Related Experiment Video
Updated: May 15, 2026

Modifying Levels of Maternal Dietary Folic Acid or Choline to Study the Impact of Deficiencies on Offspring Health Outcomes
Published on: June 28, 2024
Perinatal choline effects on neonatal pathophysiology related to later schizophrenia risk
Randal G Ross1, Sharon K Hunter, Lizbeth McCarthy
1Department of Psychiatry, Obstetrics and Gynecology, University of Colorado Denver, Aurora, USA. randy.ross@ucdenver.edu
Insights
Perinatal choline supplementation enhanced cerebral inhibition in infants, improving sensory gating and attention. This intervention may protect against developmental delays, even with genetic predispositions for schizophrenia.
Area of Science:
- Neuroscience
- Developmental Psychology
- Pharmacology
Background:
- Deficient cerebral inhibition is linked to attention deficits in schizophrenia.
- Cerebral inhibition develops perinatally, influenced by genetics and in utero factors.
- Choline activates fetal nicotinic acetylcholine receptors, promoting brain development.
Purpose of the Study:
- To investigate the effects of perinatal choline supplementation on cerebral inhibition development in human infants.
- To determine if choline can mitigate genetic predispositions for attentional disorders.
Main Methods:
- A randomized, placebo-controlled trial involving 100 pregnant women.
- Dietary phosphatidylcholine supplementation from the second trimester through the third postnatal month.
- Electrophysiological analysis of P50 auditory evoked response inhibition in infants.
Main Results:
- Choline supplementation showed no adverse effects.
- At 5 weeks postnatal, 76% of choline-treated infants showed P50 suppression vs. 43% in placebo.
- Choline mitigated the negative impact of a schizophrenia-associated genotype on P50 inhibition.
Conclusions:
- Perinatal choline promotes timely development of cerebral inhibition.
- This intervention may offer protection against attentional problems associated with developmental delays.
- Choline supplementation can counteract genetic influences on neurodevelopment.
Objective:
Deficient cerebral inhibition is a pathophysiological brain deficit related to poor sensory gating and attention in schizophrenia and other disorders. Cerebral inhibition develops perinatally, influenced by genetic and in utero factors. Amniotic choline activates fetal α7-nicotinic acetylcholine receptors and facilitates development of cerebral inhibition. Increasing this activation may protect infants from future illness by promoting normal brain development. The authors investigated the effects of perinatal choline supplementation on the development of cerebral inhibition in human infants.
Method:
A randomized placebo-controlled clinical trial of dietary phosphatidylcholine supplementation was conducted with 100 healthy pregnant women, starting in the second trimester. Supplementation to twice normal dietary levels for mother or newborn continued through the third postnatal month. All women received dietary advice regardless of treatment. Infants' electrophysiological recordings of inhibition of the P50 component of the cerebral evoked response to paired sounds were analyzed. The criterion for inhibition was suppression of the amplitude of the second P50 response by at least half, compared with the first response.
Results:
No adverse effects of choline were observed in maternal health and delivery, birth, or infant development. At the fifth postnatal week, the P50 response was suppressed in more choline-treated infants (76%) compared with placebo-treated infants (43%) (effect size=0.7). There was no difference at the 13th week. A CHRNA7 genotype associated with schizophrenia was correlated with diminished P50 inhibition in the placebo-treated infants, but not in the choline-treated infants.
Conclusions:
Neonatal developmental delay in inhibition is associated with attentional problems as the child matures. Perinatal choline activates timely development of cerebral inhibition, even in the presence of gene mutations that otherwise delay it.
Related Concept Videos
Psychosis: Pathophysiology of Schizophrenia and Other Psychotic Disorders
Researchers have identified genetic factors that increase susceptibility to schizophrenia, underscoring the intricate interplay between genetics and environment in disease development. At the core of schizophrenia's pathophysiology is excessive dopaminergic neurotransmission within the...
Biological Causes of Schizophrenia
Genetic Factors in Schizophrenia
The genetic basis of schizophrenia is strongly supported by family and twin studies.
Psychological and Sociocultural Causes of Schizophrenia
Attention-Deficit/Hyperactivity Disorder
Diagnostic Criteria and Symptoms
To diagnose ADHD, symptoms must manifest before age 12 and be evident across multiple settings.
Hepatic Encephalopathy
Alzheimer Disease ll: Pathophysiology

