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Divergent allocation of sperm and the seminal proteome along a competition gradient inDrosophila melanogaster
Author(s) -
Ben R. Hopkins,
Irem Sepil,
MarieLaëtitia Thézénas,
James F. Craig,
Thomas D. Miller,
Philip D. Charles,
Román Fischer,
Benedikt M. Kessler,
Amanda Bretman,
Tommaso Pizzari,
Stuart Wigby
Publication year - 2019
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1906149116
Subject(s) - sperm competition , sperm , biology , competition (biology) , sexual selection , mating , ecology , evolutionary biology , genetics
Sperm competition favors large, costly ejaculates, and theory predicts the evolution of allocation strategies that enable males to plastically tailor ejaculate expenditure to sperm competition threat. While greater sperm transfer in response to a perceived increase in the risk of sperm competition is well-supported, we have a poor understanding of whether males ( i ) respond to changes in perceived intensity of sperm competition, ( ii ) use the same allocation rules for sperm and seminal fluid, and ( iii ) experience changes in current and future reproductive performance as a result of ejaculate compositional changes. Combining quantitative proteomics with fluorescent sperm labeling, we show that Drosophila melanogaster males exercise independent control over the transfer of sperm and seminal fluid proteins (SFPs) under different levels of male-male competition. While sperm transfer peaks at low competition, consistent with some theoretical predictions based on sperm competition intensity, the abundance of transferred SFPs generally increases at high competition levels. However, we find that clusters of SFPs vary in the directionality and sensitivity of their response to competition, promoting compositional change in seminal fluid. By tracking the degree of decline in male mating probability and offspring production across successive matings, we provide evidence that ejaculate compositional change represents an adaptive response to current sperm competition, but one that comes at a cost to future mating performance. Our work reveals a previously unknown divergence in ejaculate component allocation rules, exposes downstream costs of elevated ejaculate investment, and ultimately suggests a central role for ejaculate compositional plasticity in sexual selection.

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