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Author Spotlight: Studying the Impact of Maternal Dietary Deficiencies on Long-Term Offspring Health Outcomes
Published on: June 28, 2024
Supplementation with the Methyl Donor Betaine Prevents Congenital Defects Induced by Prenatal Alcohol Exposure
Ganga Karunamuni1, Megan M Sheehan2, Yong Qiu Doughman1
1Department of Pediatrics, Congenital Heart Collaborative, UH Rainbow Babies and Children's Hospital, School of Medicine, Case Western Reserve University, Cleveland, Ohio.
Insights
Betaine supplementation can prevent heart defects caused by prenatal alcohol exposure (PAE). This methyl donor normalizes DNA methylation and reduces congenital heart abnormalities in developing embryos, offering therapeutic potential for PAE-related birth defects.
Area of Science:
- Developmental biology
- Nutritional science
- Teratology
Background:
- Prenatal alcohol exposure (PAE) is prevalent and can cause life-threatening congenital heart defects (CHDs) in up to 40% of affected infants.
- Betaine, a methyl donor found in foods, has shown promise in ameliorating PAE-induced neurobehavioral deficits in animal models.
- The impact of betaine on heart development following PAE remains unknown.
Purpose of the Study:
- To investigate the potential of betaine in preventing alcohol-induced cardiac defects during embryonic development.
- To assess the effects of betaine on cardiac morphology and DNA methylation following ethanol exposure in an avian model.
Main Methods:
- Avian embryos were exposed to ethanol (EtOH) with or without betaine (5 μM) during early development.
- Cardiac morphology was quantified using optical coherence tomography at late developmental stages.
- DNA methylation levels were assessed via 5-methylcytosine immunofluorescent staining.
Main Results:
- Betaine supplementation increased late-stage embryo survival and reduced gross head and body defects compared to EtOH alone.
- Betaine significantly decreased the incidence of cardiac defects, including absent vessels, abnormal atrioventricular valves, and hypertrophic ventricles.
- Betaine cotreatment normalized great vessel diameters, interventricular septum thickness, and atrioventricular valve leaflet volumes, and restored EtOH-reduced DNA methylation levels.
Conclusions:
- This study provides the first evidence that betaine can effectively mitigate cardiac defects associated with PAE.
- Low-dose betaine demonstrates therapeutic potential for preventing PAE-induced birth defects.
- Findings suggest implications for prenatal nutrition policies, particularly for individuals unresponsive to folate supplementation.
Background:
Despite decades of public education about dire consequences of prenatal alcohol exposure (PAE), drinking alcohol during pregnancy remains prevalent. As high as 40% of live-born infants exposed to alcohol during gestation and diagnosed with fetal alcohol syndrome have congenital heart defects that can be life-threatening. In animal models, the methyl donor betaine, found in foods such as wheat bran, quinoa, beets, and spinach, ameliorated neurobehavioral deficits associated with PAE, but effects on heart development are unknown.
Methods:
Previously, we modeled a binge drinking episode during the first trimester in avian embryos. Here, we investigated whether betaine could prevent adverse effects of alcohol on heart development. Embryos exposed to ethanol (EtOH) with and without an optimal dose of betaine (5 μM) were analyzed at late developmental stages. Cardiac morphology parameters were rapidly analyzed and quantified using optical coherence tomography. DNA methylation at early stages was detected by immunofluorescent staining for 5-methylcytosine in sections of embryos treated with EtOH or cotreated with betaine.
Results:
Compared to EtOH-exposed embryos, betaine-supplemented embryos had higher late-stage survival rates and fewer gross head and body defects than seen after alcohol exposure alone. Betaine also reduced the incidence of late-stage cardiac defects such as absent vessels, abnormal atrioventricular (AV) valves, and hypertrophic ventricles. Furthermore, betaine cotreatment brought measurements of great vessel diameters, interventricular septum thickness, and AV leaflet volumes in betaine-supplemented embryos close to control values. Early-stage 5-methycytosine staining revealed that DNA methylation levels were reduced by EtOH exposure and normalized by co-administration with betaine.
Conclusions:
This is the first study demonstrating efficacy of the methyl donor betaine in alleviating cardiac defects associated with PAE. These findings highlight the therapeutic potential of low-concentration betaine doses in mitigating PAE-induced birth defects and have implications for prenatal nutrition policies, especially for women who may not be responsive to folate supplementation.
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