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Genome-Wide Exploration of Thiamin Pyrophosphate Riboswitches in Medically Relevant Fungi Reveals Diverse
Valdemir Vargas-Junior1, Ana Carolina Ramos Guimarães1, Ernesto Raul Caffarena2
1Laboratory for Applied Genomics and Bioinnovations, Oswaldo Cruz Institute (IOC - FIOCRUZ), Rio de Janeiro 21040-900, Brazil.
Abstract:
The rising incidence of fungal infections coupled with limited treatment options underscores the urgent need for novel antifungal therapies. Riboswitches, particularly thiamin pyrophosphate (TPP) class, have emerged as promising antimicrobial targets. This study presents a comprehensive genome-wide analysis of TPP riboswitches in 156 medically relevant fungi utilizing advanced covariance models (CMs) tailored for fungal sequences. Our investigation identified 378 conserved TPP riboswitch sequences distributed across 140 distinct species, revealing a broader prevalence than that previously recognized. Notably, we provide evidence for a novel putative group of TPP riboswitches, designated TPPswSUGAR, associated with sugar transporters in Mucoromycota and Basidiomycota. This group exhibits distinctive structural features while maintaining key TPP-binding motifs, potentially expanding our understanding of the riboswitch diversity in fungi. Our analysis highlights the impact of P3 stem variability on riboswitch detection and characterization, demonstrating the superiority of fungal-specific CMs over generic models. We observed multiple TPP riboswitches in over 50% of the examined species, including clinically significant pathogens involved in aspergillosis and mucormycosis. Remarkably, Aspergillus latus, a species associated with COVID-19 coinfections, harbors six distinct TPP riboswitch sequences, whereas the extremophilic black fungus Hortaea werneckii possesses nine. These findings not only elucidate the diverse distribution of TPP riboswitches in pathogenic fungi but also emphasize their potential as multifaceted targets for antifungal drug development. By addressing key limitations of previous detection methods and providing insights into riboswitch structural diversity, this study lays a foundation for future investigations into riboswitch-mediated regulation in fungi and the development of novel antifungal strategies.
Insights
Researchers discovered widespread thiamin pyrophosphate (TPP) riboswitches in fungi, including a new sugar-associated type. This finding offers potential for developing novel antifungal therapies against emerging fungal infections.
Area of Science:
- Mycology
- Molecular Biology
- Antimicrobial Drug Discovery
Background:
- Increasing fungal infections and limited treatment options necessitate new antifungal strategies.
- Riboswitches, particularly thiamin pyrophosphate (TPP) riboswitches, are promising antimicrobial targets.
- Previous studies have not fully characterized TPP riboswitch prevalence in medically relevant fungi.
Purpose of the Study:
- To conduct a genome-wide analysis of TPP riboswitches in 156 medically relevant fungal species.
- To identify novel TPP riboswitch groups and understand their distribution and structural diversity.
- To evaluate the potential of TPP riboswitches as targets for antifungal drug development.
Main Methods:
- Utilized advanced covariance models (CMs) specifically tailored for fungal sequences.
- Performed a comprehensive genome-wide search for TPP riboswitches across 156 fungal species.
- Analyzed sequence conservation, structural features, and P3 stem variability.
Main Results:
- Identified 378 conserved TPP riboswitch sequences in 140 fungal species, indicating broader prevalence than previously known.
- Discovered a novel putative TPP riboswitch group, TPPswSUGAR, linked to sugar transporters in Mucoromycota and Basidiomycota.
- Found multiple TPP riboswitches in over 50% of species, including significant pathogens like Aspergillus and Hortaea werneckii.
Conclusions:
- TPP riboswitches are widely distributed in medically relevant fungi, with significant structural diversity.
- The novel TPPswSUGAR group expands the known repertoire of fungal riboswitches.
- TPP riboswitches represent promising, multifaceted targets for the development of novel antifungal therapies.
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