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Published on: July 13, 2014
Prenatal Choline Attenuates the Elevated Adiposity and Glucose Intolerance Caused by Prenatal Alcohol Exposure
Susan M Smith1,2, Carolyn A Munson1, George R Flentke1
1Nutrition Research Institute, University of North Carolina at Chapel Hill, Kannapolis, NC 28081, USA.
Insights
Prenatal alcohol exposure causes metabolic issues, but prenatal choline supplementation can prevent them. This study shows choline supplementation benefits offspring health regardless of alcohol exposure.
Area of Science:
- Neuroscience
- Metabolic Syndrome
- Developmental Biology
Background:
- Prenatal alcohol exposure (PAE) is linked to neurobehavioral deficits and metabolic syndrome.
- Prenatal choline supplementation (PCS) has previously improved PAE-induced behavioral deficits.
- The impact of PCS on PAE-induced metabolic syndrome remains less understood.
Purpose of the Study:
- To investigate whether PCS can ameliorate metabolic syndrome in a mouse model of PAE.
- To examine the sex-dependent effects of PAE and PCS on metabolic outcomes.
- To assess the long-term metabolic consequences of PAE and the protective effects of PCS.
Main Methods:
- A mouse model was used, exposing pregnant dams to alcohol during gestation.
- Some dams received additional choline supplementation (PCS).
- Offspring were monitored until 86 weeks for body composition and glucose tolerance.
Main Results:
- PAE led to sex-dependent metabolic changes, including increased fat mass and glucose intolerance in males.
- PCS attenuated all observed metabolic abnormalities in PAE offspring, irrespective of sex.
- PCS also improved metabolic health in control offspring, suggesting potential dietary inadequacy.
Conclusions:
- Prenatal choline supplementation is effective in preventing alcohol-induced metabolic syndrome.
- PCS offers a protective strategy against long-term metabolic consequences of PAE.
- Choline may play a critical role in fetal development and metabolic programming.
Abstract:
Prenatal alcohol exposure (PAE) causes neurobehavioral deficits and metabolic syndrome in later life. Prenatal choline supplementation (PCS) improves those behavioral deficits. Here we test whether PCS also ameliorates the attendant metabolic syndrome, using an established mouse model that mirrors aspects of alcohol-related neurodevelopmental disorders. Pregnant dams were exposed to alcohol (3 g/kg) from gestational days 8.5-17.5; some dams received additional choline (175% of requirement) by a daily injection. Offspring were followed through to the age of 86 wks with respect to their body composition and glucose tolerance. We found that PAE affected these outcomes in a sex-dependent manner. Male PAE offspring exhibited an increased fat mass, liver enlargement, elevated fasting glucose, and glucose intolerance. Female PAE offspring exhibited an increased fat mass, but the glucose tolerance and fasting values were unaffected. Regardless of sex, PCS attenuated all these metabolic measures. PCS was shown previously to elevate methyl-related choline metabolites and improve fetal growth, suggesting that it acts by attenuating the in utero stressors that otherwise program the fetus for metabolic syndrome in later life. Importantly, PCS also improved the adiposity, fasting glucose, and glucose tolerance in control offspring consuming the fixed-nutrient AIN-93G diet, suggesting that its choline content (1 g/kg) may be inadequate for optimal rodent health.
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