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Characterization and Isolation of Mouse Primary Microglia by Density Gradient Centrifugation
Published on: February 16, 2018
Role of microglia in a mouse model of paediatric traumatic brain injury
Vibol Chhor1, Raffaella Moretti2, Tifenn Le Charpentier3
1PROTECT, INSERM, Unversité Paris Diderot, Sorbonne Paris Cité, Paris, France; PremUP, Paris, France; Department of Anesthesia and Intensive Care, Georges Pompidou European Hospital, Paris, France.
Abstract:
The cognitive and behavioural deficits caused by traumatic brain injury (TBI) to the immature brain are more severe and persistent than TBI in the mature brain. Understanding this developmental sensitivity is critical as children under four years of age sustain TBI more frequently than any other age group. Microglia (MG), resident immune cells of the brain that mediate neuroinflammation, are activated following TBI in the immature brain. However, the type and temporal profile of this activation and the consequences of altering it are still largely unknown. In a mouse model of closed head weight drop paediatric brain trauma, we characterized i) the temporal course of total cortical neuroinflammation and the phenotype of ex vivo isolated CD11B-positive microglia/macrophage (MG/MΦ) using a battery of 32 markers, and ii) neuropathological outcome 1 and 5days post-injury. We also assessed the effects of targeting MG/MΦ activation directly, using minocycline a prototypical microglial activation antagonist, on these processes and outcome. TBI induced a moderate increase in both pro- and anti-inflammatory cytokines/chemokines in the ipsilateral hemisphere. Isolated cortical MG/MΦ expressed increased levels of markers of endogenous reparatory/regenerative and immunomodulatory phenotypes compared with shams. Blocking MG/MΦ activation with minocycline at the time of injury and 1 and 2days post-injury had only transient protective effects, reducing ventricular dilatation and cell death 1day post-injury but having no effect on injury severity at 5days. This study demonstrates that, unlike in adults, the role of MG/MΦ in injury mechanisms following TBI in the immature brain may not be negative. An improved understanding of MG/MΦ function in paediatric TBI could support translational efforts to design therapeutic interventions.
Insights
Traumatic brain injury (TBI) in children shows unique microglial activation. Targeting microglia with minocycline offered only temporary protection, suggesting a complex role in immature brain injury.
Area of Science:
- Neuroscience
- Immunology
- Pediatric Traumatology
Background:
- Traumatic brain injury (TBI) in immature brains causes more severe deficits than in adults.
- Children under four have the highest TBI incidence.
- Microglia (MG), the brain's immune cells, are activated after pediatric TBI, but their role is unclear.
Purpose of the Study:
- To characterize the temporal neuroinflammation and microglial phenotype post-TBI in immature mice.
- To assess neuropathological outcomes at 1 and 5 days post-injury.
- To evaluate the therapeutic effects of minocycline on microglial activation and outcomes.
Main Methods:
- A closed head weight drop mouse model of pediatric TBI was used.
- Cortical neuroinflammation and microglia/macrophage (MG/MΦ) phenotypes (32 markers) were analyzed.
- Minocycline was administered to block MG/MΦ activation.
Main Results:
- TBI induced moderate pro- and anti-inflammatory responses.
- Isolated MG/MΦ showed reparatory and immunomodulatory markers.
- Minocycline provided transient protection, reducing cell death and ventricular dilatation at 1 day but not 5 days post-injury.
Conclusions:
- Microglial/macrophage roles in immature brain TBI may differ from adults and might not be solely detrimental.
- Understanding MG/MΦ function is crucial for developing pediatric TBI therapies.

