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The contribution of mutation to variation in temperature-dependent sprint speed in zebrafish, Danio rerio

View ORCID ProfileChristina L. Miller, View ORCID ProfileDerek Sun, View ORCID ProfileLauren H. Thornton, View ORCID ProfileKatrina McGuigan
doi: https://doi.org/10.1101/2022.09.28.509995
Christina L. Miller
1School of Biological Sciences, The University of Queensland, Brisbane 4072, Australia
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  • For correspondence: christina_miller@hotmail.co.uk
Derek Sun
1School of Biological Sciences, The University of Queensland, Brisbane 4072, Australia
2frc environmental, PO Box 2363, Wellington Point Qld 4160, Australia
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Lauren H. Thornton
1School of Biological Sciences, The University of Queensland, Brisbane 4072, Australia
3School of Science, Technology, and Engineering, University of the Sunshine Coast, Sippy Downs, Qld 4556, Australia
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Katrina McGuigan
1School of Biological Sciences, The University of Queensland, Brisbane 4072, Australia
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Abstract

The contribution of new mutations to phenotypic variation, and the consequences of this variation for individual fitness, are fundamental concepts for understanding genetic variation and adaptation. Here, we investigated how mutation influenced variation in a complex trait in zebrafish, Danio rerio. Typical of many ecologically relevant traits in ectotherms, swimming speed in fish is temperature-dependent, with evidence of adaptive evolution of thermal performance. We chemically induced novel germline point mutations in males, and measured sprint speed in their sons at six temperatures (between 16°C and 34°C). Mutational effects on speed were strongly positively correlated among temperatures, resulting in statistical support for only a single axis of mutational variation, reflecting temperature-independent variation in speed (faster-slower mode). While these results suggest pleiotropic effects on speed across different temperatures, when mutation have consistent directional effects on each trait, spurious correlations arise via linkage, or heterogeneity in mutation number. However, mutation did not change mean speed, indicating no directional bias in mutational effects. The results contribute to emerging evidence that mutations may predominantly have synergistic cross-environment effects, in contrast to conditionally neutral or antagonistic effects which underpin thermal adaptation. However, aspects of experimental design might limit resolution of mutations with non-synergistic effects.

Competing Interest Statement

The authors have declared no competing interest.

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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Posted September 30, 2022.
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The contribution of mutation to variation in temperature-dependent sprint speed in zebrafish, Danio rerio
Christina L. Miller, Derek Sun, Lauren H. Thornton, Katrina McGuigan
bioRxiv 2022.09.28.509995; doi: https://doi.org/10.1101/2022.09.28.509995
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The contribution of mutation to variation in temperature-dependent sprint speed in zebrafish, Danio rerio
Christina L. Miller, Derek Sun, Lauren H. Thornton, Katrina McGuigan
bioRxiv 2022.09.28.509995; doi: https://doi.org/10.1101/2022.09.28.509995

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