New era in genetics of early-onset muscle disease: Breakthroughs and challenges

Gianina Ravenscroft1, Mark R Davis2, Phillipa Lamont3

  • 1Harry Perkins Institute of Medical Research and the Centre for Medical Research, University of Western Australia, Nedlands, Australia.

Insights

Early-onset muscle diseases, including congenital myopathies, dystrophies, and myasthenic syndromes, are increasingly diagnosed using next-generation sequencing. Despite advances, many patients lack molecular diagnoses, highlighting the need for further research and improved variant interpretation.

Area of Science:

  • Neurology
  • Genetics
  • Pediatrics

Background:

  • Early-onset muscle diseases encompass congenital myopathies, muscular dystrophies, and myasthenic syndromes, primarily presenting at birth with weakness and hypotonia.
  • These conditions exhibit significant genetic and phenotypic heterogeneity, complicating diagnosis and management.

Discussion:

  • Next-generation sequencing has revolutionized the diagnosis of early-onset muscle diseases, expanding genotype-phenotype correlations and enabling "diagnosis by sequencing."
  • Accurate molecular diagnosis increasingly relies on multidisciplinary collaboration between clinicians, geneticists, and pathologists.
  • The boundaries between congenital myopathies, dystrophies, and myasthenic syndromes are blurring due to new gene discoveries and insights into muscle development.

Key Insights:

  • A substantial percentage of patients remain undiagnosed, indicating the existence of undiscovered disease genes and mechanisms.
  • Population-wide next-generation sequencing for severe diseases is feasible, enabling preconception carrier screening and newborn screening for early intervention.
  • Global reference centers are crucial for curating gene variants, especially for large genes like NEB, RYR1, and TTN, to ensure accurate interpretation.

Outlook:

  • Functional validation of candidate variants is essential for precise genetic counseling and accurate interpretation of next-generation sequencing results.
  • Systematic updates to variant classification are needed to distinguish pathogenic mutations from rare polymorphisms.
  • Continued research into novel genes and disease mechanisms is vital for improving diagnostic rates and therapeutic strategies for early-onset muscle diseases.

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