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Updated: Jan 22, 2026

A Preclinical Controlled Cortical Impact Model for Traumatic Hemorrhage Contusion and Neuroinflammation
Published on: June 10, 2020
Docosahexaenoic acid decreased neuroinflammation in rat pups after controlled cortical impact
Michelle E Schober1, Daniela F Requena1, T Charles Casper1
1Department of Pediatrics, Division of Critical Care University of Utah, Salt Lake City, UT 84132, United States.
Insights
Docosahexaenoic acid (DHA) given after traumatic brain injury (TBI) in rat pups reduced oxidative stress and inflammation. This treatment also improved cognitive function, suggesting DHA is a promising therapy for pediatric TBI.
Area of Science:
- Neuroscience
- Immunology
- Pediatric Neurology
Background:
- Traumatic brain injury (TBI) is a primary cause of acquired neurological disability in children, with limited therapeutic options.
- Inflammation and oxidative stress exacerbate TBI-induced damage, highlighting the need for treatments that modulate these responses.
- Docosahexaenoic acid (DHA) is known to influence immune responses and has shown potential in preclinical models of TBI.
Purpose of the Study:
- To investigate the neuroprotective effects of DHA administered after developmental TBI in a rat pup model.
- To determine if acute DHA treatment reduces oxidative stress, neuroinflammation, and improves cognitive outcomes following controlled cortical impact (CCI).
- To examine DHA's impact on microglial activation and inflammatory gene expression in the developing brain post-TBI.
Main Methods:
- 17-day-old rat pups underwent CCI or sham surgery, followed by intraperitoneal DHA or vehicle administration.
- Oxidative stress was assessed by measuring brain nitrates/nitrites (NOx).
- Cognitive function was evaluated using the Novel Object Recognition (NOR) test, and neuroinflammation was assessed via microglial and astrocyte markers (Iba1, CD68, CD206, GFAP) and inflammatory gene expression at various post-injury days.
Main Results:
- DHA treatment significantly decreased oxidative stress (NOx levels) at post-injury day 1 and reduced pro-inflammatory microglial activation at post-injury day 3.
- CCI induced increased expression of inflammatory-related genes, which was blunted by DHA, particularly in microglia-enriched populations.
- DHA administration improved performance in the NOR test at post-injury day 14, indicating enhanced short-term memory.
Conclusions:
- Acute DHA administration following pediatric TBI demonstrates neuroprotective effects by reducing oxidative stress and neuroinflammation.
- DHA modulates microglial activation towards a less inflammatory profile, contributing to improved cognitive function.
- DHA is a potential therapeutic candidate for pediatric TBI due to its efficacy and favorable safety profile.
Abstract:
Traumatic brain injury (TBI) is the leading cause of acquired neurologic disability in children, yet specific therapies to treat TBI are lacking. Therapies that decrease the inflammatory response and enhance a reparative immune action may decrease oxidative damage and improve outcomes after TBI. Docosahexaenoic acid (DHA) modulates the immune response to injury in many organs. DHA given in the diet before injury decreased rat pup cognitive impairment, oxidative stress and white matter injury in our developmental TBI model using controlled cortical impact (CCI). Little is known about DHA effects on neuroinflammation in the developing brain. Further, it is not known if DHA given after developmental TBI exerts neuroprotective effects. We hypothesized that acute DHA treatment would decrease oxidative stress and improve cognitive outcome, associated with decreased pro-inflammatory activation of microglia, the brain's resident macrophages.
Methods:
17-day-old rat pups received intraperitoneal DHA or vehicle after CCI or SHAM surgery followed by DHA diet or continuation of REG diet to create DHACCI, REGCCI, SHAMDHA and SHAMREG groups. We measured brain nitrates/nitrites (NOx) at post injury day (PID) 1 to assess oxidative stress. We tested memory using Novel Object Recognition (NOR) at PID14. At PID 3 and 7, we measured reactivity of microglial activation markers Iba1, CD68 and CD206 and astrocyte marker GFAP in the injured cortex. At PID3, 7 and 30 we measured mRNA levels of inflammation-related genes and transcription factors in flow-sorted brain cells.
Results:
DHA decreased oxidative stress at PID1 and pro-inflammatory microglial activation at PID3. CCI increased mRNA levels of two interferon regulatory family transcription factors, blunted by DHA, particularly in microglia-enriched cell populations at PID7. CCI increased mRNA levels of genes associated with "pro- " and "anti-" inflammatory activity at PID3, 7 and 30. Most notably within the microglia-enriched population, DHA blunted increased mRNA levels of pro-inflammatory genes at PID 3 and 7 and of anti-inflammatory genes at PID 30. Particularly in microglia, we observed parallel activation of pro-inflammatory and anti-inflammatory genes. DHA improved performance on NOR at PID14 after CCI.
Conclusions:
DHA decreased oxidative stress and histologic and mRNA markers of microglial pro-inflammatory activation in rat pup brain acutely after CCI associated with improved short term cognitive function. DHA administration after CCI has neuroprotective effects, which may result in part from modulation of microglial activation toward a less inflammatory profile in the first week after CCI. Future and ongoing studies will focus on phagocytic function and reactive oxygen species production in microglia and macrophages to test functional effects of DHA on neuroinflammation in our model. Given its favorable safety profile in children, DHA is a promising candidate therapy for pediatric TBI.
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