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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.
Abstract:
Dermatophytosis is a fungal infection that affects the skin, hair, and nails, impacting approximately 25% of the global population. Nannizzia gypsea is a geophilic fungus that can cause infections in humans and animals. Several studies have been conducted regarding its virulence, or ability to cause disease. This species may produce keratinolytic enzymes and form biofilms, which can increase resistance to treatment. Thus, this study focuses on investigating the biofilm formation of N. gypsea isolated from canine dermatophytosis using an ex vivo hair model, its biofilm extracellular matrix macromolecular contents, and the expression of genes involved in the colonization of keratinized surfaces. The biofilm was analyzed for metabolic activity using the XTT reduction assay, crystal violet staining to measure biofilm biomass, scanning electron microscopy (SEM), and the presence of polysaccharides, proteins, and extracellular DNA in the biofilm extracellular matrix. The virulence genes subtilisin 7, fungalysin (extracellular metalloproteinase), and efflux pump (Multidrug and Toxin Extrusion Protein 2) were evaluated by qPCR, comparing the planktonic and biofilm phenotypes. N. gypsea formed a robust biofilm, which matured after 5 days. Scanning electron microscopy (SEM) revealed the presence of an extensive extracellular matrix. In the hair model, the characteristic ectothrix parasitism of the species is observable. The gene expression analysis revealed a higher expression of all evaluated genes in the biofilm form compared to the planktonic form. Thus, N. gypsea exhibits a biofilm characterized by a robust extracellular matrix and high gene expression of factors related to pathogenesis and resistance.
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.
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