ArticleBrain : a journal of neurology2025
The expanding clinical and genetic spectrum of DYNC1H1-related disorders.
Article in Brain : a journal of neurology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 18 papers.
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Who cites it
18 citing papers in PubMed.
- Synthetic cargo adaptors reveal molecular features that enhance dynein activation.Nature communications · 2026Article
- Landscape of parental postzygotic mutations across >11,000 rare disease trios.American journal of human genetics · 2026Article
- Aging-Related Changes in the Injury Response of the Peripheral Nervous System.Neuroscience bulletin · 2026Review
- The roles of cytoplasmic dynein complex in various ocular disorders.Molecular medicine (Cambridge, Mass.) · 2026Review
- Pathogenic variants in the autophagy-tethering factor EPG5 drive neurodegeneration through mitochondrial dysfunction and innate immune activation.Nature communications · 2026Article
- Enlarging the phenotypical spectrum of DYNC1H1-related epilepsy.Neurological sciences : official journal of the Italian Neurological Society and of the Italian Society of Clinical Neurophysiology · 2026Article
- Article
- The chaperonin TRiC component Cct3 is required for axonal transport, myelination, and neuromuscular junction refinement.Cell death & disease · 2026Article
- Autophagy and mitophagy at the synapse and beyond: implications for learning, memory and neurological disorders.Autophagy · 2026Review
- Impaired dynein function preserves spinal interneuron survival and positioning in an ALS-like mouse model.PloS one · 2026Article
- Expanding the clinical phenotype of DYNC1H1 -associated mutations: a Chinese family with autosomal dominant complex hereditary spastic paraplegia.BMC medical genomics · 2025Article
- DYNC1H1 in Spinal Muscular Atrophy: Diagnostic Findings From Two Families and a Comprehensive Review of Its Role in Neuromuscular and Neurodevelopmental Disorders.Molecular genetics & genomic medicine · 2025Review
- Neurogenetic Disorders with Hearing Loss: Mechanisms, Classifications, and Emerging Insights.Current neurology and neuroscience reports · 2025Review
- Impaired Aggrephagy, Interrupted Vesicular Trafficking, and Cellular Stress, Lead to Protein Aggregation, and Synaptic Dysfunction in Cerebellum of Children and Adults with Idiopathic Autism.Cerebellum (London, England) · 2025Article
- Neuroaxonal Degeneration as a Converging Mechanism in Motor Neuron Diseases (MNDs): Molecular Insights into RNA Dysregulation and Emerging Therapeutic Targets.International journal of molecular sciences · 2025Review
- Effect of Dync1h1 on Phototransduction Protein Transport and the Development and Maintenance of Photoreceptor Cells in Zebrafish.Investigative ophthalmology & visual science · 2025Article
- Multidisciplinary and home-based management in neonatal unilateral foot drop: a case report.Frontiers in rehabilitation sciences · 2025Article
- The space-time continuum in neurological disorders of the autophagosome-lysosome fusion machinery.Autophagy reports · 2025Review
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56 authors.
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Abstract
Intracellular trafficking involves an intricate machinery of motor complexes, including the dynein complex, to shuttle cargo for autophagolysosomal degradation. Deficiency in dynein axonemal chains, as well as cytoplasmic light and intermediate chains, have been linked with ciliary dyskinesia and skeletal dysplasia. The cytoplasmic dynein 1 heavy chain protein (DYNC1H1) serves as a core complex for retrograde trafficking in neuronal axons. Dominant pathogenic variants in DYNC1H1 have been previously implicated in peripheral neuromuscular disorders (NMD) and neurodevelopmental disorders (NDD). As heavy-chain dynein is ubiquitously expressed, the apparent selectivity of heavy chain dyneinopathy for motor neuronal phenotypes remains currently unaccounted for. Here, we aimed to evaluate the full DYNC1H1-related clinical, molecular and imaging spectrum, including multisystem features and novel phenotypes presenting throughout life. We identified 47 cases from 43 families with pathogenic heterozygous variants in DYNC1H1 (aged 0-59 years) and collected phenotypic data via a comprehensive standardized survey and clinical follow-up appointments. Most patients presented with divergent and previously unrecognized neurological and multisystem features, leading to significant delays in genetic testing and establishing the correct diagnosis. Neurological phenotypes include novel autonomic features, previously rarely described behavioral disorders, movement disorders and periventricular lesions. Sensory neuropathy was identified in nine patients (median age of onset 10.6 years), of which five were only diagnosed after the second decade of life, and three had a progressive age-dependent sensory neuropathy. Novel multisystem features included primary immunodeficiency, bilateral sensorineural hearing loss, organ anomalies and skeletal manifestations, resembling the phenotypic spectrum of other dyneinopathies. We also identified an age-dependent biphasic disease course with developmental regression in the first decade and, following a period of stability, neurodegenerative progression after the second decade of life. Of note, we observed several cases in whom neurodegeneration appeared to be prompted by intercurrent systemic infections with double-stranded DNA viruses (Herpesviridae) or single-stranded RNA viruses (Ross River fever, SARS-CoV-2). Moreover, the disease course appeared to be exacerbated by viral infections regardless of age and/or severity of neurodevelopmental disorder manifestations, indicating a role of dynein in anti-viral immunity and neuronal health. In summary, our findings expand the clinical, imaging and molecular spectrum of pathogenic DYNC1H1 variants beyond motor neuropathy disorders and suggest a life-long continuum and age-related progression due to deficient intracellular trafficking. This study will facilitate early diagnosis and improve counselling and health surveillance of affected patients.
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