Pyridoxine-dependent Epilepsy caused by a Novel homozygous mutation in PLPBP Gene

Rojan İpek1, Büşra Eser Çavdartepe2, Deniz Kor3

  • 1Department of Pediatric Neurology, Adıyaman Training and Research Hospital, Adıyaman, Turkey. rjnipek@hotmail.com.

Metabolic Brain Disease
|October 29, 2022
PubMed

Insights

Pyridoxine-dependent epilepsy (PDE) is a rare genetic disorder causing severe seizures in infants. Prompt diagnosis and high-dose pyridoxine treatment are crucial for managing this treatable condition.

Area of Science:

  • Genetics
  • Neurology
  • Metabolic Disorders

Background:

  • Pyridoxine-dependent epilepsy (PDE) is an uncommon hereditary metabolic disease presenting with neonatal seizures.
  • It is often resistant to conventional antiepileptic drugs but responds dramatically to pyridoxine.
  • Mutations in ALDH7A1, PNPO, or PLPBP genes cause PDE, impacting pyridoxal phosphate homeostasis.

Observation:

  • A 33-month-old female infant experienced severe seizures from day 1 of life.
  • The infant's seizures were refractory to standard antiepileptic treatments.
  • A dramatic positive response was observed with high-dose pyridoxine administration.

Findings:

  • Genetic analysis revealed a novel homozygous mutation (c.695 C>T, p.Ala232Val) in the PLPBP gene.
  • This mutation affects the pyridoxal phosphate homeostatic protein (PLPHP).
  • The identified mutation provides a genetic explanation for the patient's pyridoxine-responsive epilepsy.

Implications:

  • This case highlights the importance of considering vitamin-dependent metabolic encephalopathies, specifically pyridoxine dependence, in the differential diagnosis of refractory neonatal seizures.
  • Early identification and treatment with pyridoxine can prevent severe neurological sequelae like encephalopathy and developmental retardation.
  • The discovery of a new mutation in PLPBP expands the genetic landscape of pyridoxine-dependent epilepsy.

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