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Updated: Aug 8, 2026

Characterizing Exon Skipping Efficiency in DMD Patient Samples in Clinical Trials of Antisense Oligonucleotides
Published on: May 7, 2020
Hybrid spectrin type repeats produced by exon-skipping in dystrophin
1Department of Biological, Chemical and Physical Sciences, Illinois Institute of Technology, 3101 S. Dearborn, Chicago, IL 60616, USA. menhart@iit.edu
Abstract:
Dystrophin is the protein whose defect underlies Duchenne Muscular Dystrophy, DMD, a common (1:3500 male births) and fatal condition in which muscle tissue deteriorates leading to death in the second or third decade of life. Dystrophin is coded for by the largest human gene, and one of the most complex. It is translated from at least 7 distinct promoters, with the largest transcripts (which are the ones involved in DMD) containing 79 exons over >2.5 Mbp [K.F. O'Brien, L.M. Kunkel, Dystrophin and muscular dystrophy: past, present, and future, Mol. Genet. Metab. 74 (2001) 75-88, H.M. Sadoulet-Puccio, L.M. Kunkel, Dystrophin and its isoforms, Brain Pathol. 6 (1996) 25-35]. Exacerbating this complexity, it has recently been shown that dystrophin is subject to extensive alternative RNA processing, potentially producing a wide variety dystrophin variants [M. Sironi, R. Cagliani, U. Pozzoli, A. Bardoni, G.P. Comi, R. Giorda, N. Bresolin, The dystrophin gene is alternatively spliced throughout its coding sequence FEBS Lett 517 (2002) 163-166]. The structure of the dystrophin protein is highly modular, with the most common module being a motif termed the spectrin type repeat, or STR, of which there are 24. Each STR is roughly coded for by two exons, and the most common type of multiple exon-skipping events start and end at introns in the middle of STRs [R.G. Roberts, A.J. Coffey, M. Bobrow, D.R. Bentley, Exon structure of the human dystrophin gene Genomics 16 (1993) 536-538, M. Koenig, L.M. Kunkel, Detailed analysis of the repeat domain of dystrophin reveals four potential hinge segments that may confer flexibility, J. Biol. Chem. 265 (1990) 4560-4566]. This would produce fractional STR modules, however, the concept of STRs as proteins domains makes the viability of such fractional motifs questionable. However, certain of these events produce pairs of potentially complementary fractional domain that might reassemble into a hybrid STR motif. We have constructed model fragment corresponding to one such exon-skipping event, and show that the hybrid STR so produced is viable, and furthermore that some of the properties of the protein containing it differ substantially of the native, un-skipped parent.
Insights
Duchenne Muscular Dystrophy (DMD) is caused by defects in the dystrophin protein. Researchers created a hybrid spectrin-type repeat (STR) motif, showing it is viable and alters protein properties, offering new insights into DMD.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Duchenne Muscular Dystrophy (DMD) is a fatal genetic disorder caused by defects in the dystrophin protein, affecting muscle tissue.
- The dystrophin gene is the largest human gene, characterized by complex alternative RNA processing and a modular structure with 24 spectrin-type repeat (STR) motifs.
- Alternative splicing, particularly exon skipping within STRs, can lead to fractional or potentially hybrid STR motifs.
Purpose of the Study:
- To investigate the viability of hybrid STR motifs generated by specific exon-skipping events in dystrophin.
- To analyze the functional consequences of incorporating a hybrid STR motif into the dystrophin protein.
Main Methods:
- Construction of a model protein fragment containing a hybrid STR motif resulting from a specific exon-skipping event.
- Assessment of the structural viability of the engineered hybrid STR motif.
- Comparison of properties between the protein containing the hybrid STR and the native dystrophin.
Main Results:
- The constructed hybrid STR motif was found to be viable.
- The presence of the hybrid STR motif significantly altered certain properties of the dystrophin protein compared to the native form.
Conclusions:
- Hybrid STR motifs can be viable despite arising from fractional exon-skipping events.
- Alternative splicing events can produce functional dystrophin variants with altered properties, potentially impacting DMD.
- This research provides a model for understanding the functional impact of complex alternative splicing in the dystrophin gene.
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