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Visualizing Non-lytic Exocytosis of Cryptococcus neoformans from Macrophages Using Digital Light Microscopy
Published on: October 21, 2014
The human fungal pathogen Cryptococcus neoformans escapes macrophages by a phagosome emptying mechanism that is
Simon A Johnston1, Robin C May
1School of Biosciences, College of Life and Environmental Sciences, The University of Birmingham, Birmingham, United Kingdom.
Abstract:
The lysis of infected cells by disease-causing microorganisms is an efficient but risky strategy for disseminated infection, as it exposes the pathogen to the full repertoire of the host's immune system. Cryptococcus neoformans is a widespread fungal pathogen that causes a fatal meningitis in HIV and other immunocompromised patients. Following intracellular growth, cryptococci are able to escape their host cells by a non-lytic expulsive mechanism that may contribute to the invasion of the central nervous system. Non-lytic escape is also exhibited by some bacterial pathogens and is likely to facilitate long-term avoidance of the host immune system during latency. Here we show that phagosomes containing intracellular cryptococci undergo repeated cycles of actin polymerisation. These actin 'flashes' occur in both murine and human macrophages and are dependent on classical WASP-Arp2/3 complex mediated actin filament nucleation. Three dimensional confocal imaging time lapse revealed that such flashes are highly dynamic actin cages that form around the phagosome. Using fluorescent dextran as a phagosome membrane integrity probe, we find that the non-lytic expulsion of Cryptococcus occurs through fusion of the phagosome and plasma membranes and that, prior to expulsion, 95% of phagosomes become permeabilised, an event that is immediately followed by an actin flash. By using pharmacological agents to modulate both actin dynamics and upstream signalling events, we show that flash occurrence is inversely related to cryptococcal expulsion, suggesting that flashes may act to temporarily inhibit expulsion from infected phagocytes. In conclusion, our data reveal the existence of a novel actin-dependent process on phagosomes containing cryptococci that acts as a potential block to expulsion of Cryptococcus and may have significant implications for the dissemination of, and CNS invasion by, this organism.
Insights
Cryptococcus neoformans fungal pathogen evades immune cells using a novel actin cage mechanism. These actin flashes on phagosomes may block pathogen expulsion, impacting central nervous system invasion.
Area of Science:
- Cell Biology
- Mycology
- Immunology
Background:
- Disseminated infections risk pathogen exposure to host immunity.
- Cryptococcus neoformans causes fatal meningitis in immunocompromised individuals.
- Non-lytic pathogen escape mechanisms aid immune evasion and latency.
Purpose of the Study:
- Investigate the mechanism of Cryptococcus neoformans intracellular escape.
- Determine the role of actin polymerization in fungal pathogen expulsion.
- Elucidate the implications for central nervous system invasion.
Main Methods:
- Utilized 3D confocal time-lapse imaging of murine and human macrophages.
- Observed intracellular Cryptococcus neoformans and actin dynamics.
- Employed fluorescent dextran to assess phagosome membrane integrity and pharmacological agents to modulate actin dynamics.
Main Results:
- Intracellular Cryptococcus neoformans induces repeated actin polymerization 'flashes' around phagosomes.
- Actin flashes are dynamic actin cages dependent on WASP-Arp2/3 complex.
- Phagosome permeabilization precedes expulsion and is immediately followed by an actin flash, suggesting flashes inhibit expulsion.
Conclusions:
- A novel actin-dependent process involving actin cages on phagosomes potentially blocks Cryptococcus expulsion.
- This mechanism may inhibit pathogen dissemination and central nervous system invasion.
- Findings offer insights into fungal pathogenesis and host-pathogen interactions.
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