<i>DNM1</i> encephalopathy: A new disease of vesicle fission.
case_series · Level IV
Where this comes from
- Record sourced from PubMed, PMID 28667181.
- Also identified by DOI 10.1212/WNL.0000000000004152 and PMC identifier 5574673.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
To evaluate the phenotypic spectrum caused by mutations in dynamin 1 (<i>DNM1</i>), encoding the presynaptic protein DNM1, and to investigate possible genotype-phenotype correlations and predicted functional consequences based on structural modeling. We reviewed phenotypic data of 21 patients (7 previously published) with <i>DNM1</i> mutations. We compared mutation data to known functional data and undertook biomolecular modeling to assess the effect of the mutations on protein function. We identified 19 patients with de novo mutations in <i>DNM1</i> and a sibling pair who had an inherited mutation from a mosaic parent. Seven patients (33.3%) carried the recurrent p.Arg237Trp mutation. A common phenotype emerged that included severe to profound intellectual disability and muscular hypotonia in all patients and an epilepsy characterized by infantile spasms in 16 of 21 patients, frequently evolving into Lennox-Gastaut syndrome. Two patients had profound global developmental delay without seizures. In addition, we describe a single patient with normal development before the onset of a catastrophic epilepsy, consistent with febrile infection-related epilepsy syndrome at 4 years. All mutations cluster within the GTPase or middle domains, and structural modeling and existing functional data suggest a dominant-negative effect on DMN1 function. The phenotypic spectrum of <i>DNM1</i>-related encephalopathy is relatively homogeneous, in contrast to many other genetic epilepsies. Up to one-third of patients carry the recurrent p.Arg237Trp variant, which is now one of the most common recurrent variants in epileptic encephalopathies identified to date. Given the predicted dominant-negative mechanism of this mutation, this variant presents a prime target for therapeutic intervention.
Medical subject headings
- Brain Diseases
- GTP Phosphohydrolases
- Microtubule-Associated Proteins
- Mitochondrial Proteins
- Mutation