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Updated: Jul 18, 2026

Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
The neuropathological and behavioral consequences of intraspinal microglial/macrophage activation
P G Popovich1, Z Guan, V McGaughy
1Department of Molecular Virology, Immunology and Medical Genetics, The Ohio State University College of Medicine & Public Health and School of Allied Medical Professions, Columbus 43210, USA.
Abstract:
Activated microglia and macrophages (CNS macrophages) have been implicated in the secondary or "bystander" pathology (e.g. axon injury, demyelination) that accompanies traumatic or autoimmune injury to the brain and spinal cord. These cells also can provide neurotrophic support and promote axonal regeneration. Studying the divergent functional potential of CNS macrophages in trauma models is especially difficult due to the various degradative mechanisms that are initiated prior to or concomitant with microglial/macrophage activation (e.g. hemorrhage, edema, excitotoxicity, lipid peroxidation). To study the potential impact of activated CNS macrophages on the spinal cord parenchyma, we have characterized an in vivo model of non-traumatic spinal cord neuroinflammation. Specifically, focal activation of CNS macrophages was achieved using stereotaxic microinjections of zymosan. Although microinjection does not cause direct mechanical trauma, localized activation of macrophages with zymosan acts as an "inflammatory scalpel" causing tissue injury at and nearby the injection site. The present data reveal that activation of CNS macrophages in vivo can result in permanent axonal injury and demyelination. Moreover, the pathology can be graded and localized to specific white matter tracts to produce quantifiable behavioral deficits. Further development of this model will help to clarify the biological potential of microglia and macrophages and the molecular signals that control their function within the spinal cord.
Insights
Activated microglia and macrophages (CNS macrophages) can cause axonal injury and demyelination in the spinal cord. This study developed a non-traumatic model to investigate CNS macrophage-mediated neuroinflammation and its effects.
Area of Science:
- Neuroscience
- Immunology
- Spinal Cord Injury Research
Background:
- Microglia and macrophages in the central nervous system (CNS macrophages) contribute to secondary injury after trauma.
- These cells have dual roles, potentially causing damage or promoting regeneration.
- Studying their function in trauma models is challenging due to confounding factors like hemorrhage and edema.
Purpose of the Study:
- To develop and characterize an in vivo model of non-traumatic spinal cord neuroinflammation.
- To investigate the impact of activated CNS macrophages on spinal cord parenchyma.
- To understand the potential of CNS macrophages in causing axonal injury and demyelination without direct mechanical trauma.
Main Methods:
- Stereotaxic microinjections of zymosan to achieve focal activation of CNS macrophages in vivo.
- Characterization of a non-traumatic spinal cord neuroinflammation model.
- Assessment of tissue injury, including axonal injury and demyelination.
- Quantification of behavioral deficits linked to specific white matter tract pathology.
Main Results:
- Focal activation of CNS macrophages using zymosan induced permanent axonal injury and demyelination.
- The induced pathology was graded and localized to specific white matter tracts.
- This localized pathology resulted in quantifiable behavioral deficits.
Conclusions:
- In vivo activation of CNS macrophages can lead to significant axonal injury and demyelination in the spinal cord.
- This model provides a method to study CNS macrophage-mediated pathology in a non-traumatic context.
- Further research using this model can elucidate the molecular signals controlling macrophage function and their role in spinal cord injury.

