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.

Plos Genetics
|October 8, 2021
PubMed

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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