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Doisy, M.

Publications and source records attributed to Doisy, M..

2 recordsLinked to original sources

Evaluating exon-skipping therapies targeting the central nervous system in Duchenne muscular dystrophy using high-resolution spatial transcriptomics

Duchenne muscular dystrophy (DMD) is marked by progressive muscle degeneration due to dystrophin deficiency. Despite cognitive impairments in up to one-third of patients, central nervous system (CNS)-targeted dystrophin restoration remains relatively underexplored compared to muscle-focused therapies. Since dystrophin is expressed in the brain during development and postnatally, it is important to assess which aspects of CNS pathology could be rescued. However, studying Dmd is difficult due to its size, low-abundance transcripts, and with multiple isoforms, limiting the sensitivity and isoform resolution of standard sequencing methods. To overcome these limitations, we applied Xenium spatial transcriptomics to target splice junctions, enabling isoform-specific and exon 51 skipping events detection across brain regions and cell types. Using this approach, we analyzed mdx52 mice lacking the full-length and Dp140 isoforms, treated with two exon 51 skipping therapies (antisense oligonucleotides or AAV-U7ex51). We observed distinct spatial expression patterns in the wild type brain between the full-length isoforms (Dp427c/m/p1) and shorter isoforms (Dp71 and Dp40). The full-length isoforms were predominantly expressed in cortex layers 2/3-6b and the CA1 region, while the shorter isoforms were localized to cortex layer 1 and the dentate gyrus. Among the exon skipping therapies tested, U7ex51 delivered neonatally induced broad exon skipping in neurons and effectively restored full-length isoforms in the targeted cells. This study introduces the first subcellular-resolution spatial transcriptomic atlas of dystrophin presence and rescue in the CNS and demonstrates a framework for evaluating gene therapies in spatially and transcriptionally complex tissues such as the brain.

neuroscience↗

Improving angiogenesis ameliorates the efficacy of ASO-based exon-skipping for the treatment of Duchenne muscular dystrophy

Duchenne muscular dystrophy (DMD) is a severe X-linked disease caused by mutations in the DMD gene, resulting in the absence of functional dystrophin. Antisense oligonucleotide (ASO)-based therapies aim to restore the open reading frame and produce a truncated but functional dystrophin protein. Although several ASOs are FDA-approved, dystrophin restoration in patient biopsies remains low, underlining the need to improve ASO efficacy. One major limitation is poor ASO biodistribution to skeletal muscle, influenced by both ASO chemistry and pathological features of dystrophic tissue. In DMD patients and mdx mice, microvascular abnormalities and impaired angiogenesis likely restrict ASO delivery. Here, we hypothesized that enhancing muscle vascularization could improve ASO biodistribution and therapeutic outcomes. Mdx mice were treated with a pro-angiogenic treatment prior to ASO administration targeting exon 23 of dystrophin pre-mRNA. Angiogenic stimulation increased capillary density and improved ASO delivery, exon skipping, and dystrophin expression compared to ASO alone. These molecular improvements were associated with increased myofiber size, larger mean cross-sectional area, and decreased serum myomesin levels, without signs of toxicity. This study provides proof-of-concept that promoting angiogenesis can enhance the efficacy of ASO-based treatments, offering a complementary strategy to improve therapeutic outcomes in DMD.

molecular biology↗