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Infection of Zebrafish Larvae with Aspergillus Spores for Analysis of Host-Pathogen Interactions
Published on: May 16, 2020
In vivo Host-Pathogen Interaction as Revealed by Global Proteomic Profiling of Zebrafish Larvae
Francisco Díaz-Pascual1, Javiera Ortíz-Severín1, Macarena A Varas1
1Laboratorio de Microbiología de Sistemas, Departamento de Biología, Facultad de Ciencias, Universidad de ChileSantiago, Chile.
Abstract:
The outcome of a host-pathogen interaction is determined by the conditions of the host, the pathogen, and the environment. Although numerous proteomic studies of in vitro-grown microbial pathogens have been performed, in vivo proteomic approaches are still rare. In addition, increasing evidence supports that in vitro studies inadequately reflect in vivo conditions. Choosing the proper host is essential to detect the expression of proteins from the pathogen in vivo. Numerous studies have demonstrated the suitability of zebrafish (Danio rerio) embryos as a model to in vivo studies of Pseudomonas aeruginosa infection. In most zebrafish-pathogen studies, infection is achieved by microinjection of bacteria into the larvae. However, few reports using static immersion of bacterial pathogens have been published. In this study we infected 3 days post-fertilization (DPF) zebrafish larvae with P. aeruginosa PAO1 by immersion and injection and tracked the in vivo immune response by the zebrafish. Additionally, by using non-isotopic (Q-exactive) metaproteomics we simultaneously evaluated the proteomic response of the pathogen (P. aeruginosa PAO1) and the host (zebrafish). We found some zebrafish metabolic pathways, such as hypoxia response via HIF activation pathway, were exclusively enriched in the larvae exposed by static immersion. In contrast, we found that inflammation mediated by chemokine and cytokine signaling pathways was exclusively enriched in the larvae exposed by injection, while the integrin signaling pathway and angiogenesis were solely enriched in the larvae exposed by immersion. We also found important virulence factors from P. aeruginosa that were enriched only after exposure by injection, such as the Type-III secretion system and flagella-associated proteins. On the other hand, P. aeruginosa proteins involved in processes like biofilm formation, and cellular responses to antibiotic and starvation were enriched exclusively after exposure by immersion. We demonstrated the suitability of zebrafish embryos as a model for in vivo host-pathogen based proteomic studies in P. aeruginosa. Our global proteomic profiling identifies novel molecular signatures that give systematic insight into zebrafish-Pseudomonas interaction.
Insights
Zebrafish embryos offer a powerful model for studying host-pathogen interactions. This study reveals distinct proteomic responses in zebrafish and Pseudomonas aeruginosa depending on whether infection occurs via immersion or injection.
Area of Science:
- Microbiology
- Immunology
- Proteomics
Background:
- In vitro studies of microbial pathogens inadequately reflect in vivo conditions.
- Zebrafish (Danio rerio) embryos are a suitable model for in vivo host-pathogen studies.
- Static immersion is an underutilized method for infecting zebrafish larvae.
Purpose of the Study:
- To compare the in vivo proteomic responses of zebrafish and Pseudomonas aeruginosa following infection by static immersion versus microinjection.
- To identify distinct molecular signatures associated with each infection route.
- To demonstrate the utility of zebrafish embryos for host-pathogen proteomic research.
Main Methods:
- Infection of 3 days post-fertilization (DPF) zebrafish larvae with P. aeruginosa PAO1 via static immersion and microinjection.
- Non-isotopic (Q-exactive) metaproteomics to simultaneously analyze host and pathogen proteomes.
- Bioinformatic analysis to identify enriched pathways and virulence factors.
Main Results:
- Static immersion enriched zebrafish hypoxia response pathways (HIF activation) and P. aeruginosa biofilm formation and antibiotic/starvation response proteins.
- Injection enriched zebrafish inflammation pathways (chemokine/cytokine signaling) and P. aeruginosa Type-III secretion system and flagella-associated proteins.
- Distinct host and pathogen molecular signatures were identified for each infection route.
Conclusions:
- Zebrafish embryos provide a valuable platform for in vivo host-pathogen proteomic studies.
- Infection route significantly influences host immune responses and pathogen virulence factor expression.
- Global proteomic profiling reveals novel insights into the P. aeruginosa-zebrafish interaction.

