ArticleNature communications2025
Targeted antisense oligonucleotide treatment rescues developmental alterations in spinal muscular atrophy organoids.
Article in Nature communications, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Using human 3D organoid models to gain mechanistic insight in motor neuron diseases.Nature reviews. Neuroscience · 2026Review
- IndividualLife science alliance · 2026Article
- Measuring Electrophysiological Activity in Acute Brain Slices, Spheroids, and Organoids Using 3D High-Density Multielectrode Arrays.Bio-protocol · 2026Article
- Pre-symptomatic treatment of spinal muscular atrophy: a strategic shift from concept to clinical practice.World journal of pediatrics : WJP · 2026Article
- Gene Targeted Therapies for Neurodegenerative Disorders: Strategies and Implications in ALS and SMA.Genes · 2026Review
- RNA biomarkers in spinal muscular atrophy: enhancing pathogenesis understanding and guiding precision medicine.Cellular and molecular life sciences : CMLS · 2026Review
- The emergence of electrical activity in human brain organoids.Stem cell reports · 2025Review
Corrections and comments
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Authors and funding
23 authors.
Funding
Abstract
Spinal muscular atrophy (SMA) is a severe neurological disease caused by mutations in the SMN1 gene, characterized by early onset and degeneration of lower motor neurons. Understanding early neurodevelopmental defects in SMA is crucial for optimizing therapeutic interventions. Using spinal cord and cerebral organoids generated from multiple SMA type 1 male donors, we revealed widespread disease mechanisms beyond motor neuron degeneration. Single-cell transcriptomics uncovered pervasive alterations across neural populations, from progenitors to neurons, demonstrating SMN-dependent dysregulation of neuronal differentiation programs. Multi-electrode array (MEA) analysis identified consistent hyperexcitability in both spinal and brain organoids, establishing altered electrical properties as a central nervous system-wide feature of pathogenesis. Early administration of an optimized antisense oligonucleotide (ASO) that increased SMN levels rescued morphological and functional deficits in spinal cord organoids across different genetic backgrounds. Importantly, this early intervention precisely corrected aberrant splicing in here identified SMN1 targets enriched at critical nodes of neuronal differentiation. Our findings demonstrate that early developmental defects are core features of SMA pathogenesis that can be prevented by timely therapeutic intervention, providing insights for optimizing treatment strategies.
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Registered trials
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