Completed Pregnancy, Children & Inherited Conditions Heart, Stroke & Blood

Cardiovascular dysfunction in the hypoxic fetus: intervention by mitochondria-targeted antioxidants (renewal)

In plain English

AI plain-English summary

A fetus starved of oxygen in the womb may develop a weakened heart before birth. Chronic fetal hypoxia—a common complication in high-risk pregnancies—triggers oxidative stress from malfunctioning mitochondria, which can injure the heart muscle. Until now, researchers could not continuously monitor fetal cardiovascular function in a living pregnancy, leaving the mechanisms behind this damage largely unknown. This project uses a sheep model of hypoxic pregnancy, combined with wireless recording of fetal heart function, new mass spectrometry techniques to measure mitochondrial activity, and metabolomics to track molecular changes. The team aims to prove that a mitochondria-targeted antioxidant therapy can protect the fetal heart from this injury. If successful, the work could lead to a prenatal treatment—administered to the mother—that prevents heart damage before birth. This is fundamental science: it tests a causal mechanism in a living system, not a clinical trial. But understanding how oxygen deprivation weakens the fetal heart could eventually shift prenatal care from monitoring damage to preventing it, reducing the lifelong burden of early-life heart disease.

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Heart disease can start before birth. In addition to genetic conditions, an adverse prenatal environment may increase the risk of fetal cardiac dysfunction in late gestation. How this happens has remained largely an enigma because of our inability to record and test continuous fetal cardiovascular function in vivo. Here, we combine technological and molecular advances never possible before to study cardiovascular mechanisms in the fetus in vivo in ovine pregnancy complicated by chronic fetal hypoxia - a common consequence of sub-optimal pregnancy. We hypothesise that chronic fetal hypoxia weakens fetal cardiovascular defences and renders the fetal heart susceptible to injury. Mechanisms involved include fetal mitochondria-derived oxidative stress with succinate accumulation. Therefore, mitochondria-targeted antioxidant therapy is cardio-protective. We adopt an integrative approach, combining unique facilities to study hypoxic pregnancy in sheep with novel wireless continuous recording of in vivo fetal cardiovascular function, novel fetal mitochondria ratiometric mass spectrometry and novel fetal metabolomics. The programme of work exploits the unique expertise of three senior co-applicants with established track records in fetal cardiovascular physiology, mitochondrial biology and molecular mechanisms.

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Researchers

Dino Giussani (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Mitochondrial targeted antioxidant therapy against programming of cardiovascular disease by developmental hypoxia
Developmental programming of ventricular arrhythmia by foetal hypoxia
Hypoxia and Reactive Oxygen Species in Fetal Cardiovascular Function
Maladaptive cardiac remodelling in adult offspring from hypoxic pregnancies: Role of cellular calcium homeostasis
Antioxidant Strategies to Prevent Programmed Cardiovascular Dysfunction by Isolated Developmental Hypoxia

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Programme Grant

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