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A unique cell wall synthetic response evoked by glucosamine determines pathogenicity-associated fungal cellular
Pengjie Hu1, Hao Ding1,2, Lan Shen1
1State Key Laboratory of Mycology, Institute of Microbiology, Chinese Academy of Sciences, Beijing, China.
Abstract:
The yeast-to-hypha transition is tightly associated with pathogenicity in many human pathogenic fungi, such as the model fungal pathogen Cryptococcus neoformans, which is responsible for approximately 180,000 deaths annually. In this pathogen, the yeast-to-hypha transition can be initiated by distinct stimuli: mating stimulation or glucosamine (GlcN), the monomer of cell wall chitosan. However, it remains poorly understood how the signal specificity for Cryptococcus morphological transition by disparate stimuli is ensured. Here, by integrating temporal expression signature analysis and phenome-based clustering evaluation, we demonstrate that GlcN specifically triggers a unique cellular response, which acts as a critical determinant underlying the activation of GlcN-induced filamentation (GIF). This cellular response is defined by an unusually hyperactive cell wall synthesis that is highly ATP-consuming. A novel cell surface protein Gis1 was identified as the indicator molecule for the GlcN-induced cell wall response. The Mpk1-directed cell wall pathway critically bridges global cell wall gene induction and intracellular ATP supply, ensuring the Gis1-dependent cell wall response and the stimulus specificity of GIF. We further reveal that the ability of Mpk1 to coordinate the cell wall response and GIF activation is conserved in different Cryptococcus pathogens. Phosphoproteomics-based profiling together with genetic and phenotypic analysis revealed that the Mpk1 kinase mediates the regulatory specificity of GIF through a coordinated downstream regulatory network centered on Skn7 and Crz1. Overall, our findings discover an unprecedented and conserved cell wall biosynthesis-dependent fungal differentiation commitment mechanism, which enables the signal specificity of pathogenicity-related dimorphism induced by GlcN in Cryptococcus pathogens.
Insights
Glucosamine (GlcN) triggers a unique, ATP-intensive cell wall response, activating fungal filamentation in Cryptococcus neoformans. This pathway, mediated by Gis1 and Mpk1, ensures specific signaling for pathogenicity.
Area of Science:
- Mycology
- Cell Biology
- Pathogen Biology
Background:
- The yeast-to-hypha transition in pathogenic fungi like Cryptococcus neoformans is linked to virulence.
- Distinct stimuli, including glucosamine (GlcN), can induce this morphological change, but the specificity mechanisms are unclear.
- Cryptococcus neoformans causes significant mortality, highlighting the need to understand its pathogenic mechanisms.
Purpose of the Study:
- To elucidate the signal specificity underlying glucosamine-induced filamentation (GIF) in Cryptococcus neoformans.
- To identify key molecular players and pathways involved in GlcN-specific morphological transitions.
- To understand the conserved mechanisms of fungal dimorphism and pathogenicity.
Main Methods:
- Temporal gene expression signature analysis.
- Phenome-based clustering evaluation.
- Genetic and phenotypic analysis, including phosphoproteomics.
- Identification of novel cell surface proteins (Gis1) and kinase pathways (Mpk1).
Main Results:
- GlcN specifically induces a hyperactive, ATP-consuming cell wall synthesis response, critical for GIF.
- The cell surface protein Gis1 acts as an indicator for this GlcN-induced cell wall response.
- The Mpk1 kinase pathway integrates cell wall gene induction, ATP supply, and stimulus specificity for GIF.
- Mpk1 coordinates downstream regulators Skn7 and Crz1, ensuring GIF regulatory specificity.
Conclusions:
- A novel, conserved mechanism of cell wall biosynthesis-dependent fungal differentiation is discovered.
- This mechanism ensures signal specificity for GlcN-induced dimorphism and pathogenicity in Cryptococcus.
- The findings provide insights into fungal virulence and potential therapeutic targets.
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