Characterization of Biofilm Formation by the Dermatophyte Nannizzia gypsea

Bruno B A Arantes1, Ana Karla L F Cabral1,2, Kelvin S Dos Santos1

  • 1Department of Clinical Analysis, School of Pharmaceutical Sciences, São Paulo State University UNESP, Araraquara 14800-903, Brazil.

Insights

Nannizzia gypsea forms a robust biofilm with a significant extracellular matrix, enhancing its resistance to treatment. This fungal biofilm exhibits increased gene expression related to pathogenesis and colonization of keratinized surfaces.

Area of Science:

  • Medical Mycology
  • Fungal Pathogenesis
  • Biofilm Research

Background:

  • Dermatophytosis affects 25% of the global population, caused by fungi like Nannizzia gypsea.
  • Nannizzia gypsea's virulence is linked to keratinolytic enzymes and potential biofilm formation, increasing treatment resistance.

Purpose of the Study:

  • Investigate Nannizzia gypsea biofilm formation using an ex vivo hair model.
  • Characterize the biofilm's extracellular matrix composition.
  • Analyze the expression of key virulence genes in planktonic versus biofilm phenotypes.

Main Methods:

  • Ex vivo hair model, XTT reduction assay, crystal violet staining, and SEM for biofilm analysis.
  • Analysis of extracellular matrix components: polysaccharides, proteins, and extracellular DNA.
  • Quantitative PCR (qPCR) to evaluate virulence gene expression (subtilisin 7, fungalysin, Multidrug and Toxin Extrusion Protein 2).

Main Results:

  • Nannizzia gypsea developed a mature, robust biofilm within 5 days.
  • SEM revealed an extensive extracellular matrix, and ectothrix parasitism was observed in the hair model.
  • Gene expression of subtilisin 7, fungalysin, and Multidrug and Toxin Extrusion Protein 2 was significantly higher in the biofilm form.

Conclusions:

  • Nannizzia gypsea forms a resilient biofilm with a substantial extracellular matrix.
  • The biofilm phenotype is associated with increased expression of virulence and resistance-related genes.
  • Findings highlight biofilm formation as a critical factor in Nannizzia gypsea pathogenesis and treatment challenges.