Related Experiment Video
Updated: Sep 20, 2025

Construction of Vapor Chambers Used to Expose Mice to Alcohol During the Equivalent of all Three Trimesters of Human Development
Published on: July 13, 2014
Alcohol Exposure May Increase Prenatal Choline Needs Through Redirection of Choline into Lipid Synthesis Rather than
Hannah G Petry1, Nipun Saini1,2, Susan M Smith1,2
1Department of Nutrition, University of North Carolina, Chapel Hill, NC 27599, USA.
Insights
Prenatal alcohol exposure (PAE) disrupts choline metabolism, increasing its demand for lipid synthesis and methyl donation. Choline supplementation can rescue these effects, supporting fetal growth and development.
Area of Science:
- Biochemistry
- Developmental Biology
- Nutritional Science
Background:
- Prenatal alcohol exposure (PAE) is linked to fetal growth reduction and neurodevelopmental issues.
- Prenatal choline supplementation shows promise in mitigating PAE-induced deficits, but mechanisms remain unclear.
- Alcohol consumption alters nutrient metabolism, potentially increasing nutrient requirements during pregnancy.
Purpose of the Study:
- To investigate the impact of alcohol on choline metabolism within the maternal-fetal dyad.
- To determine the role of choline supplementation in counteracting alcohol-induced metabolic alterations.
- To explore the relationship between choline metabolites and fetal growth outcomes.
Main Methods:
- Utilized a mouse model with pregnant C57BL/6J mice exposed to alcohol (3 g/kg/day) or control conditions, with or without choline (100 mg/kg/day) from embryonic day 8.5-17.5.
- Conducted targeted metabolomics on maternal liver, plasma, placenta, and fetal brain at E17.5 to analyze choline-related metabolites.
- Employed Spearman correlation analyses to associate metabolite levels with gestational and fetal growth parameters.
Main Results:
- Alcohol increased lipid products in the CDP-choline pathway and placental CDP-ethanolamine, effects not reversed by choline.
- Alcohol reduced the maternal hepatic SAM/SAH ratio and dimethylglycine, indicating compromised methyl donor pools, which were rescued by choline.
- Choline supplementation normalized altered methyl donor pools and suggested maternal plasma methionine and serine levels may predict choline status.
Conclusions:
- Alcohol-induced hepatic lipid synthesis may divert choline from methyl donation to phospholipid synthesis.
- PAE elevates choline requirements to meet demands for both lipid synthesis and methyl donation.
- Choline supplementation is crucial for addressing these competing metabolic needs and supporting healthy fetal development.
Abstract:
Background: Prenatal alcohol exposure (PAE) can reduce fetal growth and cause neurodevelopmental disability. Prenatal choline supplements attenuate PAE-induced behavioral and growth deficits; however, the underlying mechanisms are unknown. Alcohol alters nutrient metabolism and potentially increases nutrient needs. Here, we investigate how alcohol affects choline metabolism in the maternal-fetal dyad and the role of supplemental choline. Methods: Pregnant C57BL/6J mice were assigned to one of four groups: alcohol-exposed (3 g/kg alcohol/day) or control +/- 100 mg/kg choline daily from embryonic day (E)8.5-17.5. We performed an exploratory hypothesis-generating analysis of targeted metabolomics on choline-related metabolites in the maternal liver, plasma, placenta, and fetal brain at E17.5 and Spearman correlation analyses to determine their association with gestational and fetal growth outcomes. Results: Although choline levels were largely unaffected by alcohol or choline, alcohol increased many lipid products in the CDP-choline pathway; this was not normalized by choline. Alcohol increased placental CDP-ethanolamine and reduced the maternal hepatic SAM/SAH ratio as well as dimethylglycine and the serine/glycine ratio across the dyad, suggesting a functional insufficiency in methyl donor pools. These outcomes were rescued by supplemental choline. Correlation analyses among choline metabolites and fetal growth outcomes suggest that maternal plasma methionine, serine, and the serine/glycine ratio may be predictive of maternal-fetal choline status. Conclusions: The increased hepatic lipid synthesis that characterizes chronic alcohol exposure may draw choline into phospholipid biosynthesis at the expense of its use as a methyl donor. We propose that PAE increases choline needs, and that its supplementation is necessary to fulfill these competing demands for lipid and methyl use.
Related Concept Videos
Acid Halides to Esters: Alcoholysis
Teratogenicity
Aldehydes and Ketones with Alcohols: Hemiacetal Formation
Conversion of Alcohols to Alkyl Halides
Preparation of Alcohols via Substitution Reactions
Alcohols can be synthesized from alkyl halides via nucleophilic substitution reactions. The highly polar carbon-halogen bond in the substrate makes halide a good leaving group. The hydroxide ion or water can act as a nucleophile to take the place of halide and form an alcohol. The substitution reactions occur via two different reaction pathways, SN1 or SN2, depending on the nature of carbon attached to the halide.
Primary alcohols are synthesized from primary alkyl halides, and the...
Preparation of Alcohols via Addition Reactions
The acid-catalyzed addition of water to the double bond of alkenes is a large-scale industrial method used to synthesize low-molecular-weight alcohols. An acidic atmosphere is required to allow the hydrogen in the water molecule to act as an electrophile and attack the double bond in an alkene. The addition of a proton to the double bond creates a carbocation intermediate. The proton preferentially bonds to the less substituted end of the double bond to create a more stable carbocation...

