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Cazaux, E.

Publications and source records attributed to Cazaux, E..

2 recordsLinked to original sources

Pest evolution amplifies projected crop losses under climate change

Climate change influences the physiology and population dynamics of ectothermic pests, with major repercussions for global crop production. Yet, how evolution modulates these outcomes remains unclear. We exposed the widespread beetle pest Callosobruchus maculatus to 10 years of experimental evolution at different temperatures and quantified thermal responses of life-history traits. Hot- and cold-adapted populations evolved differences in thermal sensitivity, but these were modest relative to evolved differences in trait averages. By leveraging high-resolution temperature time-series we show that the observed evolution translates into cold-adapted genotypes having highest fitness in cold climates and hot-adapted genotypes in warm climates. Hot-adapted beetles maximize fitness in warm climates by increased larval growth, resulting in larger body sizes and higher fecundity. This evolutionary strategy compounds projected crop losses under warming by increasing both intrinsic population growth and per-capita host consumption rates. By year 2100 under intermediate-to-high warming (SSP3-7.0), pest evolution is projected to increase global crop damage potential by +113% from present--twice that expected from warming alone (not accounting for evolution). In major crop-producing areas, where temperatures and the beetles host consumption rates are already high, warming increases average crop damage potential by +29%, but evolution amplifies this three-fold to +87%. Evolution also expands C. maculatus projected colonizable range and in some regions even flips forecasted crop damage reductions into increases. These results identify climate-driven evolution of pest life-histories as an amplifier of agricultural losses and suggest that current projections may significantly understate the threat warming poses to future food security.

ecology↗

Life-history adaptation under climate warming magnifies the agricultural footprint of a cosmopolitan insect pest

Climate change is affecting population growth rates of ectothermic pests with potentially dire consequences for agriculture, but how rapid genetic adaptation impacts these dynamics remains unclear. To address this challenge, we predicted how climate change adaptation in life-history traits of insect pests may affect future agricultural yields by unifying thermodynamics based on first principles with classic life-history theory. Our model predicts that warming temperatures favour changes in resource allocation decisions coupled with increased larval host consumption, resulting in a predicted double-blow on agricultural yields under future climate change. We find support for these predictions by studying thermal adaptation in life-history traits and underlying gene expression in the wide-spread insect pest, Callosobruchus maculatus, with five years of life-history evolution under experimental warming causing an almost two-fold increase in its predicted agricultural footprint. These results emphasize the need for integrating a mechanistic understanding of life-history evolution into forecasts of pest impact.

ecology↗