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Systems Analysis of the Neuroinflammatory and Hemodynamic Response to Traumatic Brain Injury
Published on: May 27, 2022
Sleep fragmentation after traumatic brain injury impairs behavior and conveys long-lasting impacts on
Samuel Houle1, Zoe Tapp1,2, Shannon Dobres1
1Dept. of Neuroscience, College of Medicine, The Ohio State University, 1858 Neil Ave, 43210, Columbus, OH, USA.
Abstract:
Traumatic brain injury (TBI) causes a prolonged inflammatory response in the central nervous system (CNS) driven by microglia. Microglial reactivity is exacerbated by stress, which often provokes sleep disturbances. We have previously shown that sleep fragmentation (SF) stress after experimental TBI increases microglial reactivity and impairs hippocampal function 30 days post-injury (DPI). The neuroimmune response is highly dynamic the first few weeks after TBI, which is also when injury induced sleep-wake deficits are detected. Therefore, we hypothesized that even a few weeks of TBI SF stress would synergize with injury induced sleep-wake deficits to promote neuroinflammation and impair outcome. Here, we investigated the effects of environmental SF in a lateral fluid percussion model of mouse TBI. Half of the mice were undisturbed, and half were exposed to 5 h of SF around the onset of the light cycle, daily, for 14 days. All mice were then undisturbed 15-30 DPI, providing a period for SF stress recovery (SF-R). Mice exposed to SF stress slept more than those in control housing 7-14 DPI and engaged in more total daily sleep bouts during the dark period. However, SF stress did not exacerbate post-TBI sleep deficits. Testing in the Morris water maze revealed sex dependent differences in spatial reference memory 9-14 DPI with males performing worse than females. Post-TBI SF stress suppressed neurogenesis-related gene expression and increased inflammatory signaling in the cortex at 14 DPI. No differences in sleep behavior were detected between groups during the SF stress recovery period 15-30 DPI. Microscopy revealed cortical and hippocampal IBA1 and CD68 percent-area increased in TBI SF-R mice 30 DPI. Additionally, neuroinflammatory gene expression was increased, and synaptogenesis-related gene expression was suppressed in TBI-SF mice 30 DPI. Finally, IPA canonical pathway analysis showed post-TBI SF impaired and delayed activation of synapse-related pathways between 14 and 30 DPI. These data show that transient SF stress after TBI impairs recovery and conveys long-lasting impacts on neuroimmune function independent of continuous sleep deficits. Together, these finding support that even limited exposure to post-TBI SF stress can have lasting impacts on cognitive recovery and regulation of the immune response to trauma.
Insights
Transient sleep fragmentation stress after traumatic brain injury (TBI) impairs neuroimmune recovery and cognitive function long-term, even without ongoing sleep deficits. This highlights the lasting impact of early stress on brain healing.
Area of Science:
- Neuroscience
- Immunology
- Traumatic Brain Injury Research
Background:
- Traumatic brain injury (TBI) triggers prolonged neuroinflammation mediated by microglia.
- Stress, often causing sleep disturbances, exacerbates microglial reactivity.
- Previous studies linked sleep fragmentation (SF) stress post-TBI to increased microglial reactivity and impaired hippocampal function.
Purpose of the Study:
- To investigate if short-term TBI SF stress, combined with injury-induced sleep-wake deficits, promotes neuroinflammation and impairs outcomes.
- To examine the long-lasting effects of transient SF stress on neuroimmune responses and cognitive recovery after TBI.
Main Methods:
- Mice with lateral fluid percussion TBI were exposed to daily SF for 14 days, followed by a recovery period.
- Sleep behavior, spatial reference memory (Morris water maze), neurogenesis, and inflammatory signaling were assessed.
- Cortical and hippocampal tissues were analyzed for microglial markers (IBA1, CD68) and gene expression.
Main Results:
- SF stress did not worsen post-TBI sleep deficits but revealed sex-dependent spatial memory impairments in males.
- Early SF stress suppressed neurogenesis-related genes and increased inflammatory signaling at 14 days post-injury.
- At 30 days post-injury, SF-stressed mice showed increased microglial markers and sustained neuroinflammation and suppressed synaptogenesis.
Conclusions:
- Transient SF stress after TBI has lasting detrimental effects on neuroimmune function and cognitive recovery.
- These impacts occur independently of continuous sleep deficits, suggesting a direct effect of early stress on brain healing.
- Even limited post-TBI SF exposure can significantly impair long-term recovery and immune response regulation.
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