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Maintaining Aedes aegypti Mosquitoes Infected with Wolbachia
Published on: August 14, 2017
wFlu: characterization and evaluation of a native Wolbachia from the mosquito Aedes fluviatilis as a potential vector
Luke Anthony Baton1, Etiene Casagrande Pacidônio, Daniela da Silva Gonçalves
1Laboratório de Malária, Centro de Pesquisas René Rachou -FIOCRUZ, Belo Horizonte, Minas Gerais, Brazil.
Abstract:
There is currently considerable interest and practical progress in using the endosymbiotic bacteria Wolbachia as a vector control agent for human vector-borne diseases. Such vector control strategies may require the introduction of multiple, different Wolbachia strains into target vector populations, necessitating the identification and characterization of appropriate endosymbiont variants. Here, we report preliminary characterization of wFlu, a native Wolbachia from the neotropical mosquito Aedes fluviatilis, and evaluate its potential as a vector control agent by confirming its ability to cause cytoplasmic incompatibility, and measuring its effect on three parameters determining host fitness (survival, fecundity and fertility), as well as vector competence (susceptibility) for pathogen infection. Using an aposymbiotic strain of Ae. fluviatilis cured of its native Wolbachia by antibiotic treatment, we show that in its natural host wFlu causes incomplete, but high levels of, unidirectional cytoplasmic incompatibility, has high rates of maternal transmission, and no detectable fitness costs, indicating a high capacity to rapidly spread through host populations. However, wFlu does not inhibit, and even enhances, oocyst infection with the avian malaria parasite Plasmodium gallinaceum. The stage- and sex-specific density of wFlu was relatively low, and with limited tissue distribution, consistent with the lack of virulence and pathogen interference/symbiont-mediated protection observed. Unexpectedly, the density of wFlu was also shown to be specifically-reduced in the ovaries after bloodfeeding Ae. fluviatilis. Overall, our observations indicate that the Wolbachia strain wFlu has the potential to be used as a vector control agent, and suggests that appreciable mutualistic coevolution has occurred between this endosymbiont and its natural host. Future work will be needed to determine whether wFlu has virulent host effects and/or exhibits pathogen interference when artificially-transfected to the novel mosquito hosts that are the vectors of human pathogens.
Insights
The Wolbachia strain wFlu from Aedes fluviatilis mosquitoes shows potential for vector control. It spreads rapidly in mosquito populations without harming host fitness but does not inhibit malaria parasite infection.
Area of Science:
- Microbiology
- Vector-borne disease control
- Insect-microbe interactions
Background:
- Wolbachia bacteria are promising for controlling human disease vectors.
- Introducing multiple Wolbachia strains requires identifying suitable variants.
- Aedes fluviatilis mosquitoes are vectors of significant human pathogens.
Purpose of the Study:
- To characterize the native Wolbachia strain wFlu from Aedes fluviatilis.
- To evaluate wFlu's potential as a vector control agent.
- To assess wFlu's impact on mosquito fitness and pathogen susceptibility.
Main Methods:
- Antibiotic treatment to create aposymbiotic Ae. fluviatilis.
- Assessing cytoplasmic incompatibility, maternal transmission, and fitness parameters (survival, fecundity, fertility).
- Measuring vector competence for Plasmodium gallinaceum and quantifying wFlu density in host tissues.
Main Results:
- wFlu induces high, unidirectional cytoplasmic incompatibility and has high maternal transmission rates.
- No significant fitness costs were observed in Ae. fluviatilis.
- wFlu did not inhibit, and enhanced, Plasmodium gallinaceum oocyst infection; density was low and reduced in ovaries post-bloodfeeding.
Conclusions:
- wFlu demonstrates potential for vector control due to its spread capacity and lack of fitness cost.
- The wFlu-Ae. fluviatilis interaction suggests mutualistic coevolution.
- Further research is needed to assess wFlu's effects in novel mosquito hosts and its pathogen interference capabilities.

