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Anopheles gambiae PGRPLC-mediated defense against bacteria modulates infections with malaria parasites
Stephan Meister1, Bogos Agianian, Fanny Turlure
1Division of Cell and Molecular Biology, Department of Life Sciences, Imperial College London, London, UK.
Abstract:
Recognition of peptidoglycan (PGN) is paramount for insect antibacterial defenses. In the fruit fly Drosophila melanogaster, the transmembrane PGN Recognition Protein LC (PGRP-LC) is a receptor of the Imd signaling pathway that is activated after infection with bacteria, mainly Gram-negative (Gram-). Here we demonstrate that bacterial infections of the malaria mosquito Anopheles gambiae are sensed by the orthologous PGRPLC protein which then activates a signaling pathway that involves the Rel/NF-kappaB transcription factor REL2. PGRPLC signaling leads to transcriptional induction of antimicrobial peptides at early stages of hemolymph infections with the Gram-positive (Gram+) bacterium Staphylococcus aureus, but a different signaling pathway might be used in infections with the Gram- bacterium Escherichia coli. The size of mosquito symbiotic bacteria populations and their dramatic proliferation after a bloodmeal, as well as intestinal bacterial infections, are also controlled by PGRPLC signaling. We show that this defense response modulates mosquito infection intensities with malaria parasites, both the rodent model parasite, Plasmodium berghei, and field isolates of the human parasite, Plasmodium falciparum. We propose that the tripartite interaction between mosquito microbial communities, PGRPLC-mediated antibacterial defense and infections with Plasmodium can be exploited in future interventions aiming to control malaria transmission. Molecular analysis and structural modeling provided mechanistic insights for the function of PGRPLC. Alternative splicing of PGRPLC transcripts produces three main isoforms, of which PGRPLC3 appears to have a key role in the resistance to bacteria and modulation of Plasmodium infections. Structural modeling indicates that PGRPLC3 is capable of binding monomeric PGN muropeptides but unable to initiate dimerization with other isoforms. A dual role of this isoform is hypothesized: it sequesters monomeric PGN dampening weak signals and locks other PGRPLC isoforms in binary immunostimulatory complexes further enhancing strong signals.
Insights
Anopheles gambiae mosquitoes use PGRPLC signaling to detect bacteria, activating defenses against pathogens like Staphylococcus aureus and influencing malaria parasite infection intensity. This highlights a tripartite interaction for malaria control.
Area of Science:
- Immunology
- Entomology
- Microbiology
- Parasitology
Background:
- Peptidoglycan (PGN) recognition is crucial for insect immunity.
- In Drosophila, PGRP-LC mediates the Imd pathway for Gram-negative bacterial infections.
- The Anopheles gambiae immune system's response to diverse bacterial and parasitic infections requires detailed investigation.
Purpose of the Study:
- To investigate the role of the orthologous PGRPLC protein in Anopheles gambiae antibacterial defense.
- To elucidate the signaling pathways involved in mosquito immune responses to bacterial and Plasmodium infections.
- To explore the potential of mosquito-PGRPLC-mediated immunity in malaria transmission control strategies.
Main Methods:
- Analysis of PGRPLC function in Anopheles gambiae.
- Investigation of signaling pathways involving REL2 transcription factor.
- Assessment of mosquito resistance to Staphylococcus aureus and Escherichia coli.
- Studies on symbiotic and intestinal bacterial populations.
- Modulation of Plasmodium berghei and Plasmodium falciparum infections.
- Molecular analysis and structural modeling of PGRPLC isoforms, particularly PGRPLC3.
Main Results:
- Anopheles gambiae PGRPLC senses bacterial infections and activates the REL2 signaling pathway.
- PGRPLC signaling induces antimicrobial peptides against Staphylococcus aureus but may differ for Gram-negative bacteria.
- PGRPLC signaling controls symbiotic and intestinal bacteria, modulating Plasmodium infection intensity.
- PGRPLC3 isoform plays a key role in bacterial resistance and Plasmodium infection modulation.
- Structural modeling suggests PGRPLC3 has a dual role in PGN binding and immune complex formation.
Conclusions:
- Anopheles gambiae PGRPLC is a key sensor for bacterial infections, activating immune responses.
- PGRPLC-mediated immunity influences mosquito symbiotic bacteria and Plasmodium parasite loads.
- The interplay between mosquito microbiota, PGRPLC immunity, and Plasmodium infection presents a novel target for malaria control.
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