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Wnt5a-Flt1 activation contributes to preterm altered cerebral angiogenesis after prenatal inflammation
Han Jiangxue1, Yang Liling1, Xu Fang1
1Department of Neonatology, Guangdong Key Clinical Specialty, Guangdong Women and Children Hospital, Guangzhou, China.
Insights
Prenatal inflammation exposure in preterm infants increases Wnt5a and Flt1 levels, leading to disordered cerebral angiogenesis. This study links intrauterine inflammation to altered brain vessel development via Wnt5a-Flt1 signaling in microglial cells.
Area of Science:
- Neonatal Neurology
- Developmental Biology
- Neuroinflammation
Background:
- Intraventricular hemorrhage (IVH) is a significant cause of morbidity and mortality in preterm infants.
- Prenatal exposure to inflammation is a known risk factor for brain injury and IVH in neonates.
Purpose of the Study:
- To investigate the impact of intrauterine inflammation on cerebral angiogenesis in preterm neonates.
- To elucidate the underlying mechanisms, focusing on Wnt5a, Flt1, and VEGF-A signaling pathways.
Main Methods:
- Measured Wnt5a, Flt1, and VEGF-A levels in human cord blood serum.
- Utilized a rat model of preterm prenatal inflammation exposure.
- Analyzed cerebral angiogenesis using immunohistochemistry, immunofluorescence, and western blotting.
Main Results:
- Elevated Wnt5a and Flt1, and decreased VEGF-A levels in cord blood from infants exposed to intrauterine inflammation.
- Prenatal inflammation in rats led to increased microglial infiltration and reduced cerebral vessel area and diameter.
- Wnt5a expression in microglial cells increased post-inflammation, correlating negatively with cerebral vessel area.
Conclusions:
- Intrauterine inflammation disrupts cerebral angiogenesis in preterm neonates.
- Increased Wnt5a-Flt1 activation in microglial cells is a key mechanism underlying this disruption.
Objective:
Intraventricular hemorrhage (IVH) causes morbidity and mortality in preterm infants and prenatal exposure to inflammation contributes to brain injury. Moreover, prenatal exposure to severe inflammation increases the risk of IVH in preterm neonates. The current study investigated whether intrauterine exposure to inflammation affects cerebral angiogenesis and its underlying mechanisms.
Methods:
Wnt5a, flt1, and vascular endothelial growth factor (VEGF)-A levels in cord blood serum (stored in a bio-bank) of the enrolled patients were measured via enzyme-linked immunosorbent assay. A preterm prenatal inflammation exposure model was established in rats by intraperitoneal injection intraperitoneally during pregnancy. Angiogenesis of cerebral tissue was analyzed using immunohistochemistry. Wnt5a, flt1, and VEGF-A expression levels were measured via immunohistochemistry, immunofluorescence, or western blotting. The correlation between Wnt5a and flt1 expression and the cerebral vessel area was also analyzed.
Results:
The Wnt5a and flt1 levels in the cord blood serum were significantly higher in the amnionitis group than in the non-amnionitis group. The VEGF-A level in the cord blood serum was significantly lower in the amnionitis group. In the rat model, preterm rats in the prenatal inflammation group exhibited increased microglial cell infiltration and decreased vessel area and diameter in the cerebral tissue compared to the control group. Wnt5a was located in microglial cells, and Wnt5a and flt1 expression in brain tissue significantly increased after prenatal lipopolysaccharide (LPS) exposure. VEGF-A expression declined after prenatal LPS exposure. The cerebral vessel area was negatively correlated with Wnt5a and flt1 expression.
Conclusion:
Disordered cerebral angiogenesis is associated with increased Wnt5a-Flt1 activation in microglial cells after exposure to intrauterine inflammation.
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