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Published on: January 7, 2018
Neurovascular Unit Alterations in the Growth-Restricted Newborn Are Improved Following Ibuprofen Treatment
Kirat K Chand1, Stephanie M Miller1, Gary J Cowin2
1UQ Centre for Clinical Research, Faculty of Medicine, The University of Queensland, Brisbane, QLD, Australia.
Insights
Ibuprofen, an anti-inflammatory drug, can protect the developing brain in fetal growth restriction (FGR) by reducing inflammation and restoring the neurovascular unit (NVU). This may prevent neurodevelopmental disorders in FGR infants.
Area of Science:
- Neuroscience
- Developmental Biology
- Pharmacology
Background:
- Fetal growth restriction (FGR) impairs infant neurodevelopment, leading to disorders like cerebral palsy.
- Inflammation and neurovascular unit (NVU) disruption are implicated in FGR-related brain damage.
- No current treatments protect the FGR newborn brain.
Purpose of the Study:
- To investigate if ibuprofen, an anti-inflammatory agent, can mitigate NVU disruption and brain impairment in FGR newborns.
- To assess ibuprofen's effects on inflammation and NVU integrity in a preclinical FGR piglet model.
Main Methods:
- Utilized a preclinical FGR piglet model.
- Administered ibuprofen orally for 3 days post-birth.
- Assessed brain inflammation, glial cell morphology, blood-brain barrier integrity (IgG/albumin leakage), and blood vessel density.
- Evaluated astrocytic end-feet interaction with blood vessels and T-cell infiltration.
Main Results:
- FGR brains exhibited a proinflammatory state, glial changes, blood-brain barrier disruption, and reduced blood vessel density.
- Ibuprofen treatment reduced inflammation, decreased activated microglia, and enhanced astrocyte-blood vessel interaction.
- Ibuprofen attenuated plasma protein leakage, restored astrocytic end-feet interaction, and reduced T-cell infiltration in FGR piglets.
Conclusions:
- Postnatal ibuprofen administration modulates inflammation, strengthening NVU integrity in FGR brains.
- Restoring NVU function improves the FGR brain microenvironment, offering potential neuroprotection.
- Ibuprofen shows promise as a therapeutic agent to prevent neurodevelopmental deficits in FGR infants.
Abstract:
The developing brain is particularly vulnerable to foetal growth restriction (FGR) and abnormal neurodevelopment is common in the FGR infant ranging from behavioural and learning disorders to cerebral palsy. No treatment exists to protect the FGR newborn brain. Recent evidence suggests inflammation may play a key role in the mechanism responsible for the progression of brain impairment in the FGR newborn, including disruption to the neurovascular unit (NVU). We explored whether ibuprofen, an anti-inflammatory drug, could reduce NVU disruption and brain impairment in the FGR newborn. Using a preclinical FGR piglet model, ibuprofen was orally administered for 3 days from birth. FGR brains demonstrated a proinflammatory state, with changes to glial morphology (astrocytes and microglia), and blood-brain barrier disruption, assessed by IgG and albumin leakage into the brain parenchyma and a decrease in blood vessel density. Loss of interaction between astrocytic end-feet and blood vessels was evident where plasma protein leakage was present, suggestive of structural deficits to the NVU. T-cell infiltration was also evident in the parenchyma of FGR piglet brains. Ibuprofen treatment reduced the pro-inflammatory response in FGR piglets, reducing the number of activated microglia and enhancing astrocyte interaction with blood vessels. Ibuprofen also attenuated plasma protein leakage, regained astrocytic end-feet interaction around vessels, and decreased T-cell infiltration into the FGR brain. These findings suggest postnatal administration of ibuprofen modulates the inflammatory state, allowing for stronger interaction between vasculature and astrocytic end-feet to restore NVU integrity. Modulation of the NVU improves the FGR brain microenvironment and may be key to neuroprotection.

