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Updated: Feb 9, 2026

In Silico Clinical Trials for Cardiovascular Disease
Published on: May 27, 2022
Implication of Oxidative Stress in Fetal Programming of Cardiovascular Disease
Pilar Rodríguez-Rodríguez1, David Ramiro-Cortijo1, Cynthia G Reyes-Hernández1
1Departamento de Fisiología, Facultad de Medicina, Universidad Autónoma de Madrid, Madrid, Spain.
Insights
Suboptimal fetal development, leading to low birth weight (LBW), increases adult cardiovascular disease (CVD) risk. Oxidative stress during fetal life plays a key role in this developmental programming of CVD.
Area of Science:
- Cardiovascular Science
- Developmental Biology
- Perinatal Medicine
Background:
- Cardiovascular disease (CVD) risk is influenced by genetics, lifestyle, and fetal development.
- Suboptimal intrauterine conditions can lead to low birth weight (LBW) and increased adult CVD susceptibility.
- This phenomenon is known as the Developmental Origins of Health and Disease (DOHaD) or fetal programming of CVD.
Purpose of the Study:
- To review the role of oxidative stress in fetal programming of CVD.
- To examine evidence from human and animal studies on oxidative balance alterations.
- To highlight the impact of the placenta and mitochondria in DOHaD.
Main Methods:
- Review of human epidemiological studies linking oxidative stress, LBW, and intrauterine conditions.
- Analysis of experimental animal models investigating redox alterations in cardiovascular control organs.
- Synthesis of current knowledge on oxidative stress mechanisms in DOHaD.
Main Results:
- Human studies show a link between oxidative stress, placental function, and LBW.
- Animal models demonstrate specific redox alterations in cardiovascular control systems due to fetal stress.
- Mitochondrial dysfunction is an emerging factor in fetal programming of CVD.
Conclusions:
- Oxidative stress is a critical mediator in the fetal programming of cardiovascular disease.
- Both placental function and mitochondrial alterations contribute to long-term CVD risk.
- Understanding these mechanisms is crucial for preventing adult cardiovascular disease.
Abstract:
Lifestyle and genetic background are well known risk factors of cardiovascular disease (CVD). A third contributing factor is suboptimal fetal development, due to nutrient or oxygen deprivation, placental insufficiency, or exposure to toxic substances. The fetus adapts to adverse intrauterine conditions to ensure survival; the immediate consequence is low birth weight (LBW) and the long-term effect is an increased susceptibility to develop CVD in adult life. This process is known as Developmental Origins of Health and Disease (DOHaD) or fetal programming of CVD. The influence of fetal life for the future cardiovascular health of the individual has been evidenced by numerous epidemiologic studies in populations suffering from starvation during intrauterine life. Furthermore, experimental animal models have provided support and enabled exploring the underlying mechanisms. Oxidative stress seems to play a central role in fetal programming of CVD, both in the response of the feto-placental unit to the suboptimal intrauterine environment and in the alterations of physiologic systems of cardiovascular control, ultimately leading to disease. This review aims to summarize current knowledge on the alterations in oxidative balance in response to fetal stress factors covering two aspects. Firstly, the evidence from human studies of the implication of oxidative stress in LBW induced by suboptimal conditions during intrauterine life, emphasizing the role of the placenta. In the second part we summarize data on specific redox alterations in key cardiovascular control organs induced by exposure to known stress factors in experimental animals and discuss the emerging role of the mitochondria.
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