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Updated: Jul 5, 2025

A Cell Culture Model for Studying the Role of Neuron-Glia Interactions in Ischemia
Published on: November 14, 2020
Blocking of microglia-astrocyte proinflammatory signaling is beneficial following stroke
Kimberly Prescott1, Alexandra E Münch2, Evan Brahms3
1Department of Psychology, University of North Carolina Wilmington, Wilmington, NC, United States.
Abstract:
Microglia and astrocytes play an important role in the neuroinflammatory response and contribute to both the destruction of neighboring tissue as well as the resolution of inflammation following stroke. These reactive glial cells are highly heterogeneous at both the transcriptomic and functional level. Depending upon the stimulus, microglia and astrocytes mount a complex, and specific response composed of distinct microglial and astrocyte substates. These substates ultimately drive the landscape of the initiation and recovery from the adverse stimulus. In one state, inflammation- and damage-induced microglia release tumor necrosis factor (TNF), interleukin 1α (IL1α), and complement component 1q (C1q), together "TIC." This cocktail of cytokines drives astrocytes into a neurotoxic reactive astrocyte (nRA) substate. This nRA substate is associated with loss of many physiological astrocyte functions (e.g., synapse formation and maturation, phagocytosis, among others), as well as a gain-of-function release of neurotoxic long-chain fatty acids which kill neighboring cells. Here we report that transgenic removal of TIC led to reduction of gliosis, infarct expansion, and worsened functional deficits in the acute and delayed stages following stroke. Our results suggest that TIC cytokines, and likely nRAs play an important role that may maintain neuroinflammation and inhibit functional motor recovery after ischemic stroke. This is the first report that this paradigm is relevant in stroke and that therapies against nRAs may be a novel means to treat patients. Since nRAs are evolutionarily conserved from rodents to humans and present in multiple neurodegenerative diseases and injuries, further identification of mechanistic role of nRAs will lead to a better understanding of the neuroinflammatory response and the development of new therapies.
Insights
Tumor necrosis factor (TNF), interleukin 1α (IL1α), and complement component 1q (C1q) (TIC) cytokines drive harmful reactive astrocytes after stroke. Removing TIC reduced damage and inflammation but worsened functional recovery, suggesting new therapeutic targets.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Microglia and astrocytes are key players in the neuroinflammatory response after stroke.
- These glial cells exhibit heterogeneity, with distinct functional states influencing stroke outcomes.
- Reactive astrocytes, particularly neurotoxic reactive astrocytes (nRA), can impair tissue repair and neuronal survival.
Purpose of the Study:
- To investigate the role of specific inflammatory cytokines (TIC) in driving astrocyte reactivity post-stroke.
- To determine the impact of removing TIC on glial responses, infarct size, and functional recovery.
- To explore the therapeutic potential of targeting nRAs for stroke treatment.
Main Methods:
- Utilized a transgenic mouse model to remove TIC cytokines.
- Assessed gliosis, infarct expansion, and functional deficits at acute and delayed stages post-stroke.
- Analyzed the contribution of TIC and nRAs to neuroinflammation and motor recovery.
Main Results:
- Transgenic removal of TIC led to reduced gliosis and infarct expansion.
- However, TIC removal resulted in worsened functional deficits in both acute and delayed stroke stages.
- These findings indicate that TIC cytokines and nRAs play a complex role in stroke pathology.
Conclusions:
- TIC cytokines and nRAs are implicated in maintaining neuroinflammation and hindering functional recovery after ischemic stroke.
- Targeting nRAs represents a potential novel therapeutic strategy for stroke patients.
- Understanding the mechanistic role of nRAs is crucial for developing effective neuroinflammatory treatments across various neurological conditions.

