Expression Profiling and Molecular Modeling Analysis of Cyp51C 14α-Demethylase Associated with Azole Resistance in

Ines Hadrich1, Nahed Khemakhem1, Houaida Trabelsi1

  • 1Fungi and Parasitic Molecular Biology Laboratory, School of Medicine, University of Sfax, Sfax 3029, Tunisia.

Insights

Azole resistance in Aspergillus flavus is multifactorial, involving mutations and gene overexpression. This study highlights the importance of combining molecular methods for effective antifungal resistance monitoring.

Area of Science:

  • Mycology
  • Molecular Biology
  • Antimicrobial Resistance

Background:

  • Invasive aspergillosis caused by Aspergillus flavus is a significant health concern, particularly in tropical regions.
  • Emerging azole resistance in A. flavus complicates treatment as azoles are first-line therapies.

Purpose of the Study:

  • To investigate the molecular mechanisms of azole resistance in A. flavus.
  • To focus on the role of the cyp51C gene in conferring resistance.

Main Methods:

  • Screening of 34 A. flavus isolates from invasive aspergillosis patients.
  • Real-time RT-qPCR for cyp51C gene expression analysis.
  • PCR sequencing for mutation identification.
  • Molecular modeling and docking studies.

Main Results:

  • 14.71% itraconazole and 8.82% posaconazole resistance observed; 5.88% cross-resistance.
  • cyp51C mRNA expression was upregulated in 83.33% of resistant strains.
  • Ten point mutations identified, including D254N and I285V exclusively in resistant isolates.
  • I285V substitution located near the itraconazole binding site.

Conclusions:

  • Azole resistance in A. flavus is multifactorial, involving gene mutations and overexpression.
  • Combined analysis of mutations, gene expression, and structural modeling is valuable for resistance monitoring.
  • Findings support enhanced molecular surveillance for antifungal resistance.