Membrane Integrity Contributes to Resistance of Cryptococcus neoformans to the Cell Wall Inhibitor Caspofungin

Brenda Moreira-Walsh1, Abigail Ragsdale2, Woei Lam2

  • 1Edward A. Doisy Department of Biochemistry and Molecular Biology, Saint Louis University School of Medicine, St. Louis, Missouri, USA.

Msphere
|June 27, 2022
PubMed

Insights

Researchers screened over 4,000 gene deletion mutants of the fungal pathogen Cryptococcus neoformans to find ways to improve caspofungin effectiveness. They discovered that targeting membrane permeability, not cell wall defects, enhances susceptibility to this antifungal drug.

Area of Science:

  • Mycology and infectious diseases
  • Antifungal drug discovery and development

Background:

  • Cryptococcus neoformans is a significant fungal pathogen causing life-threatening infections, particularly in immunocompromised individuals.
  • Existing therapeutic options for cryptococcal infections are limited, and the pathogen exhibits intrinsic resistance to caspofungin, a widely used echinocandin antifungal.

Purpose of the Study:

  • To identify biological targets that can increase the susceptibility of Cryptococcus neoformans to caspofungin.
  • To screen a library of gene deletion mutants to uncover pathways influencing echinocandin efficacy.

Main Methods:

  • Systematic screening of over 4,000 gene deletion mutants of C. neoformans using a modified Candida albicans biofilm assay.
  • Confirmation of caspofungin sensitivity through dose-dependence and agar plate assays.
  • Generation and characterization of new deletion mutants for key identified genes (CFT1, ERG4, MYO1, YSP2).

Main Results:

  • Identified 17 gene deletion strains exhibiting increased caspofungin sensitivity, with 5 showing sensitivity in both biofilm and agar assays.
  • Deletion mutants of CFT1, ERG4, MYO1, and YSP2 displayed increased sensitivity to membrane stress and caspofungin at higher temperatures.
  • Microscopy revealed that caspofungin sensitivity was linked to compromised membrane integrity, not cell wall defects.

Conclusions:

  • Targeting biological processes affecting membrane permeability, rather than cell wall synthesis, is a promising strategy to overcome caspofungin resistance in C. neoformans.
  • This research opens new avenues for developing novel therapeutic approaches against this critical fungal pathogen by exploiting membrane vulnerabilities.

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