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Updated: Jun 4, 2026

Establishing a Device for Sleep Deprivation in Mice
Published on: September 22, 2023
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
Study Objectives:
Sleep loss has pro-inflammatory effects, but the roles of specific cell populations in mediating these effects have not been delineated. We assessed the modulation of the electroencephalographic and molecular responses to sleep deprivation (S-DEP) by minocycline, a compound that attenuates microglial activation occurring in association with neuroinflammatory events.
Design:
Laboratory rodents were subjected to assessment of sleep and wake in baseline and sleep deprived conditions.
Participants:
Adult male CD-1 mice (30-35 g) subjected to telemetric electroencephalography.
Interventions:
Minocycline was administered daily. Mice were subjected to baseline data collection on the first day of minocycline administration and, on subsequent days, 2 S-DEP sessions, 1 and 3 h in duration, followed by recovery sleep. Following EEG studies, mice were euthanized either at the end of a 3 h S-DEP or as time-of day controls for sampling of brain messenger RNAs. Gene expression was measured by real-time polymerase chain reaction.
Measurements And Results:
Minocycline-treated mice exhibited a reduction in time spent asleep, relative to saline-treated mice, in the 3-h interval immediately after administration. S-DEP resulted in an increase in EEG slow wave activity relative to baseline in saline-treated mice. This response to S-DEP was abolished in animals subjected to chronic minocycline administration. S-DEP suppressed the expression of the microglial-specific transcript cd11b and the neuroinflammation marker peripheral benzodiazepine receptor, in the brain at the mRNA level. Minocycline attenuated the elevation of c-fos expression by S-DEP. Brain levels of pro-inflammatory cytokine mRNAs interleukin-1β (il-1β), interleukin-6 (il-6), and tumor necrosis factor-α (tnfα) were unaffected by S-DEP, but were elevated in minocycline-treated mice relative to saline-treated mice.
Conclusions:
The anti-neuroinflammatory agent minocycline prevents either the buildup or expression of sleep need in rodents. The molecular mechanism underlying this effect is not known, but it is not mediated by suppression of il-1β, il-6, and tnfα at the transcript level.
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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