AI Article Synopsis

  • Becker muscular dystrophy (BMD) is a less severe X-linked genetic disorder caused by mutations in the DMD gene, resulting in truncated dystrophin and affecting muscle function, particularly in the heart.
  • Researchers created a rat model for BMD by deleting specific exons of the Dmd gene and evaluated the rats for functional and histopathological changes during their first year, finding moderate muscle damage and progressive heart disease.
  • RNA sequencing of cardiac tissue revealed shared abnormalities in BMD and Duchenne muscular dystrophy (DMD) rats, pointing to issues with key proteins at cell junctions, which could help understand dystrophin's role in muscle and heart function, and pave the way for new treatments.

Article Abstract

Becker muscular dystrophy (BMD) is an X-linked disorder due to in-frame mutations in the DMD gene, leading to a less abundant and truncated dystrophin. BMD is less common and severe than Duchenne muscular dystrophy (DMD) as well as less investigated. To accelerate the search for innovative treatments, we developed a rat model of BMD by deleting the exons 45-47 of the Dmd gene. Here, we report a functional and histopathological evaluation of these rats during their first year of life, compared to DMD and control littermates. BMD rats exhibit moderate damage to locomotor and diaphragmatic muscles but suffer from a progressive cardiomyopathy. Single nuclei RNA-seq analysis of cardiac samples revealed shared transcriptomic abnormalities in BMD and DMD rats and highlighted an altered end-addressing of TMEM65 and Connexin-43 at the intercalated disc, along with electrocardiographic abnormalities. Our study documents the natural history of a translational preclinical model of BMD and reports a cellular mechanism for the cardiac dysfunction in BMD and DMD offering opportunities to further investigate the organization role of dystrophin in intercellular communication.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11549483PMC
http://dx.doi.org/10.1038/s44319-024-00249-9DOI Listing

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