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Maternal Pre-Existing Diabetes: A Non-Inherited Risk Factor for Congenital Cardiopathies
Stéphanie Ibrahim1, Bénédicte Gaborit2, Marien Lenoir3
1Aix Marseille University, INSERM, INRAE, C2VN, 13005 Marseille, France.
Insights
Maternal diabetes during pregnancy increases congenital heart defect risks. Hyperglycemia may cause cardiac abnormalities through genetic, epigenetic, and oxidative stress pathways, necessitating further research for prevention.
Area of Science:
- Cardiology
- Developmental Biology
- Genetics
Background:
- Congenital heart defects (CHDs) are common birth defects with complex causes.
- Genetic factors explain only a portion of CHDs, highlighting environmental influences.
- Maternal pregestational diabetes elevates the risk of congenital heart disease.
Purpose of the Study:
- To review molecular mechanisms of cardiac development affected by maternal hyperglycemia.
- To summarize experimental models for studying pregestational diabetes effects on fetal hearts.
- To propose new strategies for understanding and preventing diabetes-related CHDs.
Main Methods:
- Literature review of molecular mechanisms in cardiac development under hyperglycemic conditions.
- Analysis of in vivo and in vitro experimental models of pregestational diabetes.
- Synthesis of current knowledge and identification of research gaps.
Main Results:
- Hyperglycemia is hypothesized as a key teratogen in diabetic pregnancies.
- Potential mechanisms include direct genetic/epigenetic dysregulation and reactive oxygen species (ROS) production.
- Existing models provide insights but require further refinement.
Conclusions:
- Understanding molecular pathways affected by maternal hyperglycemia is crucial for CHD research.
- Improved experimental models are needed to elucidate the precise mechanisms.
- Developing novel prevention strategies for CHDs in offspring of diabetic mothers is a key goal.
Abstract:
Congenital heart defects (CHDs) are the most common form of birth defects in humans. They occur in 9 out of 1000 live births and are defined as structural abnormalities of the heart. Understanding CHDs is difficult due to the heterogeneity of the disease and its multifactorial etiology. Advances in genomic sequencing have made it possible to identify the genetic factors involved in CHDs. However, genetic origins have only been found in a minority of CHD cases, suggesting the contribution of non-inherited (environmental) risk factors to the etiology of CHDs. Maternal pregestational diabetes is associated with a three- to five-fold increased risk of congenital cardiopathies, but the underlying molecular mechanisms are incompletely understood. According to current hypotheses, hyperglycemia is the main teratogenic agent in diabetic pregnancies. It is thought to induce cell damage, directly through genetic and epigenetic dysregulations and/or indirectly through production of reactive oxygen species (ROS). The purpose of this review is to summarize key findings on the molecular mechanisms altered in cardiac development during exposure to hyperglycemic conditions in utero. It also presents the various in vivo and in vitro techniques used to experimentally model pregestational diabetes. Finally, new approaches are suggested to broaden our understanding of the subject and develop new prevention strategies.
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