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Gene Environment Interactions in the Etiology of Neural Tube Defects
Richard H Finnell1,2, Carlo Donato Caiaffa2, Sung-Eun Kim3
1Department of Molecular and Human Genetics and Medicine, Center for Precision Environmental Health, Baylor College of Medicine, Houston, TX, United States.
Insights
Environmental factors and genetic susceptibility interact to cause birth defects, particularly neural tube defects (NTDs). This review examines maternal nutrition and teratogens, like valproic acid, to understand NTD etiology.
Area of Science:
- Developmental Biology
- Teratology
- Genetics
Background:
- Congenital malformations are a leading cause of infant mortality, with neural tube defects (NTDs) being a significant concern.
- While genetic factors are implicated in approximately 70% of NTDs, the intrauterine environment and gene-environment interactions play crucial roles.
- Despite public health initiatives like folic acid fortification, NTDs continue to affect thousands of newborns annually.
Purpose of the Study:
- To review the etiology of NTDs, focusing on factors beyond folic acid.
- To explore the role of maternal nutritional status and other environmental teratogens in NTD development.
- To utilize animal models, specifically valproic acid exposure, to investigate gene-environment interactions in NTD pathogenesis.
Main Methods:
- Review of existing literature on NTDs, maternal nutrition, and environmental teratogens.
- Analysis of data on the prevalence and impact of NTDs globally and in the United States.
- Examination of animal models, including valproic acid (VPA)-induced teratogenesis, to study genetic susceptibility factors.
Main Results:
- Maternal nutritional deficiencies (B vitamins, one-carbon metabolites) and exposure to teratogens (pollutants, certain pharmaceuticals, hyperthermia) are significant contributors to NTDs.
- Valproic acid serves as a model teratogen for studying gene-environment interactions in NTD development.
- Genetic interrogation of model systems reveals susceptibility factors influencing NTD risk.
Conclusions:
- NTDs result from a complex interplay between inherited genetic predispositions and environmental exposures during embryonic development.
- Understanding these gene-environment interactions is critical for developing effective prevention and intervention strategies for birth defects.
- Further research into maternal health, environmental factors, and genetic susceptibility is needed to reduce the burden of NTDs.
Abstract:
Human structural congenital malformations are the leading cause of infant mortality in the United States. Estimates from the United States Center for Disease Control and Prevention (CDC) determine that close to 3% of all United States newborns present with birth defects; the worldwide estimate approaches 6% of infants presenting with congenital anomalies. The scientific community has recognized for decades that the majority of birth defects have undetermined etiologies, although we propose that environmental agents interacting with inherited susceptibility genes are the major contributing factors. Neural tube defects (NTDs) are among the most prevalent human birth defects and as such, these malformations will be the primary focus of this review. NTDs result from failures in embryonic central nervous system development and are classified by their anatomical locations. Defects in the posterior portion of the neural tube are referred to as meningomyeloceles (spina bifida), while the more anterior defects are differentiated as anencephaly, encephalocele, or iniencephaly. Craniorachischisis involves a failure of the neural folds to elevate and thus disrupt the entire length of the neural tube. Worldwide NTDs have a prevalence of approximately 18.6 per 10,000 live births. It is widely believed that genetic factors are responsible for some 70% of NTDs, while the intrauterine environment tips the balance toward neurulation failure in at risk individuals. Despite aggressive educational campaigns to inform the public about folic acid supplementation and the benefits of providing mandatory folic acid food fortification in the United States, NTDs still affect up to 2,300 United States births annually and some 166,000 spina bifida patients currently live in the United States, more than half of whom are now adults. Within the context of this review, we will consider the role of maternal nutritional status (deficiency states involving B vitamins and one carbon analytes) and the potential modifiers of NTD risk beyond folic acid. There are several well-established human teratogens that contribute to the population burden of NTDs, including: industrial waste and pollutants [e.g., arsenic, pesticides, and polycyclic aromatic hydrocarbons (PAHs)], pharmaceuticals (e.g., anti-epileptic medications), and maternal hyperthermia during the first trimester. Animal models for these teratogens are described with attention focused on valproic acid (VPA; Depakote). Genetic interrogation of model systems involving VPA will be used as a model approach to discerning susceptibility factors that define the gene-environment interactions contributing to the etiology of NTDs.
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