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Progressive Structural Defects in Canine Centronuclear Myopathy Indicate a Role for HACD1 in Maintaining Skeletal
Gemma L Walmsley1, Stéphane Blot2, Kerrie Venner3
1Comparative Neuromuscular Diseases Laboratory, Department of Clinical Sciences and Services, Royal Veterinary College, London, United Kingdom.
Insights
Mutations in HACD1 cause congenital myopathies, leading to skeletal muscle membrane abnormalities. This study reveals progressive defects in muscle membranes and T-tubules in HACD1-deficient dogs, linking them to centronuclear myopathies.
Area of Science:
- Muscle biology
- Genetics
- Cellular pathology
Background:
- Mutations in HACD1/PTPLA gene cause recessive congenital myopathies in humans and dogs.
- HACD1 is crucial for very long-chain fatty acid elongation and early myogenesis.
- The function of HACD1 in differentiated skeletal muscle was previously unknown.
Purpose of the Study:
- To investigate membrane abnormalities in HACD1-deficient canine muscle.
- To determine if these abnormalities are shared with other genetic causes of centronuclear myopathy (CNM).
- To establish HACD1-deficient dogs as a relevant model for CNM.
Main Methods:
- Histopathological analysis of skeletal muscle from HACD1-deficient dogs.
- Examination of cultured HACD1-deficient myotubes.
- Comparative analysis of membrane structures with known CNMs.
Main Results:
- Progressive changes in tubuloreticular and sarcolemmal membranes were observed.
- Mislocalization of triads and mitochondria occurred in affected muscle.
- Cultured myotubes showed similar membranous abnormalities, confirming HACD1's role.
Conclusions:
- HACD1 deficiency causes T-tubule dilatation and disorganization, linking it to CNM pathogenesis.
- Defective membrane trafficking and excitation-contraction coupling are implicated in HACD1-related CNM.
- HACD1-deficient dogs are a valuable model for studying CNM, suggesting further investigation in humans with related phenotypes.
Abstract:
Mutations in HACD1/PTPLA cause recessive congenital myopathies in humans and dogs. Hydroxyacyl-coA dehydratases are required for elongation of very long chain fatty acids, and HACD1 has a role in early myogenesis, but the functions of this striated muscle-specific enzyme in more differentiated skeletal muscle remain unknown. Canine HACD1 deficiency is histopathologically classified as a centronuclear myopathy (CNM). We investigated the hypothesis that muscle from HACD1-deficient dogs has membrane abnormalities in common with CNMs with different genetic causes. We found progressive changes in tubuloreticular and sarcolemmal membranes and mislocalized triads and mitochondria in skeletal muscle from animals deficient in HACD1. Furthermore, comparable membranous abnormalities in cultured HACD1-deficient myotubes provide additional evidence that these defects are a primary consequence of altered HACD1 expression. Our novel findings, including T-tubule dilatation and disorganization, associated with defects in this additional CNM-associated gene provide a definitive pathophysiologic link with these disorders, confirm that dogs deficient in HACD1 are relevant models, and strengthen the evidence for a unifying pathogenesis in CNMs via defective membrane trafficking and excitation-contraction coupling in muscle. These results build on previous work by determining further functional roles of HACD1 in muscle and provide new insight into the pathology and pathogenetic mechanisms of HACD1 CNM. Consequently, alterations in membrane properties associated with HACD1 mutations should be investigated in humans with related phenotypes.
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