Related Experiment Video
Updated: Jun 24, 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
Addressing a folate imbalance in fetal cerebrospinal fluid can decrease the incidence of congenital hydrocephalus
Sarah Cains1, Andrew Shepherd, Mohammad Nabiuni
1Faculty of Life Sciences, The University of Manchester, Manchester, United Kingdom.
Insights
Maternal folate supplementation with specific forms like tetrahydrofolic and 5-formyltetrahydrofolic acids can reduce fetal hydrocephalus (HC) and improve brain development in a rat model. Folic acid supplementation, however, worsened HC incidence.
Area of Science:
- Neuroscience
- Developmental Biology
- Biochemistry
Background:
- Fetal-onset hydrocephalus (HC) affects 1:500-1:5000 births, causing severe neurological deficits due to abnormal cerebrospinal fluid (CSF) dynamics and cerebral cortex development.
- Previous research indicated that CSF from affected fetuses in the hydrocephalic Texas rat model induces neural progenitor cell cycle arrest.
Purpose of the Study:
- To investigate the role of folate metabolism alterations in the CSF of developing cerebrums as a cause of HC.
- To determine if specific folate supplementation could ameliorate HC and improve brain development in the hydrocephalic Texas rat model.
Main Methods:
- Identified three folate enzymes in the CSF of developing rat cerebrums.
- Assessed the association between 10-formyltetrahydrofolate dehydrogenase levels and HC incidence.
- Administered daily supplementation of tetrahydrofolic acid and 5-formyltetrahydrofolic acid or folic acid to pregnant dams.
Main Results:
- Low levels of 10-formyltetrahydrofolate dehydrogenase were associated with HC in the hydrocephalic Texas rat.
- Supplementation with tetrahydrofolic and 5-formyltetrahydrofolic acids significantly reduced HC incidence and improved brain development.
- Folic acid supplementation paradoxically increased the incidence of congenital HC in this model.
Conclusions:
- Alterations in folate metabolism, specifically low 10-formyltetrahydrofolate dehydrogenase, contribute to fetal HC in the hydrocephalic Texas rat.
- Targeted maternal folate supplementation with specific metabolites offers a potential therapeutic strategy for congenital HC.
- The complexity of folate metabolism in brain development necessitates careful consideration of folate species used in supplementation.
Abstract:
Fetal-onset hydrocephalus (HC), which affects between 1:500 and 1:5000 live human births, results from unequal production and drainage of cerebrospinal fluid (CSF) and is associated with abnormal development of the cerebral cortex leading to severe neurological deficits. We previously found that in the hydrocephalic Texas rat, the CSF of affected fetuses induced a cell cycle arrest in neural progenitor cells. Here, we show that alterations in folate metabolism in the CSF of the developing cerebrum are likely responsible for this effect. We identified 3 folate enzymes in the CSF and demonstrate that low levels of one of these, 10-formyltetrahydrofolate dehydrogenase, are associated with HC in the hydrocephalic Texas rat. Therefore, we tested whether supplementation with specific folate species would improve developmental outcome. After daily administration of a combination of tetrahydrofolic and 5-formyltetrahydrofolic acids to pregnant dams, there was a significant reduction in the incidence of HC and improved brain development. By contrast, supplementation with folic acid increased the incidence of congenital HC in this model. These results indicate the complexities of folate metabolism in the developing brain and suggest that folate imbalance leading to HC in the hydrocephalic Texas rat fetuses can be treated with maternal folate supplementation using specific folate metabolites and combinations thereof.
Related Concept Videos
Neurulation
Fetal Circulation
Two umbilical arteries transport blood from the fetus to the placenta. At the placenta, the blood absorbs oxygen and nutrients while simultaneously eliminating waste products. This oxygen-enriched and nutrient-rich blood then returns to the fetus through one...
Teratogenicity
Development of the Oral Microbiota

