Cargando…

The Heat Shock Transcription Factor HsfA Plays a Role in Membrane Lipids Biosynthesis Connecting Thermotolerance and Unsaturated Fatty Acid Metabolism in Aspergillus fumigatus

Thermotolerance is a remarkable virulence attribute of Aspergillus fumigatus, but the consequences of heat shock (HS) to the cell membrane of this fungus are unknown, although this structure is one of the first to detect changes in ambient temperature that imposes on the cell a prompt adaptative res...

Descripción completa

Detalles Bibliográficos
Autores principales: Fabri, João Henrique Tadini Marilhano, Rocha, Marina Campos, Fernandes, Caroline Mota, Campanella, Jonatas Erick Maimoni, da Cunha, Anderson Ferreira, Del Poeta, Maurizio, Malavazi, Iran
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10269545/
https://www.ncbi.nlm.nih.gov/pubmed/37195179
http://dx.doi.org/10.1128/spectrum.01627-23
_version_ 1785059193809534976
author Fabri, João Henrique Tadini Marilhano
Rocha, Marina Campos
Fernandes, Caroline Mota
Campanella, Jonatas Erick Maimoni
da Cunha, Anderson Ferreira
Del Poeta, Maurizio
Malavazi, Iran
author_facet Fabri, João Henrique Tadini Marilhano
Rocha, Marina Campos
Fernandes, Caroline Mota
Campanella, Jonatas Erick Maimoni
da Cunha, Anderson Ferreira
Del Poeta, Maurizio
Malavazi, Iran
author_sort Fabri, João Henrique Tadini Marilhano
collection PubMed
description Thermotolerance is a remarkable virulence attribute of Aspergillus fumigatus, but the consequences of heat shock (HS) to the cell membrane of this fungus are unknown, although this structure is one of the first to detect changes in ambient temperature that imposes on the cell a prompt adaptative response. Under high-temperature stress, fungi trigger the HS response controlled by heat shock transcription factors, such as HsfA, which regulates the expression of heat shock proteins. In yeast, smaller amounts of phospholipids with unsaturated fatty acid (FA) chains are synthesized in response to HS, directly affecting plasma membrane composition. The addition of double bonds in saturated FA is catalyzed by Δ9-fatty acid desaturases, whose expression is temperature-modulated. However, the relationship between HS and saturated/unsaturated FA balance in membrane lipids of A. fumigatus in response to HS has not been investigated. Here, we found that HsfA responds to plasma membrane stress and has a role in sphingolipid and phospholipid unsaturated biosynthesis. In addition, we studied the A. fumigatus Δ9-fatty acid desaturase sdeA and discovered that this gene is essential and required for unsaturated FA biosynthesis, although it did not directly affect the total levels of phospholipids and sphingolipids. sdeA depletion significantly sensitizes mature A. fumigatus biofilms to caspofungin. Also, we demonstrate that hsfA controls sdeA expression, while SdeA and Hsp90 physically interact. Our results suggest that HsfA is required for the adaptation of the fungal plasma membrane to HS and point out a sharp relationship between thermotolerance and FA metabolism in A. fumigatus. IMPORTANCE Aspergillus fumigatus causes invasive pulmonary aspergillosis, a life-threatening infection accounting for high mortality rates in immunocompromised patients. The ability of this organism to grow at elevated temperatures is long recognized as an essential attribute for this mold to cause disease. A. fumigatus responds to heat stress by activating heat shock transcription factors and chaperones to orchestrate cellular responses that protect the fungus against damage caused by heat. Concomitantly, the cell membrane must adapt to heat and maintain physical and chemical properties such as the balance between saturated/unsaturated fatty acids. However, how A. fumigatus connects these two physiological responses is unclear. Here, we explain that HsfA affects the synthesis of complex membrane lipids such as phospholipids and sphingolipids and controls the enzyme SdeA, which produces monounsaturated fatty acids, raw material for membrane lipids. These findings suggest that forced dysregulation of saturated/unsaturated fatty acid balance might represent novel strategies for antifungal therapy.
format Online
Article
Text
id pubmed-10269545
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-102695452023-06-16 The Heat Shock Transcription Factor HsfA Plays a Role in Membrane Lipids Biosynthesis Connecting Thermotolerance and Unsaturated Fatty Acid Metabolism in Aspergillus fumigatus Fabri, João Henrique Tadini Marilhano Rocha, Marina Campos Fernandes, Caroline Mota Campanella, Jonatas Erick Maimoni da Cunha, Anderson Ferreira Del Poeta, Maurizio Malavazi, Iran Microbiol Spectr Research Article Thermotolerance is a remarkable virulence attribute of Aspergillus fumigatus, but the consequences of heat shock (HS) to the cell membrane of this fungus are unknown, although this structure is one of the first to detect changes in ambient temperature that imposes on the cell a prompt adaptative response. Under high-temperature stress, fungi trigger the HS response controlled by heat shock transcription factors, such as HsfA, which regulates the expression of heat shock proteins. In yeast, smaller amounts of phospholipids with unsaturated fatty acid (FA) chains are synthesized in response to HS, directly affecting plasma membrane composition. The addition of double bonds in saturated FA is catalyzed by Δ9-fatty acid desaturases, whose expression is temperature-modulated. However, the relationship between HS and saturated/unsaturated FA balance in membrane lipids of A. fumigatus in response to HS has not been investigated. Here, we found that HsfA responds to plasma membrane stress and has a role in sphingolipid and phospholipid unsaturated biosynthesis. In addition, we studied the A. fumigatus Δ9-fatty acid desaturase sdeA and discovered that this gene is essential and required for unsaturated FA biosynthesis, although it did not directly affect the total levels of phospholipids and sphingolipids. sdeA depletion significantly sensitizes mature A. fumigatus biofilms to caspofungin. Also, we demonstrate that hsfA controls sdeA expression, while SdeA and Hsp90 physically interact. Our results suggest that HsfA is required for the adaptation of the fungal plasma membrane to HS and point out a sharp relationship between thermotolerance and FA metabolism in A. fumigatus. IMPORTANCE Aspergillus fumigatus causes invasive pulmonary aspergillosis, a life-threatening infection accounting for high mortality rates in immunocompromised patients. The ability of this organism to grow at elevated temperatures is long recognized as an essential attribute for this mold to cause disease. A. fumigatus responds to heat stress by activating heat shock transcription factors and chaperones to orchestrate cellular responses that protect the fungus against damage caused by heat. Concomitantly, the cell membrane must adapt to heat and maintain physical and chemical properties such as the balance between saturated/unsaturated fatty acids. However, how A. fumigatus connects these two physiological responses is unclear. Here, we explain that HsfA affects the synthesis of complex membrane lipids such as phospholipids and sphingolipids and controls the enzyme SdeA, which produces monounsaturated fatty acids, raw material for membrane lipids. These findings suggest that forced dysregulation of saturated/unsaturated fatty acid balance might represent novel strategies for antifungal therapy. American Society for Microbiology 2023-05-17 /pmc/articles/PMC10269545/ /pubmed/37195179 http://dx.doi.org/10.1128/spectrum.01627-23 Text en Copyright © 2023 Fabri 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
Fabri, João Henrique Tadini Marilhano
Rocha, Marina Campos
Fernandes, Caroline Mota
Campanella, Jonatas Erick Maimoni
da Cunha, Anderson Ferreira
Del Poeta, Maurizio
Malavazi, Iran
The Heat Shock Transcription Factor HsfA Plays a Role in Membrane Lipids Biosynthesis Connecting Thermotolerance and Unsaturated Fatty Acid Metabolism in Aspergillus fumigatus
title The Heat Shock Transcription Factor HsfA Plays a Role in Membrane Lipids Biosynthesis Connecting Thermotolerance and Unsaturated Fatty Acid Metabolism in Aspergillus fumigatus
title_full The Heat Shock Transcription Factor HsfA Plays a Role in Membrane Lipids Biosynthesis Connecting Thermotolerance and Unsaturated Fatty Acid Metabolism in Aspergillus fumigatus
title_fullStr The Heat Shock Transcription Factor HsfA Plays a Role in Membrane Lipids Biosynthesis Connecting Thermotolerance and Unsaturated Fatty Acid Metabolism in Aspergillus fumigatus
title_full_unstemmed The Heat Shock Transcription Factor HsfA Plays a Role in Membrane Lipids Biosynthesis Connecting Thermotolerance and Unsaturated Fatty Acid Metabolism in Aspergillus fumigatus
title_short The Heat Shock Transcription Factor HsfA Plays a Role in Membrane Lipids Biosynthesis Connecting Thermotolerance and Unsaturated Fatty Acid Metabolism in Aspergillus fumigatus
title_sort heat shock transcription factor hsfa plays a role in membrane lipids biosynthesis connecting thermotolerance and unsaturated fatty acid metabolism in aspergillus fumigatus
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10269545/
https://www.ncbi.nlm.nih.gov/pubmed/37195179
http://dx.doi.org/10.1128/spectrum.01627-23
work_keys_str_mv AT fabrijoaohenriquetadinimarilhano theheatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT rochamarinacampos theheatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT fernandescarolinemota theheatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT campanellajonataserickmaimoni theheatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT dacunhaandersonferreira theheatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT delpoetamaurizio theheatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT malavaziiran theheatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT fabrijoaohenriquetadinimarilhano heatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT rochamarinacampos heatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT fernandescarolinemota heatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT campanellajonataserickmaimoni heatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT dacunhaandersonferreira heatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT delpoetamaurizio heatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus
AT malavaziiran heatshocktranscriptionfactorhsfaplaysaroleinmembranelipidsbiosynthesisconnectingthermotoleranceandunsaturatedfattyacidmetabolisminaspergillusfumigatus