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Published on: August 8, 2022
Bi-allelic variants in HMGCR cause an autosomal-recessive progressive limb-girdle muscular dystrophy
Joel A Morales-Rosado1, Tanya L Schwab2, Sarah K Macklin-Mantia3
1Center for Individualized Medicine, Mayo Clinic, Rochester, MN, USA; Department of Quantitative Health Sciences, Division of Computational Biology, Mayo Clinic, Rochester, MN, USA.
Insights
Genetic variants in HMGCR cause limb-girdle muscular dystrophy, mimicking statin-induced myopathy. This finding reveals new insights into muscular dystrophy mechanisms and the mevalonate pathway.
Area of Science:
- Biochemistry
- Genetics
- Neurology
Background:
- Statins are crucial for cardiovascular disease prevention but can cause rare myopathy.
- HMG-CoA reductase (HMGCR) is the enzyme targeted by statins and is essential in the mevalonate pathway.
Purpose of the Study:
- To investigate the genetic basis of unexplained limb-girdle muscular dystrophy.
- To explore the role of HMGCR variants in muscular dystrophy pathogenesis.
Main Methods:
- Clinical and research exome sequencing to identify genetic variants.
- Molecular modeling to analyze variant effects on protein structure and function.
- Enzymatic activity and protein stability assays for identified HMGCR variants.
Main Results:
- Nine individuals from five families with limb-girdle muscular dystrophy and bi-allelic HMGCR variants were identified.
- Affected individuals presented with proximal muscle weakness, high creatine phosphokinase (CPK) levels, and progressive ambulation impairment.
- In vitro studies confirmed that identified HMGCR variants reduce enzyme activity and protein stability.
Conclusions:
- Bi-allelic amorphic variants in HMGCR cause a phenotype resembling non-genetic myopathies.
- This study expands understanding of muscular dystrophy mechanisms linked to mevalonate pathway dysregulation.
- The findings have implications for understanding autoimmune and statin-induced myopathies.
Abstract:
Statins are a mainstay intervention for cardiovascular disease prevention, yet their use can cause rare severe myopathy. HMG-CoA reductase, an essential enzyme in the mevalonate pathway, is the target of statins. We identified nine individuals from five unrelated families with unexplained limb-girdle like muscular dystrophy and bi-allelic variants in HMGCR via clinical and research exome sequencing. The clinical features resembled other genetic causes of muscular dystrophy with incidental high CPK levels (>1,000 U/L), proximal muscle weakness, variable age of onset, and progression leading to impaired ambulation. Muscle biopsies in most affected individuals showed non-specific dystrophic changes with non-diagnostic immunohistochemistry. Molecular modeling analyses revealed variants to be destabilizing and affecting protein oligomerization. Protein activity studies using three variants (p.Asp623Asn, p.Tyr792Cys, and p.Arg443Gln) identified in affected individuals confirmed decreased enzymatic activity and reduced protein stability. In summary, we showed that individuals with bi-allelic amorphic (i.e., null and/or hypomorphic) variants in HMGCR display phenotypes that resemble non-genetic causes of myopathy involving this reductase. This study expands our knowledge regarding the mechanisms leading to muscular dystrophy through dysregulation of the mevalonate pathway, autoimmune myopathy, and statin-induced myopathy.
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