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A canine PLP1 missense variant differentiates oligodendrocyte maturation in connatal and classical
Rodrigo Gutierrez-Quintana1, Paul Montague2, Angie Rupp1
1School of Biodiversity, One Health and Veterinary Medicine, College of Medical, Veterinary and Life Sciences, University of Glasgow, Glasgow G61 1QH, United Kingdom.
Abstract:
Pelizaeus-Merzbacher disease (PMD) is an X-linked hypomyelinating disorder caused by pathogenic variants in the proteolipid protein (PLP1) gene. We report a spontaneous canine dysmyelinating leukodystrophy in English Cocker Spaniel puppies. The most severely affected male pup displayed pronounced generalized tremors, progressive motor dysfunction, and markedly impaired growth. Histopathology at 5 wk of age revealed profound central nervous system (CNS) dysmyelination with no evidence of peripheral nerve involvement. Western blotting confirmed markedly reduced expression of CNS myelin-associated proteins. Ultrastructural analysis demonstrated a near absence of compact myelin, rare myelinated axons, and significant oligodendrocyte abnormalities, the majority of which had an immature cellular morphology. More mature, yet infrequent oligodendrocytes had distended rough endoplasmic reticula. Nucleotide sequence analysis identified a hemizygous c.92T>A missense variant in the PLP1 gene predicted to cause a leucine-to-glutamine substitution in the first transmembrane domain, p.(L31Q). This variant was absent in over 1,600 public canine genomes and was predicted to be deleterious by multiple bioinformatic tools. Heterozygous females exhibited variable, transient clinical signs. We compared this canine leukodystrophy with the previously reported shaking pup and found that it represents a more severe phenotype recapitulating key clinical, pathological, and molecular features of severe connatal PMD in humans, including extreme CNS dysmyelination and associated neurological deficits. Interestingly, this genetic variant seems to cause a defect at the oligodendrocyte progenitor stage limiting subsequent oligodendrocyte maturation and preventing myelination. The identification of this naturally occurring model provides a potential resource for investigating the mechanisms and therapeutic targets for specific PLP1 genetic variants.
Insights
A novel canine leukodystrophy in English Cocker Spaniels mimics severe Pelizaeus-Merzbacher disease (PMD) in humans. This spontaneous disorder, caused by a PLP1 gene variant, offers a valuable model for studying PMD mechanisms and therapies.
Area of Science:
- Neuroscience
- Genetics
- Veterinary Medicine
Background:
- Pelizaeus-Merzbacher disease (PMD) is a severe X-linked hypomyelinating disorder.
- Pathogenic variants in the proteolipid protein 1 (PLP1) gene are the primary cause of PMD.
- Understanding the genetic basis and pathological mechanisms of PMD is crucial for developing effective treatments.
Purpose of the Study:
- To characterize a spontaneous canine dysmyelinating leukodystrophy in English Cocker Spaniel puppies.
- To investigate the genetic cause and pathological features of this canine disorder.
- To evaluate its potential as an animal model for human PMD.
Main Methods:
- Clinical and histopathological examination of affected puppies.
- Western blotting to assess myelin-associated protein expression.
- Ultrastructural analysis of central nervous system tissue.
- Nucleotide sequencing of the PLP1 gene.
- Bioinformatic prediction of variant pathogenicity.
Main Results:
- Affected puppies exhibited severe tremors, motor dysfunction, and impaired growth.
- Histopathology revealed profound central nervous system dysmyelination and oligodendrocyte abnormalities.
- A novel hemizygous c.92T>A missense variant in PLP1, p.(L31Q), was identified.
- This variant is predicted to be deleterious and absent in public canine genomes.
- The canine phenotype closely resembles severe connatal PMD in humans.
Conclusions:
- The identified canine leukodystrophy is a valuable natural model for severe PLP1-related PMD.
- The PLP1 variant appears to disrupt oligodendrocyte maturation and myelination.
- This model can aid in investigating PMD pathogenesis and therapeutic strategies.
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