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.

Plos Pathogens
|August 8, 2009
PubMed

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.