Active Infection & Immunity

Countering the evolutionary threat to malaria vector control in Africa - Major changes to national malaria elimination strategy in the Senegambia region as a model system for investigating strategies to block adaptation in Anopheles mosquito populations

In plain English

AI plain-English summary

Malaria-carrying mosquitoes in West Africa are about to encounter a new kind of insecticide-treated bednet, and researchers are watching closely to see how the insects evolve in response. The problem is straightforward: standard bednets coated with pyrethroid insecticides have driven the rapid evolution of resistant mosquitoes across Africa. New dual-active-ingredient nets—which combine pyrethroid with a proinsecticide called chlorfenapyr—offer a potential solution. Because the same molecular changes that make mosquitoes resistant to pyrethroids also make them more vulnerable to chlorfenapyr, the combination could create an "evolutionary trap" that slows or blocks resistance from emerging. But no one knows how mosquito populations will actually respond when these nets are deployed at scale. This project exploits the first mass distribution of dual AI nets across the Senegambian region to study that evolutionary response in real time. The researchers will combine field surveillance with directed evolution experiments in the lab, then build models to forecast which insecticide combinations pose the lowest evolutionary risk. If successful, the work will provide a blueprint for designing vector control strategies that deliberately exploit evolutionary vulnerabilities—keeping bednets effective for years longer than current approaches allow.

View original technical description
Vector control has significantly reduced the burden of malaria in Africa. However, reliance on bednets impregnated with pyrethroid insecticides has caused rapid evolution of pyrethroid resistance in Anopheles mosquitoes. To combat this threat, dual active ingredient insecticide-treated nets (dual AI ITNs) have been developed and proven effective against pyrethroid-resistant mosquitoes. Furthermore, dual AI ITNs combining a pyrethroid with the proinsecticide chlorfenapyr are promising for resistance management, because molecular mechanisms which cause pyrethroid resistance also activate and increase susceptibility to chlorfenapyr. This potential for antagonistic pleiotropy could create an evolutionary trap, delaying the evolution of resistance. However, little is known about how Anopheles mosquitoes will evolve in response to dual AI ITNs. We will exploit the first mass distribution of dual AI ITNs across the Senegambian region to study the evolutionary response of Anopheles mosquito populations to combined use of pyrethroid and chlorfenapyr insecticides. To complement this, we will use directed evolution experiments to investigate and validate the selective pressures generated by insecticide combinations. Finally, we will develop models to forecast the evolutionary risk of different insecticide combinations and intervention strategies. These advances will accelerate the design of future vector control interventions that exploit evolutionary vulnerabilities to ensure long term efficacy.

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Researchers

Chris Clarkson (EPMC Awardee)

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Original classification

Discovery Award

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