase (TE) catalyzes the cyclization and releases polyketide. Two PKS genes AYO21_03016 (pks1) and AYO21_10638 have been found in F. monophora and both PKS loci have the same gene arrangement but the TE domain in AYO21_10638 is truncated at 3’- end. TE may be the key enzyme to maintain the function of pks1. To test this hypothesis, we constructed a 3’-end 500 bp deletion mutant of AYO21_03016 (Δpks1-TE-C500) and its complemented strain. We profiled metabolome of this mutant and analyzed the consequences of impaired metabolism in this mutant by fungal growth in vitro and by pathogenesis in vivo. Compared with wild-type strain, we found that the mutant repressed pks1 expression and other 5 genes expression levels were reduced by more than 50%, perhaps leading to a corresponding melanin loss. The mutant also reduced sporulation and delayed germination, became vulnerable to various environmental stresses and was less resistance to macrophage or neutrophil killings in vitro, and less virulence in mice footpad model. Metabolomic analysis indicated that many metabolites were remarkably affected in Δpks1-TE-C500, in particular, an increased nicotinamide and antioxidant glutathione. In conclusion, we confirmed the crucial role of C-terminal TE in maintaining fully function of pks1 in F. monophora. Deletion of TE negatively impacts on the synthesis of melanin and metabolites that eventually affect growth and virulence of F. monophora. Any potential inhibitor of TE then could be a novel antifungal target for drug development. Public Library of Science 2022-06-13 /pmc/articles/PMC9255740/ /pubmed/35696422 http://dx.doi.org/10.1371/journal.pntd.0010485 Text en © 2022 Li et al 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 use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Li, Minying
Huang, Huan
Liu, Jun
Zhang, Xiaohui
Li, Qian
Li, Dongmei
Luo, Mingfen
Wang, Xiaoyue
Zeng, Weiying
Sun, Jiufeng
Liu, Hongfang
Xi, Liyan
Deletion C-terminal thioesterase abolishes melanin biosynthesis, affects metabolism and reduces the pathogenesis of Fonsecaea monophora
title Deletion C-terminal thioesterase abolishes melanin biosynthesis, affects metabolism and reduces the pathogenesis of Fonsecaea monophora
title_full Deletion C-terminal thioesterase abolishes melanin biosynthesis, affects metabolism and reduces the pathogenesis of Fonsecaea monophora
title_fullStr Deletion C-terminal thioesterase abolishes melanin biosynthesis, affects metabolism and reduces the pathogenesis of Fonsecaea monophora
title_full_unstemmed Deletion C-terminal thioesterase abolishes melanin biosynthesis, affects metabolism and reduces the pathogenesis of Fonsecaea monophora
title_short Deletion C-terminal thioesterase abolishes melanin biosynthesis, affects metabolism and reduces the pathogenesis of Fonsecaea monophora
title_sort deletion c-terminal thioesterase abolishes melanin biosynthesis, affects metabolism and reduces the pathogenesis of fonsecaea monophora
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9255740/
https://www.ncbi.nlm.nih.gov/pubmed/35696422
http://dx.doi.org/10.1371/journal.pntd.0010485
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