bioRxiv · 10.1101/2024.10.28.620721
Pervasive fitness trade-offs revealed by rapid adaption in large experimental populations of Drosophila melanogaster
Abstract
Trade-offs are an inherent feature of organismal biology that are expected play a fundamental role in the evolution of natural populations. Efforts to quantify trade-offs are largely confined to phenotypic measurements and the identification of negative genetic-correlations among fitness-relevant traits. Here, we use time-series genomic data collected during experimental evolution in large, genetically diverse populations of Drosophila melanogaster to directly measure the manifestation of trade-offs in response to fluctuating selection on ecological timescales. Specifically, we first conducted a lab-based selection experiment to quantify a genome-wide signal of antagonistic pleiotropy elicited in response to shifting population densities and associated with reproduction and stress tolerance selection. In doing so, we identified a putative role of two cosmopolitan inversions in these trade-offs. We then conducted an independent experiment to show that a simple manipulation of increasing population density under controlled lab-based conditions identified loci that are relevant to selection during population expansion and collapse in a complex, semi-natural setting. In concert, our results reveal how adaptation in complex, natural environments can be coarse-grained in such a manner to drive repeatable and predictable patterns of genomic variation, and further add credence to models positing a role of generic fitness trade-offs in the maintenance of variation in natural populations.
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Bitter, M. C., Greenblum, S., Rajpurohit, S., Bergland, A. O., Hemker, J. A., Betancourt, N. J., Tilk, S., Berardi, S., Oken, H., Schmidt, P., Petrov, D.. 2024-10-29. Pervasive fitness trade-offs revealed by rapid adaption in large experimental populations of Drosophila melanogaster. https://doi.org/10.1101/2024.10.28.620721
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