Merle phenotypes in dogs - SILV SINE insertions from Mc to Mh

Mary Langevin1, Helena Synkova2, Tereza Jancuskova3

  • 1Cat´s Cradle Catahoulas, Oro Medonte, Ontario, Canada.

Plos One
|September 21, 2018
PubMed

Insights

New research identifies a wider range of Merle alleles in dogs, improving coat pattern and health risk assessments. This advanced genetic testing helps breeders select mating partners for healthier offspring.

Area of Science:

  • Canine genetics
  • Coat color genetics
  • Animal breeding

Background:

  • The Merle (M) locus in dogs, associated with coat patterns and potential health issues, was previously mapped to the SILV gene.
  • Existing testing identified limited Merle alleles (Mc, M), leading to discrepancies between genotype and phenotype, and unexpected health outcomes in offspring.
  • A need exists for more precise Merle allele identification to guide responsible breeding practices.

Purpose of the Study:

  • To identify and characterize a broader spectrum of Merle alleles in dogs.
  • To correlate specific Merle alleles with distinct coat color phenotypes and varying risks of hearing and vision impairments.
  • To investigate the prevalence and implications of Merle allele mosaicism in canine populations.

Main Methods:

  • Systematic observation of Merle phenotypes in 181 dogs from various Merle breeds.
  • Advanced molecular techniques for high-precision discrimination of individual Merle alleles.
  • Analysis of Merle allele inheritance patterns, including potential germline transmission via sperm cells.

Main Results:

  • A significantly expanded portfolio of Merle alleles (Mc, Mc+, Ma, Ma+, M, Mh) was identified.
  • These alleles are associated with unique coat color variations and stratified risks for health impairments.
  • Merle allele mosaicism was found in 16.6% of the study cohort, with minor alleles also being heritable.
  • Sperm cells were identified as a potential source of germline Merle allelic variants.

Conclusions:

  • Refined Merle allele testing offers greater precision in identifying canine coat patterns and associated health risks.
  • Understanding Merle allele diversity and mosaicism is crucial for preventing adverse health consequences in offspring.
  • Implementation of advanced Merle allele testing is strongly advocated for all Merle dog breeds to support informed breeding decisions and promote healthier canine populations.

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