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Mosquito-fungus Interactions and Antifungal Immunity

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Date 2019 Jul 3
PMID 31265904
Citations 28
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Abstract

The mosquito immune system has evolved in the presence of continuous encounters with fungi that range from food to foes. Herein, we review the field of mosquito-fungal interactions, providing an overview of current knowledge and topics of interest. Mosquitoes encounter fungi in their aquatic and terrestrial habitats. Mosquito larvae are exposed to fungi on plant detritus, within the water column, and at the water surface. Adult mosquitoes are exposed to fungi during indoor and outdoor resting, blood and sugar feeding, mating, and oviposition. Fungi enter the mosquito body through different routes, including ingestion and through active or passive breaches in the cuticle. Oral uptake of fungi can be beneficial to mosquitoes, as yeasts hold nutritional value and support larval development. However, ingestion of or surface contact with fungal entomopathogens leads to colonization of the mosquito with often lethal consequences to the host. The mosquito immune system recognizes fungi and mounts cellular and humoral immune responses in the hemocoel, and possibly epithelial immune responses in the gut. These responses are regulated transcriptionally through multiple signal transduction pathways. Proteolytic protease cascades provide additional regulation of antifungal immunity. Together, these immune responses provide an efficient barrier to fungal infections, which need to be overcome by entomopathogens. Therefore, fungi constitute an excellent tool to examine the molecular underpinnings of mosquito immunity and to identify novel antifungal peptides. In addition, recent advances in mycobiome analyses can now be used to examine the contribution of fungi to various mosquito traits, including vector competence.

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References
1.
Meister S, Agianian B, Turlure F, Relogio A, Morlais I, Kafatos F . Anopheles gambiae PGRPLC-mediated defense against bacteria modulates infections with malaria parasites. PLoS Pathog. 2009; 5(8):e1000542. PMC: 2715215. DOI: 10.1371/journal.ppat.1000542. View

2.
Lwetoijera D, Sumaye R, Madumla E, Kavishe D, Mnyone L, Russell T . An extra-domiciliary method of delivering entomopathogenic fungus, Metharizium anisopliae IP 46 for controlling adult populations of the malaria vector, Anopheles arabiensis. Parasit Vectors. 2010; 3(1):18. PMC: 2848008. DOI: 10.1186/1756-3305-3-18. View

3.
Popko D, Henke J, Mullens B, Walton W . Evaluation of Two Entomopathogenic Fungi for Control of Culex quinquefasciatus (Diptera: Culicidae) in Underground Storm Drains in the Coachella Valley, California, United States. J Med Entomol. 2018; 55(3):654-665. DOI: 10.1093/jme/tjx233. View

4.
Gubler D, Nalim S, Tan R, Saipan H, Sulianti Saroso J . Variation in susceptibility to oral infection with dengue viruses among geographic strains of Aedes aegypti. Am J Trop Med Hyg. 1979; 28(6):1045-52. DOI: 10.4269/ajtmh.1979.28.1045. View

5.
Lemaitre B . The road to Toll. Nat Rev Immunol. 2004; 4(7):521-7. DOI: 10.1038/nri1390. View