Related Experiment Video
Updated: Jan 6, 2026

Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Say NO to ROS: Their Roles in Embryonic Heart Development and Pathogenesis of Congenital Heart Defects in Maternal
Anish Engineer1, Tana Saiyin2, Elizabeth R Greco3
1Department of Physiology and Pharmacology, Schulich School of Medicine and Dentistry, Western University, London, Ontario, ON, N6A 5C1, Canada. aengine@uwo.ca.
Insights
Maternal diabetes significantly increases congenital heart defect (CHD) risk in offspring. Restoring nitric oxide (NO) signaling and reducing oxidative stress can prevent these heart defects.
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Endocrinology
Background:
- Congenital heart defects (CHDs) are common and serious birth defects.
- Pregestational maternal diabetes is a significant risk factor for CHDs, increasing risk over four-fold.
- Rising diabetes prevalence in women of childbearing age necessitates understanding CHD mechanisms and prevention.
Purpose of the Study:
- To review recent data on pregestational diabetes-induced CHDs.
- To elucidate the roles of nitric oxide (NO) and reactive oxygen species (ROS) in embryonic heart development.
- To explore potential preventative strategies for CHDs in offspring of diabetic mothers.
Main Methods:
- Review of experimental animal models of pregestational diabetes-induced CHDs.
- Analysis of molecular mechanisms, including nitric oxide synthase (eNOS) uncoupling and oxidative stress.
- Evaluation of preventative strategies like sapropterin, antioxidants, and maternal exercise.
Main Results:
- Pregestational diabetes leads to significant CHDs in offspring, with over 50% exhibiting malformations.
- Imbalance in nitric oxide (NO) and reactive oxygen species (ROS) signaling is a key driver of diabetes-induced CHDs.
- Embryonic hearts from diabetic dams show eNOS uncoupling and increased oxidative stress.
Conclusions:
- Maternal diabetes poses a substantial risk for congenital heart defects.
- Nitric oxide (NO) and ROS signaling are critical in embryonic cardiogenesis and CHD pathogenesis.
- Interventions improving eNOS function and reducing oxidative stress, such as sapropterin, antioxidants, and exercise, show promise in preventing CHDs.
Abstract:
Congenital heart defects (CHDs) are the most prevalent and serious birth defect, occurring in 1% of all live births. Pregestational maternal diabetes is a known risk factor for the development of CHDs, elevating the risk in the child by more than four-fold. As the prevalence of diabetes rapidly rises among women of childbearing age, there is a need to investigate the mechanisms and potential preventative strategies for these defects. In experimental animal models of pregestational diabetes induced-CHDs, upwards of 50% of offspring display congenital malformations of the heart, including septal, valvular, and outflow tract defects. Specifically, the imbalance of nitric oxide (NO) and reactive oxygen species (ROS) signaling is a major driver of the development of CHDs in offspring of mice with pregestational diabetes. NO from endothelial nitric oxide synthase (eNOS) is crucial to cardiogenesis, regulating various cellular and molecular processes. In fact, deficiency in eNOS results in CHDs and coronary artery malformation. Embryonic hearts from diabetic dams exhibit eNOS uncoupling and oxidative stress. Maternal treatment with sapropterin, a cofactor of eNOS, and antioxidants such as N-acetylcysteine, vitamin E, and glutathione as well as maternal exercise have been shown to improve eNOS function, reduce oxidative stress, and lower the incidence CHDs in the offspring of mice with pregestational diabetes. This review summarizes recent data on pregestational diabetes-induced CHDs, and offers insights into the important roles of NO and ROS in embryonic heart development and pathogenesis of CHDs in maternal diabetes.
Related Concept Videos
Pathophysiology of Diabetes
Type 1 diabetes is characterized by autoimmune-mediated destruction of pancreatic β cells, with environmental factors potentially triggering this process in genetically susceptible individuals. Despite many not having a family history, certain genes increase susceptibility,...
Diabetes Mellitus: Type 2 and Gestational
Regulation of Angiogenesis and Blood Supply

