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.

Mbio
|February 25, 2025
PubMed

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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