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Aspergillus terreus sectorization: a morphological phenomenon shedding light on amphotericin B resistance mechanism
David Eisele1, Michael Blatzer1,2,3, Anna Maria Dietl1
1Institute of Hygiene and Medical Microbiology, Medical University of Innsbruck, Innsbruck, Austria.
Abstract:
Prolonged cultivation of certain filamentous fungi, including Aspergillus terreus, on drug-free medium leads to degeneration and morphological heterogeneity, marked by the emergence of fluffy mycelium-type sectors. This phenomenon may indicate alterations in antifungal susceptibility profiles (particularly to amphotericin B (AmB) in A. terreus), as well as reductions or losses in conidiation, sexuality, secondary metabolite production, and/or virulence. In the present study, various characteristics of an AmB-resistant wild-type (WT) strain and its AmB-susceptible sectorized derivative (ATSec) were characterized. Compared to WT, ATSec exhibited increased susceptibility to AmB, reduced sporulation, and comparable sterol contents and virulence in Galleria mellonella. To elucidate the genes involved in AmB resistance, gene expression levels were compared between WT and ATSec with and without AmB treatment. The expression of P-type ATPase-related genes, which are implicated in membrane composition changes and consequently in AmB resistance, was significantly higher in the WT strain compared to ATSec. Moreover, the up-regulation of genes involved in the biosynthesis of polyketides-a diverse group of secondary metabolites-was higher in WT compared to ATSec, with a significant number of these genes also carrying at least one mutation. The findings of this study indicate that P-type ATPases may significantly be involved in AmB susceptibility and resistance observed in ATSec and WT strains. Additionally, mutations in polyketide synthase genes in ATSec may contribute to the phenotypic alterations associated with the sectorized phenotype.
Importance:
Prolonged cultivation of certain filamentous fungi, including Aspergillus terreus, on drug-free medium leads to degeneration and morphological heterogeneity, marked by the emergence of fluffy mycelium-type sectors. This phenomenon may indicate alterations in antifungal susceptibility profiles (particularly to amphotericin B (AmB) in A. terreus), as well as reductions or losses in conidiation, sexuality, secondary metabolite production, and/or virulence. In the present study, various characteristics of an AmB-resistant wild-type strain (WT) and its AmB-susceptible sectorized derivative (ATSec) were characterized. Compared to WT, ATSec exhibited increased susceptibility to AmB, reduced sporulation, and comparable sterol contents and virulence in Galleria mellonella. To elucidate the genes involved in AmB resistance, gene expression levels were compared between WT and ATSec with and without AmB treatment. The expression of P-type ATPase-related genes, which are implicated in membrane composition changes and consequently in AmB resistance, was significantly higher in the WT strain compared to ATSec. Moreover, the up-regulation of genes involved in the biosynthesis of polyketides - a diverse group of secondary metabolites - was higher in WT compared to ATSec, with a significant number of these genes also carrying at least one mutation. The findings of this study indicate that P-type ATPases may significantly be involved in AmB susceptibility and resistance observed in ATSec and WT strains. Additionally, mutations in polyketide synthase genes in ATSec may contribute to the phenotypic alterations associated with the sectorized phenotype.
Insights
Sectorization in Aspergillus terreus leads to increased susceptibility to amphotericin B (AmB). P-type ATPases and polyketide synthase genes are implicated in AmB resistance and phenotypic changes.
Area of Science:
- Mycology
- Molecular Biology
- Antifungal Resistance
Background:
- Prolonged cultivation of filamentous fungi like Aspergillus terreus can cause degeneration and morphological changes, leading to sectorization.
- These sectors may exhibit altered antifungal susceptibility, reduced sporulation, and changes in secondary metabolite production.
- Amphotericin B (AmB) is a critical antifungal agent, and understanding resistance mechanisms is vital.
Purpose of the Study:
- To characterize the differences between an AmB-resistant wild-type (WT) Aspergillus terreus strain and its AmB-susceptible sectorized derivative (ATSec).
- To identify genes and pathways involved in AmB resistance and susceptibility in these strains.
- To investigate the role of P-type ATPases and polyketide biosynthesis in the observed phenotypic alterations.
Main Methods:
- Comparative characterization of WT and ATSec strains, including antifungal susceptibility testing (AmB), sporulation, sterol content, and virulence assays in Galleria mellonella.
- Gene expression analysis using RNA sequencing to compare WT and ATSec under varying AmB treatment conditions.
- Bioinformatic analysis to identify mutations and differential gene expression patterns, particularly focusing on P-type ATPase and polyketide synthase genes.
Main Results:
- ATSec showed increased susceptibility to AmB, reduced sporulation, but comparable sterol content and virulence to WT.
- Expression of P-type ATPase-related genes was significantly higher in the AmB-resistant WT strain compared to ATSec.
- Up-regulation of genes involved in polyketide biosynthesis was higher in WT, with several of these genes harboring mutations in ATSec.
Conclusions:
- P-type ATPases play a significant role in the observed AmB susceptibility and resistance in Aspergillus terreus strains.
- Mutations in polyketide synthase genes within the sectorized derivative (ATSec) may contribute to the phenotypic alterations associated with sectorization.
- Understanding these genetic mechanisms is crucial for managing antifungal resistance in filamentous fungi.
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