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Updated: Mar 16, 2026

Fetal Mouse Cardiovascular Imaging Using a High-frequency Ultrasound 30/45MHZ System
Published on: May 5, 2018
Transgenerational cardiology: One way to a baby's heart is through the mother
Patrick Y Jay1, Ehiole Akhirome2, Rachel A Magnan2
1Departments of Pediatrics, Washington University School of Medicine, Box 8208, 660 South Euclid Avenue, St. Louis, MO, 63110, USA; Departments of Genetics, Washington University School of Medicine, Box 8208, 660 South Euclid Avenue, St. Louis, MO, 63110, USA.
Insights
Maternal age increases congenital heart defect risk, but maternal exercise can mitigate this risk. Targeting maternal pathways offers a novel prevention strategy for congenital heart disease, even with embryonic genetic mutations.
Area of Science:
- Developmental biology
- Genetics
- Reproductive medicine
Background:
- Congenital heart disease (CHD) is a significant cause of childhood mortality.
- Current prevention strategies are limited due to the complexity of targeting embryonic genetic mutations.
- Identifying environmental and genetic risk modifiers is crucial for alternative prevention approaches.
Purpose of the Study:
- To investigate factors modifying the risk of congenital heart defects.
- To explore the role of maternal age and genetics in CHD development.
- To identify potential preventative interventions for CHD.
Main Methods:
- Utilized an "experimental epidemiologic" approach using inbred mouse strain crosses.
- Analyzed over 2000 Nkx2-5(+/-) offspring to identify risk modifiers.
- Performed reciprocal ovarian transplants to distinguish maternal age from oocyte age effects.
- Investigated the impact of maternal voluntary exercise on heart defect incidence.
Main Results:
- Discovered a significant maternal-age associated risk for heart defects, mirroring human observations.
- Demonstrated that maternal age, not oocyte age, correlates with heart defect incidence, implicating a maternal pathway.
- Showed that maternal genetic background influences the risk.
- Found that voluntary maternal exercise significantly mitigates the risk of heart defects.
Conclusions:
- Congenital heart disease risk can be influenced by maternal factors independent of embryonic genetics.
- Targeting maternal pathways presents a viable strategy for preventing CHD.
- Maternal exercise is a potential preventative intervention for CHD.
- Further research, including unbiased genetic approaches, is needed to elucidate the underlying mechanisms for broad clinical application.
Abstract:
Despite decades of progress, congenital heart disease remains a major cause of mortality and suffering in children and young adults. Prevention would be ideal, but formidable biological and technical hurdles face any intervention that seeks to target the main causes, genetic mutations in the embryo. Other factors, however, significantly modify the total risk in individuals who carry mutations. Investigation of these factors could lead to an alternative approach to prevention. To define the risk modifiers, our group has taken an "experimental epidemiologic" approach via inbred mouse strain crosses. The original intent was to map genes that modify an individual's risk of heart defects caused by an Nkx2-5 mutation. During the analysis of >2000 Nkx2-5(+/-) offspring from one cross we serendipitously discovered a maternal-age associated risk, which also exists in humans. Reciprocal ovarian transplants between young and old mothers indicate that the incidence of heart defects correlates with the age of the mother and not the oocyte, which implicates a maternal pathway as the basis of the risk. The quantitative risk varies between strain backgrounds, so maternal genetic polymorphisms determine the activity of a factor or factors in the pathway. Most strikingly, voluntary exercise by the mother mitigates the risk. Therefore, congenital heart disease can in principle be prevented by targeting a maternal pathway even if the embryo carries a causative mutation. Further mechanistic insight is necessary to develop an intervention that could be implemented on a broad scale, but the physiology of maternal-fetal interactions, aging, and exercise are notoriously complex and undefined. This suggests that an unbiased genetic approach would most efficiently lead to the relevant pathway. A genetic foundation would lay the groundwork for human studies and clinical trials.
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