Active Plants, Animals & Ecology Food & Agriculture

Linking Agricultural Pesticide Use to Malaria Control Failure using Genomic surveillance

In plain English

AI plain-English summary

In northern Ghana, cotton and soya bean farming is making the insecticides used to kill malaria-carrying mosquitoes stop working. Mosquitoes that survive agricultural pesticides are also surviving the neonicotinoid-based sprays applied inside homes. Until now, no study has directly linked a failed malaria control programme to cross-resistance from farming. This project will collect mosquitoes from 48 sites across four habitat types in Ghana’s Savannah zone, then run dose-response bioassays to establish a baseline susceptibility level for clothianidin, a key insecticide. A Genome-Wide Association Study will identify the genetic markers of resistance, and the team will develop a cheap amplicon sequencing panel to monitor those markers in the field. If it succeeds, the research will give malaria control programmes a practical tool: a genetic test that tells them, before they spray, whether local mosquitoes are already resistant. That would let public health officials switch to a different insecticide or adjust their strategy, rather than wasting money on sprays that no longer work. The work is applied, not fundamental science—it directly addresses a failure in an existing intervention that saves lives across sub-Saharan Africa.

View original technical description
Extensive agricultural pesticide use has resulted in mosquito resistance in malaria-endemic regions. While debate exists over agricultural pesticides compromising vector control, no study has directly linked vector control failure to cross-resistance from agricultural pesticides. In Ghana, evidence suggests that the effectiveness of neonicotinoid-based Indoor Residual Spraying (IRS) is compromised by extensive agricultural neonicotinoid use against cotton and soya bean pests. One possible explanation is that bioassays are not sensitive enough to reflect operational vector susceptibility, leading to undetected resistance and control failure. My research proposes an investigation into the extent of neonicotinoid resistance among mosquitoes in northern Ghana's Savannah zone, where intense farming potentially contributes to mosquito resistance. This study aims to establish diagnostic concentrations of clothianidin that reflect field conditions to differentiate resistance levels among mosquito populations in various agricultural settings. The project will involve collecting mosquitoes from 48 sentinel sites across four habitat types, followed by dose-response bioassays to set a baseline susceptibility level. Additionally, a Genome-Wide Association Study (GWAS) will identify genetic markers of resistance, complemented by the development of an amplicon sequencing panel to validate and cost effectively monitor these markers efficiently. This could lead to more targeted and effective public health interventions in endemic regions.

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Researchers

Sylvester Coleman (EPMC Awardee)

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Original classification

Wellcome Accelerator Awards

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