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ACADM Frameshift Variant in Cavalier King Charles Spaniels with Medium-Chain Acyl-CoA Dehydrogenase Deficiency
Matthias Christen1, Jos Bongers2, Déborah Mathis3
1Vetsuisse Faculty, Institute of Genetics, University of Bern, 3001 Bern, Switzerland.
Insights
A genetic defect in medium-chain acyl-CoA dehydrogenase (MCAD) causes neurological issues in Cavalier King Charles Spaniels. A specific ACADM gene variant is identified as the likely cause, prompting recommendations for genetic testing in the breed.
Area of Science:
- Canine genetics
- Metabolic disorders
- Neurological diseases in animals
Background:
- Medium-chain acyl-CoA dehydrogenase (MCAD) deficiency is a rare inherited metabolic disorder.
- Clinical signs in affected dogs can include lethargy and seizures.
- Genetic basis of MCAD deficiency in Cavalier King Charles Spaniels (CKCS) was previously unknown.
Purpose of the Study:
- Investigate clinical signs, metabolic changes, and genetic defect in a CKCS with suspected MCAD deficiency.
- Identify the causative genetic variant in the ACADM gene.
- Determine the prevalence of the identified variant in the CKCS population.
Main Methods:
- Clinical examination and biochemical analyses (blood and urine organic acids, acylcarnitine profile).
- Whole-genome sequencing of the affected dog and comparison with control genomes.
- Targeted genotyping of the ACADM variant in a larger CKCS cohort.
Main Results:
- Diagnosis of MCAD deficiency supported by elevated medium-chain fatty acids and acylcarnitine C8/C12 ratio.
- A novel homozygous frameshift variant (XM_038541645.1:c.444_445delinsGTTAATTCTCAATATTGTCTAAGAATTATG) in the ACADM gene was identified.
- The variant allele frequency was 23.5% in the CKCS population, with 12 additional homozygous mutant dogs identified.
Conclusions:
- The identified ACADM frameshift variant is proposed as the causative mutation for MCAD deficiency in CKCS.
- The genetic defect likely contributes to the neurological phenotype observed in affected dogs.
- Genetic testing and selective breeding are recommended to reduce the incidence of MCAD deficiency in the CKCS breed.
Abstract:
A 3-year-old, male neutered Cavalier King Charles Spaniel (CKCS) presented with complex focal seizures and prolonged lethargy. The aim of the study was to investigate the clinical signs, metabolic changes and underlying genetic defect. Blood and urine organic acid analysis revealed increased medium-chain fatty acids and together with the clinical findings suggested a diagnosis of medium-chain acyl-CoA dehydrogenase (MCAD) deficiency. We sequenced the genome of the affected dog and compared the data to 923 control genomes of different dog breeds. The ACADM gene encoding MCAD was considered the top functional candidate gene. The genetic analysis revealed a single homozygous private protein-changing variant in ACADM in the affected dog. This variant, XM_038541645.1:c.444_445delinsGTTAATTCTCAATATTGTCTAAGAATTATG, introduces a premature stop codon and is predicted to result in truncation of ~63% of the wild type MCAD open reading frame, XP_038397573.1:p.(Thr150Ilefs*6). Targeted genotyping of the variant in 162 additional CKCS revealed a variant allele frequency of 23.5% and twelve additional homozygous mutant dogs. The acylcarnitine C8/C12 ratio was elevated ~43.3 fold in homozygous mutant dogs as compared to homozygous wild type dogs. Based on available clinical and biochemical data together with current knowledge in humans, we propose the ACADM frameshift variant as causative variant for the MCAD deficiency with likely contribution to the neurological phenotype in the index case. Testing the CKCS breeding population for the identified ACADM variant is recommended to prevent the unintentional breeding of dogs with MCAD deficiency. Further prospective studies are warranted to assess the clinical consequences of this enzyme defect.
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