Bioinformatics-Driven mRNA-Based Vaccine Design for Controlling Tinea Cruris Induced by Trichophyton rubrum

Amir Elalouf1, Hanan Maoz1, Amit Yaniv Rosenfeld1

  • 1Department of Management, Bar-Ilan University, Ramat Gan 5290002, Israel.

Pharmaceutics
|August 29, 2024
PubMed

Insights

This study introduces a novel mRNA vaccine for tinea cruris, a common fungal infection. Computational methods identified key fungal proteins and epitopes, creating a promising vaccine candidate to combat recurrent infections and reduce antifungal drug reliance.

Area of Science:

  • Mycology
  • Immunology
  • Vaccine Development

Background:

  • Tinea cruris is a prevalent fungal infection, often caused by Trichophyton rubrum, characterized by frequent recurrence.
  • Recurrence is linked to persistent fungal reservoirs and the development of antifungal resistance.
  • Current treatment relies on antifungals, highlighting the need for alternative strategies like vaccination.

Purpose of the Study:

  • To design and computationally evaluate a novel mRNA-based vaccine against Tinea cruris caused by Trichophyton rubrum.
  • To identify potential vaccine targets from the T. rubrum proteome using reverse vaccinology.
  • To assess the immunogenic and safety profiles of the designed vaccine candidates through in silico methods.

Main Methods:

  • Proteomic analysis of T. rubrum to identify potential vaccine candidate proteins.
  • Reverse vaccinology for epitope mapping and selection of immunogenic, non-toxic epitopes.
  • Construction of multitope and mRNA vaccines, followed by computational assessment of physicochemical and immunological properties.
  • Molecular docking, normal mode analysis, and molecular dynamic simulations to evaluate vaccine-TLR interactions.
  • In silico immune simulations to predict antibody and cytokine responses.

Main Results:

  • Several T. rubrum proteins, including 1,3-beta-glucanosyltransferase and LysM domain-containing protein, were identified as promising vaccine targets.
  • Antigenic, immunogenic, and non-toxic epitopes were selected and incorporated into multitope and mRNA vaccine constructs.
  • Computational analyses confirmed stable binding of vaccine candidates to Toll-like receptors (TLRs) and predicted activation of immune responses, including antibody and cytokine production.
  • Adjuvants were found crucial for innate immune activation via TLRs, though not significantly altering antibody production.

Conclusions:

  • The developed mRNA vaccine candidates show significant promise for preventing Tinea cruris by eliciting a robust immune response against T. rubrum.
  • This approach offers a potential strategy to reduce reliance on antifungal medications and combat antifungal resistance.
  • Further experimental validation is required to confirm the safety and efficacy of these mRNA vaccines in vivo.