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Updated: Jun 15, 2025

Infecting Mice with Malassezia spp. to Study the Fungus-Host Interaction
Published on: November 6, 2019
Malassezia responds to environmental pH signals through the conserved Rim/Pal pathway
Kaila M Pianalto1,2, Calla L Telzrow1,2, Hannah Brown Harding1,2
1Department of Medicine, Duke University School of Medicine, Durham, North Carolina, USA.
Abstract:
During mammalian colonization and infection, microorganisms must be able to rapidly sense and adapt to changing environmental conditions including alterations in extracellular pH. The fungus-specific Rim/Pal signaling pathway is one process that supports microbial adaptation to alkaline pH. This cascading series of interacting proteins terminates in the proteolytic activation of the highly conserved Rim101/PacC protein, a transcription factor that mediates microbial responses that favor survival in neutral/alkaline pH growth conditions, including many mammalian tissues. We identified the putative Rim pathway proteins Rim101 and Rra1 in the human skin colonizing fungus Malassezia sympodialis. Gene deletion by transconjugation and homologous recombination revealed that Rim101 and Rra1 are required for M. sympodialis growth at higher pH. In addition, comparative transcriptional analysis of the mutant strains compared to wild-type suggested mechanisms for fungal adaptation to alkaline conditions. These pH-sensing signaling proteins are required for optimal growth in a murine model of atopic dermatitis, a pathological condition associated with increased skin pH. Together, these data elucidate both conserved and phylum-specific features of microbial adaptation to extracellular stresses.IMPORTANCEThe ability to adapt to host pH has been previously associated with microbial virulence in several pathogenic fungal species. Here we demonstrate that a fungal-specific alkaline response pathway is conserved in the human skin commensal fungus Malassezia sympodialis (Ms). This pathway is characterized by the pH-dependent activation of the Rim101/PacC transcription factor that controls cell surface adaptations to changing environmental conditions. By disrupting genes encoding two predicted components of this pathway, we demonstrated that the Rim/Pal pathway is conserved in this fungal species as a facilitator of alkaline pH growth. Moreover, targeted gene mutation and comparative transcriptional analysis support the role of the Ms Rra1 protein as a cell surface pH sensor conserved within the basidiomycete fungi, a group including plant and human pathogens. Using an animal model of atopic dermatitis, we demonstrate the importance of Ms Rim/Pal signaling in this common inflammatory condition characterized by increased skin pH.
Insights
The Rim/Pal pathway helps fungi like Malassezia sympodialis adapt to alkaline pH, crucial for growth on human skin. This pathway is vital for fungal survival in conditions like atopic dermatitis.
Area of Science:
- Microbiology
- Mycology
- Molecular Biology
Background:
- Microorganisms adapt to environmental pH changes for survival.
- The fungus-specific Rim/Pal signaling pathway regulates adaptation to alkaline pH.
- This pathway involves the Rim101/PacC transcription factor, important for survival in neutral/alkaline conditions.
Purpose of the Study:
- To investigate the role of the Rim/Pal pathway in Malassezia sympodialis, a fungus colonizing human skin.
- To identify conserved and phylum-specific features of microbial adaptation to extracellular stresses.
Main Methods:
- Identified putative Rim pathway proteins Rim101 and Rra1 in Malassezia sympodialis.
- Utilized gene deletion (transconjugation and homologous recombination) to create mutant strains.
- Performed comparative transcriptional analysis of mutant and wild-type strains.
- Assessed fungal growth in a murine model of atopic dermatitis.
Main Results:
- Rim101 and Rra1 are essential for M. sympodialis growth at higher pH.
- Comparative transcriptomics revealed mechanisms for fungal adaptation to alkaline conditions.
- The Rim/Pal pathway is conserved in M. sympodialis and facilitates alkaline pH growth.
- Ms Rra1 acts as a cell surface pH sensor conserved in basidiomycete fungi.
- Rim/Pal signaling is important for M. sympodialis growth in an atopic dermatitis model.
Conclusions:
- The Rim/Pal pathway is conserved in Malassezia sympodialis, enabling adaptation to alkaline environments.
- This pathway plays a significant role in fungal survival and adaptation on host surfaces.
- The findings highlight the importance of pH-sensing signaling proteins in fungal pathogenesis and host interactions, particularly in conditions like atopic dermatitis.
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