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Updated: May 17, 2025

Non-invasive Imaging of Disseminated Candidiasis in Zebrafish Larvae
Published on: July 30, 2012
Larval zebrafish burn wound infection model reveals conserved innate immune responses against diverse pathogenic
Nayanna M Mercado Soto1,2, Adam Horn1, Nancy P Keller1,2,3
1Department of Medical Microbiology and Immunology, University of Wisconsin-Madison, Madison, Wisconsin, USA.
Abstract:
Secondary fungal infections represent a major complication following thermal injuries. However, the mechanisms of fungal colonization of burn tissue and how the host subsequently responds to fungi within this niche remain unclear. We have previously reported a zebrafish model of thermal injury that recapitulates many of the features of human burn wounds. Here, we characterize host-fungal interaction dynamics within the burn wound niche using two of the most common fungal pathogens isolated from burn injuries, Aspergillus fumigatus and Candida albicans. Both A. fumigatus and C. albicans colonize burned tissue in zebrafish larvae and induce a largely conserved innate immune response following colonization. Using drug-induced cell-depletion strategies and transgenic zebrafish lines with impaired innate immune function, we found that macrophages control fungal burden, whereas neutrophils primarily control invasive hyphal growth at the early stages of infection. However, we also found that loss of either immune cell can be compensated by the other at the later stages of infection and that fish with both macrophage and neutrophil deficiencies show more invasive hyphal growth that is sustained throughout the infection process, suggesting redundancy in their antifungal activities. Finally, we demonstrate that C. albicans strains with increased β(1,3)-glucan exposure are cleared faster from the burn wound, demonstrating a need for shielding this immunogenic cell wall epitope for the successful fungal colonization of burn tissue. Together, our findings support the use of zebrafish larvae as a model to study host-fungal interaction dynamics within burn wounds.IMPORTANCESecondary fungal infections within burn wound injuries are a significant problem that delays wound healing and increases the risk of patient mortality. Currently, little is known about how fungi colonize and infect burn tissue or how the host responds to pathogen presence. In this report, we expand upon an existing thermal injury model using zebrafish larvae to begin elucidating both the host immune response to fungal burn colonization and fungal mechanisms for persistence within burn tissue. We found that both Aspergillus fumigatus and Candida albicans, common fungal burn wound isolates, successfully colonize burn tissue and are effectively cleared in immunocompetent zebrafish by both macrophages and neutrophils. We also find that C. albicans mutants harboring mutations that impact their ability to evade host immune system recognition are cleared more readily from burn tissue. Collectively, our work highlights the efficacy of using zebrafish to study host-fungal interaction dynamics within burn wounds.
Insights
Zebrafish models reveal how immune cells like macrophages and neutrophils fight fungal infections in burn wounds. Fungi like Aspergillus fumigatus and Candida albicans are cleared by these cells, with immune evasion aiding fungal persistence.
Area of Science:
- Immunology
- Microbiology
- Zebrafish models
Background:
- Secondary fungal infections are a major complication of thermal injuries, leading to delayed healing and increased mortality.
- Mechanisms of fungal colonization and host immune response in burn wounds are poorly understood.
- Zebrafish models offer a valuable platform for studying host-pathogen interactions in thermal injury contexts.
Purpose of the Study:
- To characterize host-fungal interaction dynamics in a zebrafish model of thermal injury.
- To investigate the roles of macrophages and neutrophils in controlling fungal infections (Aspergillus fumigatus and Candida albicans) in burn wounds.
- To identify fungal mechanisms contributing to persistence in burn wound environments.
Main Methods:
- Utilized a zebrafish larvae model of thermal injury.
- Infected with Aspergillus fumigatus and Candida albicans.
- Employed drug-induced cell-depletion strategies and transgenic zebrafish lines to impair innate immune function (macrophages and neutrophils).
Main Results:
- Both Aspergillus fumigatus and Candida albicans successfully colonized burn tissue in zebrafish.
- Macrophages controlled fungal burden, while neutrophils limited invasive hyphal growth in early infection stages.
- Redundancy between macrophages and neutrophils was observed in later infection stages; impaired immune function led to increased invasive hyphal growth.
- Candida albicans strains with reduced beta-(1,3)-glucan exposure showed faster clearance, indicating the importance of immune evasion.
Conclusions:
- Zebrafish larvae are a suitable model for studying host-fungal interactions in burn wounds.
- Macrophages and neutrophils play distinct yet complementary roles in controlling fungal burn wound infections.
- Fungal strategies to evade immune recognition, such as shielding beta-(1,3)-glucan, are crucial for successful colonization.

