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Published on: October 17, 2015
Defects in intracellular trafficking of fungal cell wall synthases lead to aberrant host immune recognition
Shannon K Esher1, Kyla S Ost1, Maria A Kohlbrenner1
1Departments of Molecular Genetics and Microbiology/Medicine, Duke University School of Medicine, Durham, NC, United States of America.
Abstract:
The human fungal pathogen, Cryptococcus neoformans, dramatically alters its cell wall, both in size and composition, upon entering the host. This cell wall remodeling is essential for host immune avoidance by this pathogen. In a genetic screen for mutants with changes in their cell wall, we identified a novel protein, Mar1, that controls cell wall organization and immune evasion. Through phenotypic studies of a loss-of-function strain, we have demonstrated that the mar1Δ mutant has an aberrant cell surface and a defect in polysaccharide capsule attachment, resulting in attenuated virulence. Furthermore, the mar1Δ mutant displays increased staining for exposed cell wall chitin and chitosan when the cells are grown in host-like tissue culture conditions. However, HPLC analysis of whole cell walls and RT-PCR analysis of cell wall synthase genes demonstrated that this increased chitin exposure is likely due to decreased levels of glucans and mannans in the outer cell wall layers. We observed that the Mar1 protein differentially localizes to cellular membranes in a condition dependent manner, and we have further shown that the mar1Δ mutant displays defects in intracellular trafficking, resulting in a mislocalization of the β-glucan synthase catalytic subunit, Fks1. These cell surface changes influence the host-pathogen interaction, resulting in increased macrophage activation to microbial challenge in vitro. We established that several host innate immune signaling proteins are required for the observed macrophage activation, including the Card9 and MyD88 adaptor proteins, as well as the Dectin-1 and TLR2 pattern recognition receptors. These studies explore novel mechanisms by which a microbial pathogen regulates its cell surface in response to the host, as well as how dysregulation of this adaptive response leads to defective immune avoidance.
Insights
Cryptococcus neoformans Mar1 protein is crucial for cell wall integrity and immune evasion. Loss of Mar1 impairs capsule attachment and virulence, leading to increased host immune cell activation.
Area of Science:
- Mycology
- Immunology
- Cell Biology
Background:
- Cryptococcus neoformans remodels its cell wall upon host entry for immune evasion.
- Pathogen cell wall composition is critical for host-pathogen interactions.
Purpose of the Study:
- Identify novel proteins controlling Cryptococcus neoformans cell wall organization and immune evasion.
- Investigate the role of the Mar1 protein in fungal pathogenesis and host immune response.
Main Methods:
- Genetic screening to identify cell wall mutants.
- Phenotypic analysis of mar1Δ mutant strains.
- High-performance liquid chromatography (HPLC) and reverse transcription PCR (RT-PCR).
- Analysis of intracellular trafficking and protein localization.
- In vitro macrophage activation assays.
Main Results:
- A novel protein, Mar1, was identified as essential for cell wall organization and immune evasion.
- mar1Δ mutants exhibit aberrant cell surfaces, defective capsule attachment, and attenuated virulence.
- Increased exposure of chitin and chitosan in mar1Δ mutants due to reduced glucans and mannans.
- Mar1 is involved in intracellular trafficking, affecting β-glucan synthase subunit Fks1 localization.
- mar1Δ mutants trigger enhanced macrophage activation via Card9, MyD88, Dectin-1, and TLR2 signaling.
Conclusions:
- Mar1 regulates Cryptococcus neoformans cell wall composition and structure for effective immune evasion.
- Dysregulation of Mar1 leads to impaired virulence and heightened host immune responses.
- This study reveals novel mechanisms of pathogen cell surface adaptation and host immune recognition.
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