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Published on: November 8, 2018
Long-term outcome in pyridoxine-dependent epilepsy
Levinus A Bok1, Feico J Halbertsma, Saskia Houterman
1Department of Pediatrics, Máxima Medical Center, Veldhoven, the Netherlands. l.bok@mmc.nl
Insights
Long-term outcomes for pyridoxine-dependent epilepsy (PDE) patients remain poor, with delayed treatment and brain abnormalities linked to worse neurodevelopment. Individual patient outcomes are difficult to predict.
Area of Science:
- Neurology
- Genetics
- Pediatrics
Background:
- Pyridoxine-dependent epilepsy (PDE) is a rare genetic disorder requiring prompt treatment.
- Understanding the long-term outcomes and factors influencing neurodevelopment in PDE is crucial for improving patient care.
Purpose of the Study:
- To retrospectively investigate the long-term outcomes of a Dutch cohort with pyridoxine-dependent epilepsy.
- To identify correlations between patient characteristics and follow-up data, including neurodevelopmental and neuroimaging assessments.
Main Methods:
- Retrospective study of 14 PDE patients from a national reference laboratory.
- Data collected included demographics, age at seizure onset and pyridoxine initiation, urinary alpha-aminoadipic semialdehyde levels, antiquitin mutations, developmental milestones, neurocognitive function, school career, MRI, and EEG.
Main Results:
- Most patients experienced delayed mental development (median IQ 72).
- Pyridoxine monotherapy controlled seizures in 10/14 patients; four required additional antiepileptic drugs.
- Delayed pyridoxine initiation and corpus callosum abnormalities were associated with poor neurodevelopmental outcomes.
Conclusions:
- The long-term outcome for patients with pyridoxine-dependent epilepsy is generally poor.
- Current patient characteristics do not reliably predict individual outcomes.
- Collaborative research in structured settings is recommended to enhance treatment strategies and improve outcomes for PDE.
Aim:
The long-term outcome of the Dutch pyridoxine-dependent epilepsy cohort and correlations between patient characteristics and follow-up data were retrospectively studied.
Method:
Fourteen patients recruited from a national reference laboratory were included (four males, 10 females, from 11 families; median age at assessment 6y; range 2y 6mo-16y). The following data were retrieved: sex; age at seizure onset; age at the start of pyridoxine therapy; level of urinary alpha-aminoadipic semialdehyde; antiquitin mutations; developmental milestones; evaluation of neurocognitive functioning and school career; magnetic resonance imaging (MRI) and electroencephalography (EEG) assessments.
Results:
Pyridoxine was started antenatally in two children, in the first week of life in five, in the first month of life in three, or after the first month of life (range 2.5-8mo) in four. No child was physically disabled; however, only five walked at 2 years of age. Mental development was delayed in most: median IQ or developmental index was 72 (SD 19). Pyridoxine monotherapy controlled seizures in 10 of 14 children, whereas four needed additional antiepileptic drugs. Seizure persistence, antiepileptic drugs (other than pyridoxine), EEG background, and epileptiform activity were not associated with outcome. On neonatal MRI, structural and white matter abnormalities occurred in five of eight children; on follow-up, the number of abnormal MRIs was increased. Delayed initiation of pyridoxine medication and corpus callosum abnormalities were significantly associated with unfavourable neurodevelopmental outcome, but normal follow-up imaging did not predict a good outcome.
Interpretation:
Outcome of patients with pyridoxine-dependent epilepsy remains poor. Individual outcome cannot be predicted by the evaluated characteristics. We suggest that collaborated research in structured settings could help to improve treatment strategies and outcome for pyridoxine-dependent epilepsy.
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