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Updated: Feb 6, 2026

A Novel In Vitro Model of Blast Traumatic Brain Injury
Published on: December 21, 2018
Newer pharmacological approaches for antioxidant neuroprotection in traumatic brain injury
Edward D Hall1, Juan A Wang1, Darren M Miller1
1Spinal Cord & Brain Injury Research Center and Department of Neuroscience, University of Kentucky College of Medicine, Lexington, KY 40536-0509, USA.
Abstract:
Reactive oxygen species-induced oxidative damage remains an extensively validated secondary injury mechanism in traumatic brain injury (TBI) as demonstrated by the efficacy of various pharmacological antioxidants agents in decreasing post-traumatic free radical-induced lipid peroxidation (LP) and protein oxidative damage in preclinical TBI models. Based upon strong preclinical efficacy results, two antioxidant agents, the superoxide radical scavenger polyethylene glycol-conjugated superoxide dismutase (PEG-SOD) and the 21-aminosteroid LP inhibitor tirilazad, which inhibits lipid peroxidation, (LP) were evaluated in large phase III trials in moderately- and severely-injured TBI patients. Both failed to improve 6 month survival and neurological recovery. However, in the case of tirilazad, a post hoc analysis revealed that the drug significantly improved survival of male TBI patients who exhibited traumatic subarachnoid hemorrhage (tSAH) that occurs in half of severe TBIs. In addition to reviewing the clinical trial results with PEG-SOD and tirilazad, newer antioxidant approaches which appear to improve neuroprotective efficacy and provide a longer therapeutic window in rodent TBI models will be presented. The first approach involves pharmacological enhancement of the multi-mechanistic Nrf2-antioxidant response element (ARE) pathway. The second involves scavenging of the neurotoxic LP-derived carbonyl compounds 4-hydroxynonenal (4-HNE) and acrolein which are highly damaging to neural protein and stimulate additional free radical generation. A third approach combines mechanistically complimentary antioxidants to interrupt post-TBI oxidative neurodegeneration at multiple points in the secondary injury cascade. These newer strategies appear to decrease variability in the neuroprotective effect which should improve the feasibility of achieving successful translation of antioxidant therapy to TBI patients.
Insights
Antioxidant therapies for traumatic brain injury (TBI) showed limited success in clinical trials. Newer strategies targeting oxidative stress and lipid peroxidation show promise for improved neuroprotection in TBI patients.
Area of Science:
- Neuroscience
- Pharmacology
- Oxidative Stress Research
Background:
- Oxidative damage is a key secondary injury in traumatic brain injury (TBI).
- Preclinical studies showed antioxidant efficacy, leading to clinical trials of PEG-SOD and tirilazad.
- Phase III trials of PEG-SOD and tirilazad failed to improve overall TBI patient outcomes.
Purpose of the Study:
- To review clinical trial outcomes of PEG-SOD and tirilazad in TBI.
- To present novel antioxidant strategies for TBI neuroprotection.
- To explore potential for improved therapeutic efficacy and translation.
Main Methods:
- Review of Phase III clinical trial data for PEG-SOD and tirilazad in TBI.
- Analysis of post hoc data for tirilazad in specific TBI patient subgroups.
- Presentation of preclinical data on Nrf2-ARE pathway enhancement, carbonyl scavenging, and combination antioxidant therapies.
Main Results:
- PEG-SOD and tirilazad did not improve overall survival or neurological recovery in TBI patients.
- Tirilazad showed improved survival in male TBI patients with traumatic subarachnoid hemorrhage (tSAH).
- Emerging antioxidant strategies demonstrate enhanced neuroprotection and longer therapeutic windows in rodent TBI models.
Conclusions:
- Direct antioxidant administration (PEG-SOD, tirilazad) has limitations in TBI clinical translation.
- Targeting the Nrf2-ARE pathway and scavenging LP-derived carbonyls are promising novel approaches.
- Combination therapies and strategies reducing outcome variability may enhance future TBI antioxidant treatment feasibility.
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