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Updated: May 9, 2026

Human Fetal Blood Flow Quantification with Magnetic Resonance Imaging and Motion Compensation
Published on: January 7, 2021
Fetal circulation in left-sided congenital heart disease measured by cardiovascular magnetic resonance: a
Bahiyah Al Nafisi1, Joshua F P van Amerom, Jonathan Forsey
1Department of Diagnostic Imaging, Hospital for Sick Children, University of Toronto, Toronto, Canada.
Insights
Cardiac magnetic resonance (CMR) can now measure fetal circulation in congenital heart disease (CHD). This study links blood flow distribution to fetal development and outcomes in fetuses with left-sided CHD.
Area of Science:
- Cardiology
- Fetal Medicine
- Medical Imaging
Background:
- Fetal blood flow distribution in congenital heart disease (CHD) impacts growth and outcomes but is hard to study.
- Phase contrast cardiac magnetic resonance (CMR) is a novel method for assessing fetal circulation.
Purpose of the Study:
- To measure fetal circulation distribution in left-sided CHD using CMR.
- To investigate the relationship between fetal hemodynamics and lung/brain development.
- To explore links between blood flow and postnatal outcomes.
Main Methods:
- Fetal CMR and echocardiography were performed on 22 fetuses with suspected left-sided CHD and 12 controls.
- Measurements were taken at a mean gestational age of 35 weeks.
Main Results:
- Fetuses with left-sided CHD had 19% lower combined ventricular output than controls.
- Pulmonary venous obstruction was associated with significantly lower pulmonary blood flow.
- Reduced ascending aortic and foramen ovale flow were observed in specific left-sided CHD cases.
- Six fetuses with CHD had brain weights at or below the 5th centile.
Conclusions:
- CMR is feasible for measuring fetal circulation in late-gestation left-sided CHD.
- Fetal blood flow distribution is linked to postnatal course and development.
- CMR enhances understanding of fetal circulation pathophysiology and may aid perinatal management.
Background:
The distribution of blood flow in fetuses with congenital heart disease (CHD) is likely to influence fetal growth, organ development, and postnatal outcome, but has previously been difficult to study. We present the first measurements of the distribution of the fetal circulation in left-sided CHD made using phase contrast cardiac magnetic resonance (CMR).
Methods:
Twenty-two fetuses with suspected left-sided CHD and twelve normal controls underwent fetal CMR and echocardiography at a mean of 35 weeks gestation (range 30-39 weeks).
Results:
Fetuses with left-sided CHD had a mean combined ventricular output 19% lower than normal controls (p < 0.01). In fetuses with left-sided CHD with pulmonary venous obstruction, pulmonary blood flow was significantly lower than in those with left-sided CHD without pulmonary venous obstruction (p < 0.01). All three fetuses with pulmonary venous obstruction had pulmonary lymphangectasia by fetal CMR and postnatal histology. Fetuses with small but apex forming left ventricles with left ventricular outflow tract or aortic arch obstruction had reduced ascending aortic and foramen ovale flow compared with normals (p < 0.01). Fetuses with left-sided CHD had more variable superior vena caval flows than normal controls (p < 0.05). Six fetuses with CHD had brain weights at or below the 5th centile for gestational age, while none of the fetuses in the normal control group had brain weights below the 25th centile.
Conclusions:
Measurement of the distribution of the fetal circulation in late gestation left-sided CHD is feasible with CMR. We demonstrated links between fetal blood flow distribution and postnatal course, and examined the relationship between fetal hemodynamics and lung and brain development. CMR enhances our understanding of pathophysiology of the fetal circulation and, with more experience, may help with the planning of perinatal management and fetal counselling.
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