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Updated: Mar 10, 2026

Primary Microglia Isolation from Mixed Glial Cell Cultures of Neonatal Rat Brain Tissue
Published on: August 15, 2012
Microglia activation in a pediatric rabbit model of tuberculous meningitis
Elizabeth W Tucker1,2,3,4,5, Supriya Pokkali2,3,6, Zhi Zhang1,4
1Department of Anesthesiology and Critical Care Medicine, Division of Pediatric Anesthesiology and Critical Care Medicine, Johns Hopkins University School of Medicine, Baltimore, MD 21287, USA.
Abstract:
Central nervous system (CNS) tuberculosis (TB) is the most severe form of extra-pulmonary TB and disproportionately affects young children where the developing brain has a unique host response. New Zealand white rabbits were infected with Mycobacterium tuberculosis via subarachnoid inoculation at postnatal day 4-8 and evaluated until 4-6 weeks post-infection. Control and infected rabbit kits were assessed for the development of neurological deficits, bacterial burden, and postmortem microbiologic and pathologic changes. The presence of meningitis and tuberculomas was demonstrated histologically and by in vivo magnetic resonance imaging (MRI). The extent of microglial activation was quantified by in vitro immunohistochemistry as well as non-invasive in vivo imaging of activated microglia/macrophages with positron emission tomography (PET). Subarachnoid infection induced characteristic leptomeningeal and perivascular inflammation and TB lesions with central necrosis, a cellular rim and numerous bacilli on pathologic examination. Meningeal and rim enhancement was visible on MRI. An intense microglial activation was noted in M. tuberculosis-infected animals in the white matter and around the TB lesions, as evidenced by a significant increase in uptake of the tracer 124I-DPA-713, which is specific for activated microglia/macrophages, and confirmed by quantification of Iba-1 immunohistochemistry. Neurobehavioral analyses demonstrated signs similar to those noted in children with delayed maturation and development of neurological deficits resulting in significantly worse composite behavior scores in M. tuberculosis-infected animals. We have established a rabbit model that mimics features of TB meningitis in young children. This model could provide a platform for evaluating novel therapies, including host-directed therapies, against TB meningitis relevant to a young child's developing brain.
Insights
A new rabbit model replicates central nervous system (CNS) tuberculosis (TB) meningitis in young children. This model allows for studying neurological deficits and evaluating new therapies for this severe childhood disease.
Area of Science:
- Neuroscience
- Infectious Diseases
- Pediatrics
Background:
- Central nervous system (CNS) tuberculosis (TB) is a severe extra-pulmonary form of TB, particularly affecting children.
- The developing brain exhibits a unique host response to CNS TB.
- Existing models do not fully capture the complexities of pediatric CNS TB.
Purpose of the Study:
- To establish and characterize a rabbit model of CNS TB meningitis in young animals.
- To investigate the neurological, pathological, and microbiological features of CNS TB in this model.
- To provide a platform for testing novel therapeutic strategies.
Main Methods:
- New Zealand white rabbits were infected with Mycobacterium tuberculosis via subarachnoid inoculation at postnatal day 4-8.
- Animals were assessed for neurological deficits, bacterial burden, and pathological changes up to 6 weeks post-infection.
- Magnetic resonance imaging (MRI), positron emission tomography (PET), and immunohistochemistry were used to evaluate disease progression and microglial activation.
Main Results:
- The rabbit model demonstrated key features of TB meningitis, including inflammation, tuberculomas, and bacilli.
- MRI revealed leptomeningeal and perivascular inflammation, consistent with CNS TB.
- Significant microglial activation was observed in infected animals, correlating with neurobehavioral deficits resembling those in affected children.
Conclusions:
- A novel rabbit model successfully mimics pediatric CNS TB meningitis.
- This model accurately reflects disease pathology, neurological deficits, and host response.
- The model offers a valuable platform for preclinical evaluation of new treatments for CNS TB in children.
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