Generic genetic differences between farmed and wild Atlantic salmon identified from a 7K SNP-chip
Article first published online: 17 FEB 2011
DOI: 10.1111/j.1755-0998.2010.02959.x
© 2011 Blackwell Publishing Ltd
Issue

Molecular Ecology Resources
Special Issue: SNP Development in Non-Model Organisms
Volume 11, Issue Supplement s1, pages 247–253, March 2011
Additional Information
How to Cite
KARLSSON, S., MOEN, T., LIEN, S., GLOVER, K. A. and HINDAR, K. (2011), Generic genetic differences between farmed and wild Atlantic salmon identified from a 7K SNP-chip. Molecular Ecology Resources, 11: 247–253. doi: 10.1111/j.1755-0998.2010.02959.x
Publication History
- Issue published online: 17 FEB 2011
- Article first published online: 17 FEB 2011
- Received 27 August 2010; revision received 18 November 2010; accepted 18 November 2010
Keywords:
- single nucleotide polymorphism;
- Atlantic salmon;
- Salmo salar;
- farmed salmon;
- domestication;
- introgression
Abstract
Genetic interactions between farmed and wild conspecifics are of special concern in fisheries where large numbers of domesticated individuals are released into the wild. In the Atlantic salmon (Salmo salar), selective breeding since the 1970’s has resulted in rapid genetic changes in commercially important traits, such as a doubling of the growth rate. Each year, farmed salmon escape from net pens, enter rivers, and interbreed with wild salmon. Field experiments demonstrate that genetic introgression may weaken the viability of recipient populations. However, due to the lack of diagnostic genetic markers, little is known about actual rates of gene flow from farmed to wild populations. Here we present a panel of 60 single nucleotide polymorphisms (SNPs) that collectively are diagnostic in identifying individual salmon as being farmed or wild, regardless of their populations of origin. These were sourced from a pool of 7000 SNPs comparing historical wild and farmed salmon populations, and were distributed on all but two of the 29 chromosomes. We suggest that the generic differences between farmed and wild salmon at these SNPs have arisen due to domestication. The identified panel of SNPs will permit quantification of gene flow from farmed to wild salmon populations, elucidating one of the most controversial potential impacts of aquaculture. With increasing global interest in aquaculture and increasing pressure on wild populations, results from our study have implications for a wide range of species.

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