Multiple mosquito AMPs are needed to potentiate their antifungal effect against entomopathogenic fungi
José L Ramirez1, Kylie J Hampton1, Alayna M Rosales2
1Crop Bioprotection Research Unit, United States Department of Agriculture, Agricultural Research Service, National Center for Agricultural Utilization Research, Peoria, IL, United States.
Abstract:
Mosquito resistance to microbial infections, including fungal entomopathogens that are selected for mosquito control, depend on a range of antimicrobial effectors, among them antimicrobial peptides (AMPs). These short peptides, along the antimicrobial effector lysozyme, act by disrupting the microbial cell membrane or by interfering with microbial physiological processes. While the induction of AMPs and lysozyme during fungal entomopathogenic infections have been reported, their contribution to the mosquito antifungal response has not been evaluated. In this study, we assessed the induction of Ae. aegypti AMPs and lysozyme genes at two points of infection and against distinct entomopathogenic fungi. Our results indicate that fungal infection elicits the expression of cecropin, defensin, diptericin, holotricin, and lysozyme, but do not affect those of attacin or gambicin. We further evaluated the role of these antimicrobial effectors via RNAi-based depletion of select AMPs during challenges with two entomopathogenic fungi. Our results reveal that AMPs and lysozyme are critical to the antifungal response, acting in concert, rather than individually, to potentiate their antimicrobial effect against entomopathogenic fungi. This study further contributes to a better understanding of the mechanisms that confer resistance to entomopathogenic fungi in an important mosquito vector.
Insights
Mosquitoes utilize antimicrobial peptides (AMPs) and lysozyme to combat fungal infections. These effectors work together to enhance resistance against entomopathogenic fungi.
Area of Science:
- Vector biology
- Immunology
- Microbiology
Background:
- Mosquitoes possess antimicrobial peptides (AMPs) and lysozyme as defense mechanisms against microbial infections.
- Fungal entomopathogens are crucial for mosquito control, but mosquito resistance mechanisms require further investigation.
Purpose of the Study:
- To assess the induction of AMPs and lysozyme genes in *Ae. aegypti* during fungal infections.
- To evaluate the contribution of AMPs and lysozyme to the mosquito's antifungal response.
Main Methods:
- Gene expression analysis of *Ae. aegypti* AMPs and lysozyme following infection with distinct entomopathogenic fungi.
- RNA interference (RNAi) to deplete specific AMPs and assess their role in antifungal defense.
Main Results:
- Fungal infection induced the expression of cecropin, defensin, diptericin, holotricin, and lysozyme genes.
- Attacin and gambicin gene expression remained unaffected by fungal infection.
- AMPs and lysozyme are critical for the mosquito's antifungal response, functioning synergistically.
Conclusions:
- AMPs and lysozyme play a vital, cooperative role in mosquito resistance to entomopathogenic fungi.
- Understanding these mechanisms can inform strategies for mosquito control using fungal agents.


