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Published on: June 29, 2013
Fetal Growth Restriction Alters Cerebellar Development in Fetal and Neonatal Sheep
Tamara Yawno1,2, Amy E Sutherland1, Yen Pham1
1The Ritchie Centre, Hudson Institute of Medical Research, Monash University, Clayton, VIC, Australia.
Insights
Fetal growth restriction (FGR) causes cerebellar neuropathology in lambs, including neuronal loss and oxidative stress, indicating antenatal injury. Interventions targeting neuroinflammation and oxidative stress are crucial for preventing long-term motor deficits.
Area of Science:
- Neuroscience
- Developmental Biology
- Obstetrics
Background:
- Fetal growth restriction (FGR) affects 5-10% of pregnancies, increasing perinatal risks.
- Cerebellar neuropathology in FGR due to chronic hypoxia and preterm birth risk is understudied.
Purpose of the Study:
- To investigate the effects of FGR-induced placental insufficiency on ovine cerebellar development.
- To examine cerebellar changes at three key developmental timepoints: 115 days gestational age (d GA), 124 d GA, and 1-day-old postnatal age.
Main Methods:
- FGR was induced in fetal sheep via single umbilical artery ligation (SUAL) at ~105 d GA.
- Cerebella were collected at 115 d GA, 124 d GA, and 1-day-old postnatal age for histopathological analysis.
- Immunohistochemistry was used to assess neuronal markers (NeuN, MAP), oxidative stress (8-OHdG), inflammation (Iba-1), and blood-brain barrier integrity (albumin, GFAP).
Main Results:
- FGR lambs showed an ~18% decrease in granule cell bodies and an ~80% reduction in neuronal branching.
- Significantly higher oxidative stress (8-OHdG) was observed in the molecular layer and white matter of FGR lambs.
- Aberrant neuronal structure was evident by 115 d GA, with increased inflammatory cells and compromised blood-brain barrier by 124 d GA.
Conclusions:
- Cerebellar injuries in FGR develop antenatally.
- Interventions targeting neuroinflammation and oxidative stress pathways are needed antenatally or perinatally.
- This research highlights the critical window for intervention to prevent motor and coordination deficits in FGR offspring.
Abstract:
Fetal growth restriction (FGR) complicates 5-10% of pregnancies and is associated with increased risks of perinatal morbidity and mortality. The development of cerebellar neuropathology in utero, in response to chronic fetal hypoxia, and over the period of high risk for preterm birth, has not been previously studied. Therefore, the objective of this study was to examine the effects of FGR induced by placental insufficiency on cerebellar development at three timepoints in ovine fetal and neonatal development: (1) 115 days gestational age (d GA), (2) 124 d GA, and (3) 1-day-old postnatal age. We induced FGR via single umbilical artery ligation (SUAL) at ~105 d GA in fetal sheep, term is ~147 d GA. Animals were sacrificed at 115 d GA, 124 d GA, and 1-day-old postnatal age; fetuses and lambs were weighed and the cerebellum collected for histopathology. FGR lambs demonstrated neuropathology within the cerebellum after birth, with a significant, ~18% decrease in the number of granule cell bodies (NeuN+ immunoreactivity) within the internal granular layer (IGL) and an ~80% reduction in neuronal extension and branching (MAP+ immunoreactivity) within the molecular layer (ML). Oxidative stress (8-OHdG+ immunoreactivity) was significantly higher in FGR lambs within the ML and the white matter (WM) compared to control lambs. The structural integrity of neurons was already aberrant in the FGR cerebellum at 115 d GA, and by 124 d GA, inflammatory cells (Iba-1+ immunoreactivity) were significantly upregulated and the blood-brain barrier (BBB) was compromised (Pearls, albumin, and GFAP+ immunoreactivity). We confirm that cerebellar injuries develop antenatally in FGR, and therefore, interventions to prevent long-term motor and coordination deficits should be implemented either antenatally or perinatally, thereby targeting neuroinflammatory and oxidative stress pathways.
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