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Updated: Sep 9, 2025

Organotypic Tissue Model Systems for Investigating Host-Pathogen Interactions In Vitro
Published on: March 28, 2025
Biofilm development in three-dimensional models infected with Trichophyton rubrum
Matheus Bordoy Mendonça1, Ana Karla Lima Freire Cabral1,2, Bruno Bulgarelli Adorno Arantes1
1Department of Clinical Analysis, School of Pharmaceutical Sciences, São Paulo State University UNESP, Araraquara, Brazil.
Abstract:
Dermatophytes are keratinophilic filamentous fungi that cause dermatophytosis, and the main etiological agents can be anthropophilic and zoophilic. Several virulence factors are involved in the pathogenesis of dermatophytosis, including the formation of fungal biofilms. In this context, three-dimensional (3D) models, such as spheroids and reconstructed human skin (RHS), have gained prominence, as they more accurately emulate fungus-host interactions, closely resembling physiological conditions. Therefore, the present study investigated the biofilm formation of Trichophyton rubrum in these 3D models using confocal microscopy, scanning electron microscopy, and relative gene expression analysis via real-time PCR. Microscopic analyses revealed the colonization of the spheroid and 3D skin model surface by T. rubrum, with characteristics indicative of biofilm formation. The gene expression analysis of the infected 3D skin model revealed an exacerbated expression of Mep5, which encodes a metalloprotease in T. rubrum, known for its keratinolytic activity. This study demonstrates biofilm formation and protease gene expression during dermatophyte infections using 3D models that contribute to understanding the mechanisms of T. rubrum infection and support the ongoing search for the development of new drugs to treat dermatophytosis.IMPORTANCEFungal skin infections, particularly those caused by dermatophytes like Trichophyton rubrum, are widespread and often neglected, resulting in significant health burdens and the development of antifungal resistance due to their virulence factors, such as biofilm formation. Traditional in vitro and ex vivo infection models fail to mimic the human skin environment accurately, lacking key features, such as keratinization and three-dimensional (3D) configuration, which are critical for emulating in vivo infection conditions. The development of alternative 3D models, such as reconstructed human skin and spheroids, presents a transformative opportunity to enhance our understanding of host-parasite interactions. These models more closely replicate the structural and physiological properties of human skin, enabling the observation of fungal invasion and biofilm behavior under more realistic conditions. By supporting complex cellular communication and maintaining tissue architecture, 3D models provide a more accurate platform for studying fungal pathogenesis, ultimately paving the way for identifying new therapeutic targets and improving strategies to combat persistent and drug-resistant infections.
Insights
Three-dimensional (3D) models show Trichophyton rubrum forms biofilms on skin, increasing virulence factor Mep5 expression. This research aids in developing new treatments for fungal skin infections.
Area of Science:
- Medical Mycology
- Dermatology
- Fungal Pathogenesis
Background:
- Dermatophytosis is a common fungal skin infection caused by dermatophytes.
- Virulence factors, including fungal biofilms, contribute to dermatophyte pathogenesis.
- Traditional models inadequately mimic human skin, limiting understanding of fungal infections.
Purpose of the Study:
- To investigate biofilm formation of Trichophyton rubrum in 3D reconstructed human skin (RHS) and spheroid models.
- To analyze the gene expression of virulence factors during infection in 3D models.
- To enhance understanding of dermatophyte-host interactions and identify therapeutic targets.
Main Methods:
- Utilized confocal microscopy and scanning electron microscopy for microscopic analysis.
- Employed real-time PCR for relative gene expression analysis of T. rubrum.
- Investigated biofilm formation in 3D spheroid and reconstructed human skin models.
Main Results:
- Microscopic analysis confirmed T. rubrum colonization and biofilm formation on 3D models.
- Gene expression analysis revealed exacerbated expression of Mep5, a keratinolytic metalloprotease.
- 3D models accurately simulated fungus-host interactions, mimicking physiological conditions.
Conclusions:
- 3D models effectively demonstrate T. rubrum biofilm formation and protease gene expression.
- The study provides insights into T. rubrum infection mechanisms.
- Findings support the development of novel therapeutic strategies against dermatophytosis.

