6533b83afe1ef96bd12a7b55
RESEARCH PRODUCT
Evolution of sexually dimorphic pheromone profiles coincides with increased number of male‐specific chemosensory organs in Drosophila prolongata
Jean-pierre FarineYige LuoJean-françois FerveurArtyom KoppYunwei ZhangSantiago R. Ramírezsubject
0106 biological sciencesBiodiversité et Ecologiehydrocarbure cuticulaire[SDV]Life Sciences [q-bio]polymorphismeBiologyBristle010603 evolutionary biology01 natural sciencesIntraspecific competitioncuticular hydrocarbons;pheromones;sex-limited polymorphism;sexual dimorphismBiodiversity and Ecology03 medical and health sciencesPolymorphism (computer science)lcsh:QH540-549.5sex-limited polymorphismphéromoneEcology Evolution Behavior and SystematicsCoevolution030304 developmental biologyNature and Landscape ConservationOriginal Research0303 health sciencesEvolutionary BiologyEcologysex‐limited polymorphismcuticular hydrocarbonsdimorphisme sexuelSexual dimorphismEvolutionary biologySexual selectionSex pheromonesexual dimorphismPheromonelcsh:Ecologypheromonesdescription
Abstract Binary communication systems that involve sex‐specific signaling and sex‐specific signal perception play a key role in sexual selection and in the evolution of sexually dimorphic traits. The driving forces and genetic changes underlying such traits can be investigated in systems where sex‐specific signaling and perception have emerged recently and show evidence of potential coevolution. A promising model is found in Drosophila prolongata, which exhibits a species‐specific increase in the number of male chemosensory bristles. We show that this transition coincides with recent evolutionary changes in cuticular hydrocarbon (CHC) profiles. Long‐chain CHCs that are sexually monomorphic in the closest relatives of D. prolongata (D. rhopaloa, D. carrolli, D. kurseongensis, and D. fuyamai) are strongly male‐biased in this species. We also identify an intraspecific female‐limited polymorphism, where some females have male‐like CHC profiles. Both the origin of sexually dimorphic CHC profiles and the female‐limited polymorphism in D. prolongata involve changes in the relative amounts of three mono‐alkene homologs, 9‐tricosene, 9‐pentacosene, and 9‐heptacosene, all of which share a common biosynthetic origin and point to a potentially simple genetic change underlying these traits. Our results suggest that pheromone synthesis may have coevolved with chemosensory perception and open the way for reconstructing the origin of sexual dimorphism in this communication system.
year | journal | country | edition | language |
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2019-12-01 | Ecology and Evolution |