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Updated: Jan 28, 2026

Obtaining Human Microglia from Adult Human Brain Tissue
Published on: August 30, 2020
In Vitro Priming and Hyper-Activation of Brain Microglia: an Assessment of Phenotypes
Kyle Koss1,2, Matthew A Churchward1,2, Christopher Tsui1,2,3
1Neurochemical Research Unit, Department of Psychiatry, University of Alberta, Edmonton, AB, T6G 2G3, Canada.
Abstract:
Microglia are the resident immune cells of the central nervous system that mediate the life and death of nervous tissue. During normal function, they exhibit a surveying phenotype and maintain vital functions in nervous tissue. In the event of injury or disease, chronic inflammation can result, wherein microglia develop a hyper-activated phenotype, shed their regenerative function, actively kill contiguous cells, and can partition injured tissue by initiating scar formation. With recoverable injury, microglia can develop a primed phenotype, where they appear to recover from an inflammatory event, but are limited in their support functions and show inappropriate responses to future injury often associated with neurodegenerative disorders. These microglial phenotypes were acutely recreated in vitro with potent pro- and anti-inflammatory treatments. Primary cultured microglia or mixed glia (microglia, astrocytes, and oligodendrocytes) were treated for 6 h with lipopolysaccharide (LPS). Recovery from an inflammatory state was modeled with 18-h treatment of the anti-inflammatory steroid dexamethasone. The cells were then treated for 24 h with interferon gamma (IFNγ) to detect inflammatory memory after recovery. Surveying was best represented in the untreated vehicle (Veh) cases and was characterized by negligible secretion of pro-inflammatory factors, limited expression of immune proteins such as induced nitric oxide synthase (iNOS), major histocompatibility complex class II (MHCII), relatively high expression of brain-derived and glial-derived neurotrophic factors (BDNF and GDNF), and thinly branched smaller microglia. Activation was noted in the LPS- and IFNγ-treated microglia with increased cytokines, NO, NGF, iNOS, proliferation, phagocytosis, reduced BDNF, and flattened round amoeboid-shaped microglia. Priming was observed to be an incomplete surveying restoration using dexamethasone from an activation comparison of LPS, IFNγ, and LPS/IFNγ. Dexamethasone treatments resulted in the most profound dysregulation of expression of NO, TNF, IL-1β, NGF, CD68, and MHCII as well as ramified morphology and uptake of myelin. These findings suggest microglial priming and hyper-activation may be effectively modeled in vitro to allow mechanistic investigations into these key cellular phenotypes.
Insights
Microglia, the central nervous system immune cells, can be hyper-activated or primed, impacting nervous tissue. This study models these states in vitro to understand their mechanisms.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are crucial immune cells in the central nervous system, regulating neural tissue health.
- Dysfunctional microglial states, including hyper-activation and priming, are implicated in neurodegenerative disorders.
- Understanding these phenotypes is vital for developing targeted therapies.
Purpose of the Study:
- To establish in vitro models for microglial hyper-activation and priming phenotypes.
- To investigate the molecular and morphological characteristics of these microglial states.
- To provide a platform for mechanistic studies of microglial dysfunction.
Main Methods:
- Primary microglia or mixed glial cultures were treated with lipopolysaccharide (LPS) to induce activation.
- Recovery and priming were modeled using dexamethasone treatment.
- Interferon gamma (IFNγ) was used to assess inflammatory memory.
- Cellular responses including cytokine secretion, protein expression (iNOS, MHCII), neurotrophic factor levels (BDNF, GDNF), and morphology were analyzed.
Main Results:
- Untreated microglia exhibited a surveying phenotype with low inflammation and high neurotrophic factor expression.
- LPS and IFNγ treatment induced an activated phenotype with increased pro-inflammatory factors, reduced neurotrophic factors, and amoeboid morphology.
- Dexamethasone treatment led to a primed state, characterized by dysregulated gene expression and altered morphology, suggesting incomplete recovery.
- Specific molecular markers like iNOS, MHCII, TNF, IL-1β, and CD68 were differentially regulated across phenotypes.
Conclusions:
- In vitro modeling effectively recreates microglial hyper-activation and priming.
- These models allow for detailed mechanistic investigations into microglial roles in CNS injury and disease.
- Findings highlight the potential for targeting specific microglial phenotypes in neurodegenerative conditions.
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