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Free-radical scavenger edaravone treatment confers neuroprotection against traumatic brain injury in rats.

GH Wang | ZL Jiang | YC Li | X Li | H Shi | YQ Gao | PS Vosler | J Chen
Journal of neurotrauma | 2011 Oct

Traumatic brain injury (TBI) is one of the leading causes of neurological disability in young adults. Edaravone, a novel synthetic small-molecule free-radical scavenger, has been shown to have a neuroprotective effect in both animal models of cerebral ischemia and stroke patients; however, the underlying mechanism is poorly understood. In this report, we investigated the potential mechanisms of edaravone treatment in a rat model of TBI. TBI was induced in the right cerebral cortex of male adult rats using Feeney's weight-drop method. Edaravone (0.75, 1.5, or 3 mg/kg) or vehicle (normal saline) was intravenously administered at 2 and 12 h after TBI. Edaravone treatment significantly decreased hippocampal CA3 neuron loss, reduced oxidative stress, and decreased neuronal programmed cell death compared to vehicle treatment. The protective effects of edaravone treatment were also related to the pathology of TBI on non-neuronal cells, as edaravone decreased astrocyte and glial activation. Lastly, edaravone treatment significantly reduced the presence of inflammatory cytokines, cerebral edema, blood-brain barrier (BBB) permeability, and, importantly, neurological deficits following TBI. Our results suggest that edaravone exerts a neuroprotective effect in the rat model of TBI. The likely mechanism is via inhibiting oxidative stress, leading to a decreased inflammatory response and glial activation, and thereby reducing neuronal death and improving neurological function.

Pubmed ID: 21732763

TBI Model

  • Weight-drop model
  • Feeney's weight-drop model
  • Animal Information

  • Species: rat
  • Strain: Sprague–Dawley
  • Age (weeks): No age reported
  • Weight (grams): 250 - 280
  • Assessments

    BBB permeability, ELISA, Electron microscopy, Gravimetric analysis, Neurochemical assays, Nissl staining, Western blot analysis, beam-balancing test, immunohistochemistry

    TBI model parameters

  • Impact Depth (mm): No information available
  • Impact Duration (ms): No information available
  • Impact Velocity (m/s): No information available
  • Impactor Tip: No information available
  • Device Name

    No information available

    Associated Datasets

    No information available

    Associated Protocols

    No information available