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Inhibition of the integrated stress response reverses cognitive deficits after traumatic brain injury.

A Chou | K Krukowski | T Jopson | PJ Zhu | M Costa-Mattioli | P Walter | S Rosi
Proceedings of the National Academy of Sciences of the United States of America | 2017 Aug 01

Traumatic brain injury (TBI) is a leading cause of long-term neurological disability, yet the mechanisms underlying the chronic cognitive deficits associated with TBI remain unknown. Consequently, there are no effective treatments for patients suffering from the long-lasting symptoms of TBI. Here, we show that TBI persistently activates the integrated stress response (ISR), a universal intracellular signaling pathway that responds to a variety of cellular conditions and regulates protein translation via phosphorylation of the translation initiation factor eIF2α. Treatment with ISRIB, a potent drug-like small-molecule inhibitor of the ISR, reversed the hippocampal-dependent cognitive deficits induced by TBI in two different injury mouse models-focal contusion and diffuse concussive injury. Surprisingly, ISRIB corrected TBI-induced memory deficits when administered weeks after the initial injury and maintained cognitive improvement after treatment was terminated. At the physiological level, TBI suppressed long-term potentiation in the hippocampus, which was fully restored with ISRIB treatment. Our results indicate that ISR inhibition at time points late after injury can reverse memory deficits associated with TBI. As such, pharmacological inhibition of the ISR emerges as a promising avenue to combat head trauma-induced chronic cognitive deficits.

Pubmed ID: 28696288

TBI Model

  • Controlled cortical impact model
  • Closed head injury model, Controlled cortical impact model
  • Animal Information

  • Species: mouse
  • Strain: C57B6/J
  • Age (weeks): 12 - 12
  • Weight (grams): No weight reported
  • Assessments

    Behavioral tests, Delayed-Matching-to-Place Paradigm, Electrophysiological recordings, Radial Arm Water Maze, Western Blotting, modified Barnes maze

    TBI model parameters

  • Impact Depth (mm): No information available
  • Impact Duration (ms): 0.95
  • Impact Velocity (m/s): 300
  • Impactor Tip: tip diameter - 3 mm, tip diameter - 5 mm, tip shape - convex
  • Device Name

    No information available

    Associated Datasets

    DOI:10.34945/F51P49

    Associated Protocols

    No information available