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Sex-based differences of antioxidant enzyme nanoparticle effects following traumatic brain injury
Aria W Tarudji1, Hunter A Miller2, Evan T Curtis1
1Department of Biological Systems Engineering, University of Nebraska - Lincoln, 262 Morrison Center, Lincoln, NE 68583, USA.
Abstract:
Following traumatic brain injury (TBI), reactive oxygen species (ROS) are released in excess, causing oxidative stress, carbonyl stress, and cell death, which induce the additional release of ROS. The limited accumulation and retention of small molecule antioxidants commonly used in clinical trials likely limit the target engagement and therapeutic effect in reducing secondary injury. Small molecule drugs also need to be administered every several hours to maintain bioavailability in the brain. Therefore, there is a need for a burst and sustained release system with high accumulation and retention in the injured brain. Here, we utilized Pro-NP™ with a size of 200 nm, which was designed to have a burst and sustained release of encapsulated antioxidants, Cu/Zn superoxide dismutase (SOD1) and catalase (CAT), to scavenge ROS for >24 h post-injection. Here, we utilized a controlled cortical impact (CCI) mouse model of TBI and found the accumulation of Pro-NP™ in the brain lesion was highest when injected immediately after injury, with a reduction in the accumulation with delayed administration of 1 h or more post-injury. Pro-NP™ treatment with 9000 U/kg SOD1 and 9800 U/kg CAT gave the highest reduction in ROS in both male and female mice. We found that Pro-NP™ treatment was effective in reducing carbonyl stress and necrosis at 1 d post-injury in the contralateral hemisphere in male mice, which showed a similar trend to untreated female mice. Although we found that male and female mice similarly benefit from Pro-NP™ treatment in reducing ROS levels 4 h post-injury, Pro-NP™ treatment did not significantly affect markers of post-traumatic oxidative stress in female CCI mice as compared to male CCI mice. These findings of protection by Pro-NP™ in male mice did not extend to 7 d post-injury, which suggests subsequent treatments with Pro-NP™ may be needed to afford protection into the chronic phase of injury. Overall, these different treatment effects of Pro-NP™ between male and female mice suggest important sex-based differences in response to antioxidant nanoparticle delivery and that there may exist a maximal benefit from local antioxidant activity in injured brain.
Insights
Nanoparticles delivering antioxidants (SOD1 and CAT) show promise for reducing oxidative stress after traumatic brain injury (TBI). Immediate administration is key, with potential sex-based differences in treatment efficacy observed.
Area of Science:
- Neuroscience
- Biomedical Engineering
- Pharmacology
Background:
- Traumatic brain injury (TBI) triggers excessive reactive oxygen species (ROS), leading to oxidative and carbonyl stress, and cell death.
- Current small molecule antioxidants have limited brain accumulation, retention, and require frequent dosing, hindering therapeutic efficacy.
- A need exists for advanced delivery systems offering sustained antioxidant release and enhanced brain retention post-TBI.
Purpose of the Study:
- To evaluate the efficacy of Pro-NP™, a nanoparticle system designed for burst and sustained release of antioxidants, in a mouse model of TBI.
- To investigate the optimal timing for Pro-NP™ administration to maximize brain accumulation and therapeutic effects.
- To assess potential sex-based differences in the response to Pro-NP™ treatment for TBI.
Main Methods:
- Utilized a controlled cortical impact (CCI) mouse model to induce TBI.
- Administered Pro-NP™ nanoparticles (200 nm) encapsulating Cu/Zn superoxide dismutase (SOD1) and catalase (CAT) at varying time points post-injury.
- Quantified Pro-NP™ brain accumulation, ROS levels, carbonyl stress, and necrosis markers in male and female mice.
Main Results:
- Pro-NP™ brain lesion accumulation was highest with immediate post-injury injection, decreasing with delayed administration.
- Optimal Pro-NP™ dosage (9000 U/kg SOD1, 9800 U/kg CAT) significantly reduced ROS in both sexes.
- Pro-NP™ treatment reduced carbonyl stress and necrosis in male mice at 1 day post-injury, but effects were less pronounced or transient in female mice.
Conclusions:
- Pro-NP™ demonstrates potential for sustained antioxidant delivery to mitigate secondary injury following TBI, particularly when administered promptly.
- Significant sex-based differences in treatment response were observed, suggesting tailored therapeutic strategies may be necessary.
- Further research is needed to optimize nanoparticle delivery for chronic TBI phases and to fully elucidate sex-specific mechanisms.

