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May 8, 2026Clinical Genetics3 citationsOpen Access

The Molecular Diagnosis of Myopathies: Integrating Genomic, Proteomic, and Pathological Insights Toward Precision Medicine

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LALudmila AlemDPDenise de Abreu PereiraKCKatia Carneiro

Key Result

Integrating next-generation molecular tools with conventional methodologies improves the diagnostic yield and interpretation of variants in genetic myopathies, advancing precision medicine.

Key Points

  • This review aims to highlight the challenges and advancements in diagnosing genetic myopathies using integrated molecular tools.
  • Discussed traditional diagnostic methods including clinical evaluation and muscle histopathology.
  • Examined the role of next-generation sequencing and optical genome mapping in enhancing diagnostic accuracy.
  • Outlined the integration of proteomic and transcriptomic analyses for biomarker discovery.
  • Next-generation sequencing and optical genome mapping increased diagnostic yield for structural variants.
  • Integration of omics approaches improved interpretation of genetic variants' clinical significance.
  • Facilitated identification of biomarkers related to disease severity and therapeutic response.

Structured PICO

Do integrative molecular approaches improve the diagnostic yield and precision medicine strategies for genetic myopathies compared to traditional methods?

P
Population
Patients with genetic myopathies (neuromuscular disorders)
I
Intervention
Integrative molecular approaches including long-read sequencing, optical genome mapping, proteomic, and transcriptomic analyses
C
Comparator
Traditional methods (clinical evaluation, creatine kinase measurement, electromyography, and muscle histopathology)
O
Outcome
Diagnostic yield and assertive diagnosis

Integrating next-generation molecular tools with conventional methodologies enhances the diagnostic yield and supports precision medicine in genetic myopathies.

Abstract

Genetic myopathies encompass a heterogeneous spectrum of neuromuscular disorders whose diagnosis remains challenging despite major technological advances. Traditional methods such as clinical evaluation, creatine kinase measurement, electromyography, and muscle histopathology remain valuable tools for recognizing disease patterns and, when clinically indicated, for complementing and guiding molecular investigations. However, genetically complex or atypical cases still lack an appropriate approach for assertive diagnosis. Aiming to shed light on emerging integrative molecular approaches, this review will discuss the evolving diagnostic landscape of myopathies, highlighting the integration of next-generation molecular tools with conventional methodologies for assertive diagnosis. Long-read sequencing and optical genome mapping have markedly increased diagnostic yield by enabling comprehensive detection of structural variants and complex genomic rearrangements in different myopathies. Complementary proteomic and transcriptomic analyses provide functional insight into how genetic variants alter protein expression and cellular pathways, supporting biomarker discovery and therapeutic development. Together, these omics approaches bridge the gap between genetic alterations and their functional and clinical manifestations in myopathies. They improve the interpretation of variants of uncertain significance, facilitate the identification of biomarkers linked with disease severity or therapeutic response, and support the development of personalized therapeutic strategies, advancing precision medicine in neuromuscular disorders.

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Cite This Study

Alem et al. (2026) conducted a review in Genetic myopathies. Integrative molecular approaches (genomic, proteomic, transcriptomic) vs. Traditional methods was evaluated. Integrating next-generation molecular tools with conventional methodologies improves the diagnostic yield and interpretation of variants in genetic myopathies, advancing precision medicine.

synapsesocial.com/papers/69fd7f65bfa21ec5bbf07dfbhttps://doi.org/10.1111/cge.70180
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