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Identification of horse chestnut coat color genotype using SNaPshot
Fernando Rendo1, Mikel Iriondo, Carmen Manzano
1Department of Genetics, Physical Anthropology and Animal Physiology, Faculty of Science and Technology, University of the Basque Country, E-48940 Bilbao, Spain.
Insights
A new DNA screening method accurately detects chestnut coat color alleles in Iberian horses. This tool helps breeders manage coat color genetics, particularly in Cantabrian Coast pony breeds, to maintain desired phenotypes.
Area of Science:
- Animal Genetics
- Equine Coat Color Genetics
- Molecular Diagnostics
Background:
- Cantabrian Coast horse breeds predominantly display black or bay coats.
- Chestnut coat color is determined by recessive alleles (e, e(a)) of the melanocortin-1 receptor gene.
- Identifying chestnut alleles is crucial for maintaining breed purity in certain Iberian horse populations.
Purpose of the Study:
- To develop a rapid and reliable method for detecting chestnut coat color alleles in horses.
- To assess the frequency of chestnut alleles in native Iberian horse breeds.
- To provide breeders with a tool for managing coat color genetics.
Main Methods:
- Development of a screening device using Single Nucleotide Polymorphism (SNP) detection.
- Application of the SNaPshot methodology for genotyping.
- Analysis of four native Cantabrian Coast breeds: Pottoka, Jaca Navarra, Euskal Herriko Mendiko Zaldia, and Burguete.
Main Results:
- A fast, cost-effective SNP-based screening method was successfully developed.
- Chestnut allele frequencies varied significantly between pony (0.156-0.322) and heavy breeds (0.604-0.716).
- The method proved reliable for identifying chestnut alleles in the studied breeds.
Conclusions:
- The developed DNA methodology is effective for identifying chestnut alleles in horses.
- This tool aids breeders in reducing the occurrence of chestnut foals in Cantabrian Coast pony breeds.
- The study highlights the importance of genetic screening for phenotype management in horse breeding.
Background:
The Cantabrian Coast horse breeds of the Iberian Peninsula have mainly black or bay colored coats, but alleles responsible for a chestnut coat color run in these breeds and occasionally, chestnut horses are born. Chestnut coat color is caused by two recessive alleles, e and e(a), of the melanocortin-1 receptor gene, whereas the presence of the dominant, wild-type E allele produces black or bay coat horses. Because black or bay colored coats are considered as the purebred phenotype for most of the breeds from this region, it is important to have a fast and reliable method to detect alleles causing chestnut coat color in horses.
Findings:
In order to assess coat color genotype in reproductive animals with a view to avoiding those bearing chestnut alleles, we have developed a reliable, fast and cost-effective screening device which involves Single Nucleotide Polymorphism (SNP) detection based on SNaPshot((R) )(Applied Biosystems) methodology. We have applied this method to four native breeds from the Iberian Cantabrian Coast: Pottoka and Jaca Navarra pony breeds, in which only black or bay coats are acceptable, and Euskal Herriko Mendiko Zaldia and Burguete heavy breeds, in which chestnut coats are acceptable. The frequency of the chestnut alleles ranged between f = 0.156-0.322 in pony breeds and between f = 0.604-0.716 in heavy breeds.
Conclusions:
This study demonstrates the usefulness of the DNA methodology reported herein as a device for identifying chestnut alleles; the methodology constitutes a valuable tool for breeders to decrease the incidence of chestnut animals among Cantabrian Coast pony breeds.
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