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Metabolome and Transcriptome Combinatory Profiling Reveals Fluconazole Resistance Mechanisms of Trichosporon asahii and the Role of Farnesol in Fluconazole Tolerance

Trichosporon asahii is a basidiomycete yeast that is pathogenic to humans and animals, and fluconazole-resistant strains have recently increased. Farnesol secreted by fungi is a factor that causes variations in fluconazole resistance; however, few studies have explored the underlying mechanisms. The...

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Autores principales: Ma, Xiaoping, Yang, Wanling, Yang, Aining, Chen, Dong, Wang, Chengdong, Ling, Shanshan, Cao, Sanjie, Zuo, Zhicai, Wang, Ya, Zhong, Zhijun, Peng, Guangneng, He, Ming, Gu, Yu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10672884/
https://www.ncbi.nlm.nih.gov/pubmed/38004810
http://dx.doi.org/10.3390/microorganisms11112798
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author Ma, Xiaoping
Yang, Wanling
Yang, Aining
Chen, Dong
Wang, Chengdong
Ling, Shanshan
Cao, Sanjie
Zuo, Zhicai
Wang, Ya
Zhong, Zhijun
Peng, Guangneng
He, Ming
Gu, Yu
author_facet Ma, Xiaoping
Yang, Wanling
Yang, Aining
Chen, Dong
Wang, Chengdong
Ling, Shanshan
Cao, Sanjie
Zuo, Zhicai
Wang, Ya
Zhong, Zhijun
Peng, Guangneng
He, Ming
Gu, Yu
author_sort Ma, Xiaoping
collection PubMed
description Trichosporon asahii is a basidiomycete yeast that is pathogenic to humans and animals, and fluconazole-resistant strains have recently increased. Farnesol secreted by fungi is a factor that causes variations in fluconazole resistance; however, few studies have explored the underlying mechanisms. Therefore, this study aims to delineate the fluconazole resistance mechanisms of T. asahii and explore farnesol’s effects on these processes. A comparative metabolome–transcriptome analysis of untreated fluconazole-sensitive (YAN), fluconazole-resistant (PB) T. asahii strains, and 25 μM farnesol-treated strains (YAN-25 and PB-25, respectively) was performed. The membrane lipid-related genes and metabolites were upregulated in the PB vs. YAN and PB-25 vs. PB comparisons. Farnesol demonstrated strain-dependent mechanisms underlying fluconazole tolerance between the YAN and PB strains, and upregulated and downregulated efflux pumps in PB-25 and YAN-25 strains, respectively. Membrane lipid-related metabolites were highly correlated with transporter-coding genes. Fluconazole resistance in T. asahii was induced by membrane lipid bio-synthesis activation. Farnesol inhibited fluconazole resistance in the sensitive strain, but enhanced resistance in the resistant strain by upregulating efflux pump genes and membrane lipids. This study offers valuable insights into the mechanisms underlying fungal drug resistance and provides guidance for future research aimed at developing more potent antifungal drugs for clinical use.
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spelling pubmed-106728842023-11-17 Metabolome and Transcriptome Combinatory Profiling Reveals Fluconazole Resistance Mechanisms of Trichosporon asahii and the Role of Farnesol in Fluconazole Tolerance Ma, Xiaoping Yang, Wanling Yang, Aining Chen, Dong Wang, Chengdong Ling, Shanshan Cao, Sanjie Zuo, Zhicai Wang, Ya Zhong, Zhijun Peng, Guangneng He, Ming Gu, Yu Microorganisms Article Trichosporon asahii is a basidiomycete yeast that is pathogenic to humans and animals, and fluconazole-resistant strains have recently increased. Farnesol secreted by fungi is a factor that causes variations in fluconazole resistance; however, few studies have explored the underlying mechanisms. Therefore, this study aims to delineate the fluconazole resistance mechanisms of T. asahii and explore farnesol’s effects on these processes. A comparative metabolome–transcriptome analysis of untreated fluconazole-sensitive (YAN), fluconazole-resistant (PB) T. asahii strains, and 25 μM farnesol-treated strains (YAN-25 and PB-25, respectively) was performed. The membrane lipid-related genes and metabolites were upregulated in the PB vs. YAN and PB-25 vs. PB comparisons. Farnesol demonstrated strain-dependent mechanisms underlying fluconazole tolerance between the YAN and PB strains, and upregulated and downregulated efflux pumps in PB-25 and YAN-25 strains, respectively. Membrane lipid-related metabolites were highly correlated with transporter-coding genes. Fluconazole resistance in T. asahii was induced by membrane lipid bio-synthesis activation. Farnesol inhibited fluconazole resistance in the sensitive strain, but enhanced resistance in the resistant strain by upregulating efflux pump genes and membrane lipids. This study offers valuable insights into the mechanisms underlying fungal drug resistance and provides guidance for future research aimed at developing more potent antifungal drugs for clinical use. MDPI 2023-11-17 /pmc/articles/PMC10672884/ /pubmed/38004810 http://dx.doi.org/10.3390/microorganisms11112798 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ma, Xiaoping
Yang, Wanling
Yang, Aining
Chen, Dong
Wang, Chengdong
Ling, Shanshan
Cao, Sanjie
Zuo, Zhicai
Wang, Ya
Zhong, Zhijun
Peng, Guangneng
He, Ming
Gu, Yu
Metabolome and Transcriptome Combinatory Profiling Reveals Fluconazole Resistance Mechanisms of Trichosporon asahii and the Role of Farnesol in Fluconazole Tolerance
title Metabolome and Transcriptome Combinatory Profiling Reveals Fluconazole Resistance Mechanisms of Trichosporon asahii and the Role of Farnesol in Fluconazole Tolerance
title_full Metabolome and Transcriptome Combinatory Profiling Reveals Fluconazole Resistance Mechanisms of Trichosporon asahii and the Role of Farnesol in Fluconazole Tolerance
title_fullStr Metabolome and Transcriptome Combinatory Profiling Reveals Fluconazole Resistance Mechanisms of Trichosporon asahii and the Role of Farnesol in Fluconazole Tolerance
title_full_unstemmed Metabolome and Transcriptome Combinatory Profiling Reveals Fluconazole Resistance Mechanisms of Trichosporon asahii and the Role of Farnesol in Fluconazole Tolerance
title_short Metabolome and Transcriptome Combinatory Profiling Reveals Fluconazole Resistance Mechanisms of Trichosporon asahii and the Role of Farnesol in Fluconazole Tolerance
title_sort metabolome and transcriptome combinatory profiling reveals fluconazole resistance mechanisms of trichosporon asahii and the role of farnesol in fluconazole tolerance
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10672884/
https://www.ncbi.nlm.nih.gov/pubmed/38004810
http://dx.doi.org/10.3390/microorganisms11112798
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