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.

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.

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