The genetic basis of olfaction is a topic of broad significance from fundamental and applied perspectives. The sense of smell is vital for most animals in finding food, identifying mates and avoiding predators. This study gave new insights on how moth pest species may evolve new pheromone preferences, which can cause race formation and speciation. Despite the importance of pheromone communication in reproductive isolation, its genetic basis is still unknown. By identifying the gene(s) responsible for variation in male response to female pheromone, in an important moth pest species, we give a first example on how response variation can cause strain differentiation.
The European Corn Borer (ECB) pheromone strains are a unique example where sex pheromone differentiation precedes ecological differentiation. We investigated male responses in the two pheromone races of the ECB. Females of the E strain produce E11- and Z11-14:OAc in a 99:1 ratio, and females of the Z strain emit a 3:97 ratio of the same compounds. Males of each strain are attracted to the ratios emitted by the corresponding females. However, the gene(s) underlying the olfactory and behavioral shift in male response (resp) is still unknown.
We aimed to characterize the genetic change underlying male response in this species, using a multidisciplinary approach, including classical chemical ecology, molecular biology, genetics and physiology. Thanks to this approach our work is of broad interest and use within the scientific society. Elucidating the genes underlying male olfactory responses in moths is also important from an applied perspective, because many moth species are important agricultural pests, and moth sex pheromones are an important tool in integrated pest management, used for monitoring, mating disruption and mass trapping. Identifying the gene(s) causing variation in male response can help monitoring populations for possible variations, and help to develop new pest control methods. Ultimately these methods target specifically one species and respect the environment.
Objectives
1. Genetically isolate and characterize the genes that modulate the male pheromone preference.
2. Localize them in the olfactory tissues.
3. Functionally characterize them.