Valproic acid in pregnancy: how much are we endangering the embryo and fetus?

Asher Ornoy1

  • 1Laboratory of Teratology, Hebrew University Hadassah Medical School and Israeli Ministry of Health, Jerusalem, Israel. ornoy@cc.huji.ac.il

Insights

Valproic acid (VPA) exposure during pregnancy significantly increases risks for major birth defects and developmental issues like autism spectrum disorder (ASD). Lowering VPA dosage and using monotherapy can mitigate these risks.

Area of Science:

  • Teratology
  • Developmental Toxicology
  • Neurodevelopmental Disorders

Background:

  • Valproic acid (VPA) is a recognized human teratogen with established risks during pregnancy.
  • Prenatal VPA exposure is linked to a threefold increase in major anomalies, including neural tube defects (NTDs) and limb malformations, termed 'valproate syndrome'.

Purpose of the Study:

  • To summarize the teratogenic and developmental risks associated with prenatal Valproic Acid (VPA) exposure.
  • To provide guidance on minimizing risks when VPA use in pregnancy is unavoidable.

Main Methods:

  • Review of prospective and retrospective studies on VPA teratogenicity.
  • Analysis of clinical data linking prenatal VPA exposure to birth defects and neurodevelopmental outcomes.
  • Examination of proposed mechanisms of VPA-induced teratogenesis.

Main Results:

  • Prenatal VPA exposure is associated with major anomalies (e.g., spina bifida), 'valproate syndrome' with intrauterine growth restriction, and increased rates of developmental problems, including autistic spectrum disorder (ASD).
  • Higher VPA doses (≥1000 mg/day) and polytherapy increase teratogenic risk.
  • Human embryos appear particularly susceptible compared to other species.

Conclusions:

  • When VPA is necessary during pregnancy, use the lowest effective dose, preferably as monotherapy, divided into 2-3 doses.
  • Recommend periconceptional folic acid supplementation and high-risk pregnancy monitoring with targeted ultrasounds.
  • Potential mechanisms include histone deacetylase inhibition, increased fetal oxidative stress, and folic acid antagonism.

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