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Updated: Dec 11, 2025

Characterizing Exon Skipping Efficiency in DMD Patient Samples in Clinical Trials of Antisense Oligonucleotides
Published on: May 7, 2020
The position of nonsense mutations can predict the phenotype severity: A survey on the DMD gene
Annalaura Torella1,2, Mariateresa Zanobio1, Roberta Zeuli1
1Dipartimento di Medicina di Precisione, Università degli Studi della Campania "Luigi Vanvitelli", Napoli, Italy.
Abstract:
A nonsense mutation adds a premature stop signal that hinders any further translation of a protein-coding gene, usually resulting in a null allele. To investigate the possible exceptions, we used the DMD gene as an ideal model. First, because dystrophin absence causes Duchenne muscular dystrophy (DMD), while its reduction causes Becker muscular dystrophy (BMD). Second, the DMD gene is X-linked and there is no second allele that can interfere in males. Third, databases are accumulating reports on many mutations and phenotypic data. Finally, because DMD mutations may have important therapeutic implications. For our study, we analyzed large databases (LOVD, HGMD and ClinVar) and literature and revised critically all data, together with data from our internal patients. We totally collected 2593 patients. Positioning these mutations along the dystrophin transcript, we observed a nonrandom distribution of BMD-associated mutations within selected exons and concluded that the position can be predictive of the phenotype. Nonsense mutations always cause DMD when occurring at any point in fifty-one exons. In the remaining exons, we found milder BMD cases due to early 5' nonsense mutations, if reinitiation can occur, or due to late 3' nonsense when the shortened product retains functionality. In the central part of the gene, all mutations in some in-frame exons, such as in exons 25, 31, 37 and 38 cause BMD, while mutations in exons 30, 32, 34 and 36 cause DMD. This may have important implication in predicting the natural history and the efficacy of therapeutic use of drug-stimulated translational readthrough of premature termination codons, also considering the action of internal natural rescuers. More in general, our survey confirm that a nonsense mutation should be not necessarily classified as a null allele and this should be considered in genetic counselling.
Insights
Nonsense mutations in the DMD gene do not always cause Duchenne muscular dystrophy (DMD). Mutation location can predict whether it leads to DMD or milder Becker muscular dystrophy (BMD), impacting genetic counseling.
Area of Science:
- Genetics
- Molecular Biology
- Neuromuscular Disorders
Background:
- Nonsense mutations typically create premature stop codons, leading to non-functional proteins and null alleles.
- The Duchenne muscular dystrophy (DMD) gene provides a model due to its X-linked inheritance and the distinct phenotypes of dystrophin absence (DMD) versus reduction (Becker muscular dystrophy, BMD).
Purpose of the Study:
- To investigate exceptions to the rule that nonsense mutations result in null alleles.
- To determine if the location of nonsense mutations within the DMD gene can predict the resulting phenotype (DMD or BMD).
Main Methods:
- Analysis of large genetic databases (LOVD, HGMD, ClinVar) and literature.
- Critical review of existing patient data and inclusion of internal patient data, totaling 2593 patients.
- Mapping of identified nonsense mutations along the dystrophin transcript to correlate position with clinical outcome.
Main Results:
- A non-random distribution of BMD-associated mutations was observed within specific exons.
- Nonsense mutations in 51 exons consistently caused DMD.
- Milder BMD phenotypes were associated with early 5' nonsense mutations (allowing reinitiation) or late 3' nonsense mutations (preserving some protein function).
- Specific exons in the central gene region showed distinct mutation-phenotype correlations (e.g., exons 25, 31, 37, 38 linked to BMD; exons 30, 32, 34, 36 linked to DMD).
Conclusions:
- Nonsense mutations should not be universally classified as null alleles.
- Mutation position within the DMD gene is a significant predictor of disease severity (DMD vs. BMD).
- These findings have implications for predicting disease progression, genetic counseling, and therapeutic strategies like read-through drugs.
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