Early neurological phenotype in 4 children with biallelic PRODH mutations

Alexandra Afenjar1, Marie-Laure Moutard, Diane Doummar

  • 1AP-HP, Service de neuropédiatrie, Hôpital Armand Trousseau, Paris, France. alexandra.afenjar@trs.aphp.fr

Brain & Development
|April 7, 2007
PubMed

Insights

Severe proline oxidase deficiency causes significant neurological issues in children. Genetic testing for PRODH mutations is crucial for diagnosing hyperprolinemia type I and associated developmental delays.

Area of Science:

  • Biochemistry
  • Genetics
  • Neurology

Background:

  • Hyperprolinemia type I (HPI) stems from proline oxidase (POX) deficiency, impacting proline to glutamate conversion.
  • Phenotypes in HPI patients vary, from asymptomatic to exhibiting neurological and extraneurological defects.
  • The proline oxidase gene (PRODH) is located in the 22q11 region, associated with velocardiofacial syndrome (VCFS).

Purpose of the Study:

  • To investigate the genetic basis of severe neurological phenotypes in children with HPI.
  • To correlate PRODH mutations and POX activity with clinical manifestations.
  • To establish diagnostic guidelines for HPI and related genetic conditions.

Main Methods:

  • Genetic analysis of PRODH in four unrelated children with HPI and severe neurological symptoms.
  • Identification of biallelic PRODH abnormalities, including missense/nonsense mutations, deletions, and 22q11 microdeletion.
  • Review of previously reported cases with severe biallelic PRODH mutations.

Main Results:

  • Biallelic PRODH abnormalities leading to severely reduced POX activity were identified in the studied children.
  • The combined cohort of eight patients presented with early psychomotor delay, cognitive deficits, autistic features, and epilepsy.
  • Hyperprolinemia levels ranged from 400 to 2200 micromol/L in these patients.
  • Patients with biallelic PRODH alterations and severely impaired POX activity exhibited early-onset, severe neurological features.

Conclusions:

  • Children presenting with severe neurological phenotypes, including developmental delay and autistic features, should be screened for hyperprolinemia.
  • Individuals with 22q11 microdeletions, particularly those with intellectual disability and autistic traits, warrant hyperprolinemia testing.
  • Screening for PRODH mutations is recommended for patients diagnosed with hyperprolinemia.

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