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Standard Membrane Feeding Assay for the Detection of Plasmodium falciparum Infection in Anopheles Mosquito Vectors
Published on: May 12, 2022
Caspar controls resistance to Plasmodium falciparum in diverse anopheline species
Lindsey S Garver1, Yuemei Dong, George Dimopoulos
1W Harry Feinstone Department of Molecular Microbiology and Immunology, Johns Hopkins Bloomberg School of Public Health, Baltimore, Maryland, United States of America.
Abstract:
Immune responses mounted by the malaria vector Anopheles gambiae are largely regulated by the Toll and Imd (immune deficiency) pathways via the NF-kappaB transcription factors Rel1 and Rel2, which are controlled by the negative regulators Cactus and Caspar, respectively. Rel1- and Rel2-dependent transcription in A. gambiae has been shown to be particularly critical to the mosquito's ability to manage infection with the rodent malaria parasite Plasmodium berghei. Using RNA interference to deplete the negative regulators of these pathways, we found that Rel2 controls resistance of A. gambiae to the human malaria parasite Plasmodium falciparum, whereas Rel 1 activation reduced infection levels. The universal relevance of this defense system across Anopheles species was established by showing that caspar silencing also prevents the development of P. falciparum in the major malaria vectors of Asia and South America, A. stephensi and A. albimanus, respectively. Parallel studies suggest that while Imd pathway activation is most effective against P. falciparum, the Toll pathway is most efficient against P. berghei, highlighting a significant discrepancy between the human pathogen and its rodent model. High throughput gene expression analyses identified a plethora of genes regulated by the activation of the two Rel factors and revealed that the Toll pathway played a more diverse role in mosquito biology than the Imd pathway, which was more immunity-specific. Further analyses of key anti-Plasmodium factors suggest they may be responsible for the Imd pathway-mediated resistance phenotype. Additionally, we found that the fitness cost caused by Rel2 activation through caspar gene silencing was undetectable in sugar-fed, blood-fed, and P. falciparum-infected female A. gambiae, while activation of the Toll pathway's Rel1 had a major impact. This study describes for the first time a single gene that influences an immune mechanism that is able to abort development of P. falciparum in Anopheline species. Further, this study addresses aspects of the molecular, evolutionary, and physiological consequences of the observed phenotype. These findings have implications for malaria control since broad-spectrum immune activation in diverse anopheline species offers a viable and strategic approach to develop novel malaria control methods worldwide.
Insights
Targeting mosquito immune pathways, specifically the Rel2 immune deficiency (Imd) pathway by silencing Caspar, effectively inhibits human malaria parasite Plasmodium falciparum development in Anopheles gambiae. This broad-spectrum approach shows promise for global malaria control strategies.
Area of Science:
- Vector immunology
- Molecular entomology
- Parasitology
Background:
- Mosquito immune responses, regulated by Toll and Imd pathways via NF-kappaB transcription factors Rel1 and Rel2, are crucial for controlling malaria parasites.
- Negative regulators Cactus and Caspar modulate these pathways, impacting Anopheles gambiae's ability to manage Plasmodium infections.
Purpose of the Study:
- To investigate the roles of Toll and Imd pathways in Anopheles gambiae resistance to Plasmodium falciparum.
- To determine the conserved nature of these immune mechanisms across different Anopheles species.
- To assess the fitness costs associated with immune pathway activation.
Main Methods:
- RNA interference (RNAi) was used to deplete negative regulators Cactus and Caspar.
- Gene expression analysis was performed using high-throughput methods.
- Mosquitoes were infected with Plasmodium falciparum and Plasmodium berghei to assess parasite development.
Main Results:
- Silencing Caspar (negative regulator of Imd pathway) led to resistance against Plasmodium falciparum in Anopheles gambiae.
- Rel1 activation (Toll pathway) reduced Plasmodium berghei infection but had significant fitness costs.
- Caspar silencing was effective against P. falciparum in Anopheles stephensi and Anopheles albimanus, indicating conserved mechanisms.
- Toll pathway showed broader roles in mosquito biology, while Imd pathway was more immunity-specific.
Conclusions:
- The Imd pathway, specifically Rel2 activation via Caspar silencing, provides a potent mechanism to inhibit P. falciparum development in diverse Anopheles species.
- Targeting this conserved immune mechanism offers a novel strategy for malaria control.
- The differential efficacy of Toll and Imd pathways against P. falciparum and P. berghei highlights the importance of using relevant parasite models.
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