Evidence for neuroinflammatory and microglial changes in the cerebral response to sleep loss

Jonathan P Wisor1, Michelle A Schmidt, William C Clegern

  • 1WWAMI Medical Education Program and Department of Veterinary and Comparative Anatomy, Pharmacology and Physiology, Washington State University, Spokane, WA, USA. J_Wisor@wsu.edu

Sleep
|March 2, 2011
PubMed
Abstract

Insights

Minocycline, an anti-neuroinflammatory drug, prevents sleep need in rodents by altering electroencephalogram responses to sleep deprivation. The exact molecular mechanism remains unclear, as key inflammatory cytokines were unaffected.

Area of Science:

  • Neuroscience
  • Sleep Science
  • Pharmacology

Background:

  • Sleep loss induces pro-inflammatory effects.
  • Specific cell populations mediating these effects are not fully understood.
  • Microglial activation is linked to neuroinflammation.

Purpose of the Study:

  • To investigate the effects of minocycline on electroencephalographic and molecular responses to sleep deprivation.
  • To determine if minocycline modulates neuroinflammatory responses during sleep loss.

Main Methods:

  • Rodents (CD-1 mice) underwent telemetric electroencephalography.
  • Mice received daily minocycline or saline administration.
  • Sleep deprivation (S-DEP) sessions and recovery sleep were monitored.
  • Brain gene expression (mRNA) was analyzed using real-time polymerase chain reaction.

Main Results:

  • Minocycline reduced sleep time post-administration.
  • Sleep deprivation increased EEG slow wave activity, an effect abolished by minocycline.
  • S-DEP decreased microglial (cd11b) and neuroinflammation (peripheral benzodiazepine receptor) transcripts.
  • Minocycline attenuated S-DEP-induced c-fos expression.
  • Pro-inflammatory cytokine mRNAs (IL-1β, IL-6, TNFα) were unaffected by S-DEP but elevated by minocycline.

Conclusions:

  • Minocycline prevents the buildup or expression of sleep need in rodents.
  • The underlying molecular mechanism is not fully elucidated.
  • The effect is not mediated by suppression of IL-1β, IL-6, and TNFα at the transcript level.

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