Developmental trajectories predictive of stillbirth in a longitudinal mouse model of fetal growth restriction

Anastasia Smolina1,2,3, Anum Rahman1,3, Lindsay Cahill4

  • 1Department of Medical Biophysics, University of Toronto, Toronto, Ontario, Canada.

Fetal growth restriction (FGR) secondary to placental insufficiency often leads to morbidity and mortality in the perinatal period. Fetal adaptations such as "brain sparing" blood flow redistribution offer some protection, but predicting whether a fetus in this state will survive is challenging. The goal of this research was to identify vascular responses predictive of stillbirth or hypoxia based on serial Doppler ultrasound measurement in a mouse model of FGR. We performed serial Doppler ultrasound observations of fetal blood flow redistribution in a murine model of FGR, where prolongation of pregnancy was induced pharmacologically with progesterone in 56 CD-1 mice. Observations were made at E18.5 (physiologic term), E19.5 (term +1), and E20.5 (term +2). Flow velocity waveforms were obtained from the middle cerebral artery (MCA), ductus arteriosus (DA), main pulmonary artery (MPA), ductus venosus (DV), umbilical artery (UA), and umbilical vein (UV). Following euthanasia, pimonidazole immunohistochemistry quantified tissue hypoxia. Among 56 pregnancies, the strongest predictor of stillbirth was low DA peak systolic velocity at E19.5 (<217 mm/s, P = 0.021, R2 = 0.52). Among survivors, cerebral hypoxia was predicted by elevated MCA peak systolic (>26.6 mm/s, P = 0.022, R2 = 0.59) and end-diastolic velocity (>10.1 mm/s, P = 0.043, R2 = 0.53, whereas high MPA flow (>0.73 mL/min, P = 0.029, R2 = 0.51) predicted hepatic hypoxia. Overall, fetuses with a weaker pulmonary blood flow redistribution response were found to have worse outcomes, despite cerebral vasodilation. This minimally invasive murine model offers valuable insights into this pathophysiology of FGR-related stillbirth and highlights the prognostic potential of assessing fetal brain flow and pulmonary perfusion in tandem during sonographic surveillance of high-risk pregnancies.NEW & NOTEWORTHY Fetal growth restriction, often caused by placental disease, is an important cause of fetal injury and stillbirth. Understanding how the fetus adapts under these conditions is key to predicting survival. Here we report physiological adaptations in a mouse of model of fetal growth restriction that predict the risk of stillbirth.

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