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Updated: Jun 21, 2026

Assessing Differences in Sperm Competitive Ability in Drosophila
Published on: August 22, 2013
Coevolution of male and female reproductive structures in Drosophila
Dominique Joly1, Michele Schiffer
1Laboratoire Evolution, Génomes et Spéciation, CNRS, UPR 9034, 91 198 Gif-sur-Yvette Cedex, France. Dominique.Joly@legs.cnrs-gif.fr
Abstract:
The morphology of male genitalia whilst stable within species, exhibits huge interspecific variation. This variation is likely to be as a result of sexual selection due to the direct involvement of these reproductive structures in mating and sperm transfer. In contrast, internal soft tissue components of the genitalia are generally poorly investigated as they are not directly involved in physical and mechanical adequacy during sperm transfer. However, these soft tissue structures may also drive differential male-female interactions, particularly in internally fertilising organisms where females have the ability to store sperm and bias male reproductive success. In this paper we use the drosophila model to investigate the role of male and female reproductive elements in sexual selection. Our meta-analysis supplemented with additional new data clearly shows that within species, sperm length versus testis length, and sperm length versus seminal receptacle length, are highly correlated. Thus, independent of the phylogenetic relationship among species, gamete evolution is likely to result in sexual selection interactions that drive the evolution of internal reproductive components in both sexes. Our results and discussion of the literature highlight the importance of considering internal soft structures that may influence fertilisation, when investigating selective forces acting on the evolution of reproductive traits.
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