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Updated: Dec 27, 2025

Systems Analysis of the Neuroinflammatory and Hemodynamic Response to Traumatic Brain Injury
Published on: May 27, 2022
Microglial Depletion with CSF1R Inhibitor During Chronic Phase of Experimental Traumatic Brain Injury Reduces
Rebecca J Henry1, Rodney M Ritzel2, James P Barrett2
1Department of Anesthesiology and Shock, Trauma and Anesthesiology Research (STAR) Center, University of Maryland School of Medicine, Baltimore, Maryland 21201, rhenry@som.umaryland.edu loanedj@tcd.ie.
Abstract:
Chronic neuroinflammation with sustained microglial activation occurs following severe traumatic brain injury (TBI) and is believed to contribute to subsequent neurodegeneration and neurological deficits. Microglia, the primary innate immune cells in brain, are dependent on colony stimulating factor 1 receptor (CSF1R) signaling for their survival. In this preclinical study, we examined the effects of delayed depletion of chronically activated microglia on functional recovery and neurodegeneration up to 3 months postinjury. A CSF1R inhibitor, Plexxikon (PLX) 5622, was administered to adult male C57BL/6J mice at 1 month after controlled cortical impact to remove chronically activated microglia, and the inhibitor was withdrawn 1-week later to allow for microglial repopulation. Following TBI, the repopulated microglia displayed a ramified morphology similar to that of Sham uninjured mice, whereas microglia in vehicle-treated TBI mice showed the typical chronic posttraumatic hypertrophic morphology. PLX5622 treatment limited TBI-associated neuropathological changes at 3 months postinjury; these included a smaller cortical lesion, reduced hippocampal neuron cell death, and decreased NOX2- and NLRP3 inflammasome-associated neuroinflammation. Furthermore, delayed depletion of chronically activated microglia after TBI led to widespread changes in the cortical transcriptome and altered gene pathways involved in neuroinflammation, oxidative stress, and neuroplasticity. Using a variety of complementary neurobehavioral tests, PLX5622-treated TBI mice also had improved long-term motor and cognitive function recovery through 3 months postinjury. Together, these studies demonstrate that chronic phase removal of neurotoxic microglia after TBI using CSF1R inhibitors markedly reduce chronic neuroinflammation and associated neurodegeneration, as well as related motor and cognitive deficits.SIGNIFICANCE STATEMENT Traumatic brain injury (TBI) is a debilitating neurological disorder that can seriously impact the patient's quality of life. Microglial-mediated neuroinflammation is induced after severe TBI and contributes to neurological deficits and on-going neurodegenerative processes. Here, we investigated the effect of breaking the neurotoxic neuroinflammatory loop at 1-month after controlled cortical impact in mice by pharmacological removal of chronically activated microglia using a colony stimulating factor 1 receptor (CSF1R) inhibitor, Plexxikon 5622. Overall, we show that short-term elimination of microglia during the chronic phase of TBI followed by repopulation results in long-term improvements in neurological function, suppression of neuroinflammatory and oxidative stress pathways, and a reduction in persistent neurodegenerative processes. These studies are clinically relevant and support new concepts that the therapeutic window for TBI may be far longer than traditionally believed if chronic and evolving microglial-mediated neuroinflammation can be inhibited or regulated in a precise manner.
Insights
Targeting chronically activated microglia with CSF1R inhibitors after traumatic brain injury (TBI) improves long-term neurological function. This approach reduces neuroinflammation and neurodegeneration, offering a potential therapeutic strategy for TBI recovery.
Area of Science:
- Neuroscience
- Immunology
- Neurobiology
Background:
- Chronic neuroinflammation and microglial activation persist after severe traumatic brain injury (TBI), contributing to neurodegeneration and functional deficits.
- Microglia survival is dependent on colony stimulating factor 1 receptor (CSF1R) signaling.
Purpose of the Study:
- To investigate the effects of delayed depletion and repopulation of chronically activated microglia on functional recovery and neurodegeneration up to 3 months post-TBI.
- To assess the impact of targeting microglial activity on neuroinflammation, neurodegeneration, and behavioral outcomes.
Main Methods:
- Administered a CSF1R inhibitor (PLX5622) to mice 1 month after controlled cortical impact to deplete microglia, followed by a 1-week withdrawal for repopulation.
- Evaluated neuropathological changes, including lesion size and neuron cell death.
- Assessed neuroinflammation markers (NOX2, NLRP3 inflammasome), cortical transcriptome, and performed neurobehavioral tests.
Main Results:
- Delayed microglial depletion and repopulation led to ramified microglia morphology, reduced cortical lesions, and decreased hippocampal neuron death.
- PLX5622 treatment significantly reduced NOX2- and NLRP3 inflammasome-associated neuroinflammation and altered gene pathways related to neuroinflammation, oxidative stress, and neuroplasticity.
- TBI mice treated with PLX5622 showed improved long-term motor and cognitive function recovery up to 3 months postinjury.
Conclusions:
- Targeted, delayed depletion of chronically activated microglia using CSF1R inhibitors effectively reduces chronic neuroinflammation and associated neurodegeneration after TBI.
- This strategy promotes long-term functional recovery, suggesting a broader therapeutic window for TBI treatment by modulating microglial activity.

