Sleep Loss Promotes Astrocytic Phagocytosis and Microglial Activation in Mouse Cerebral Cortex

Michele Bellesi1,2, Luisa de Vivo1, Mattia Chini1

  • 1Department of Psychiatry, University of Wisconsin-Madison, Madison, Wisconsin 53719.

Insights

Sleep deprivation increases astrocytic phagocytosis of synapses. Chronic sleep restriction, but not acute deprivation, activates microglia, potentially priming the brain for damage.

Area of Science:

  • Neuroscience
  • Sleep Science
  • Cell Biology

Background:

  • Astrocytic genes (Mertk, Gas6) involved in phagocytosis are upregulated after sleep deprivation.
  • Sleep loss increases peripheral inflammation markers, but its effect on neuroinflammation and microglial activation was unclear.
  • Direct evidence for astrocytic phagocytosis during extended wakefulness was lacking.

Purpose of the Study:

  • To investigate the role of astrocytes and microglia in synaptic changes following sleep deprivation.
  • To determine if acute and chronic sleep loss differentially affect neuroinflammation and immune cell activity.
  • To provide direct evidence for astrocytic phagocytosis in response to sleep loss.

Main Methods:

  • Serial block-face scanning electron microscopy for 3D synapse volume measurement in mouse frontal cortex.
  • Confocal microscopy to assess microglial activation and phagocytosis.
  • Analysis after acute sleep deprivation (SD) and chronic sleep restriction (CSR).

Main Results:

  • Astrocytic phagocytosis of synaptic components increased after both acute and chronic sleep loss.
  • MERTK expression and lipid peroxidation rose similarly after short and long sleep loss.
  • Chronic sleep restriction (CSR), but not acute SD, induced microglial activation and enhanced microglial phagocytosis without overt CSF neuroinflammation.

Conclusions:

  • Astrocytic phagocytosis may clear heavily used synaptic components during prolonged wakefulness.
  • Chronic sleep restriction, unlike acute deprivation, primes microglia, potentially increasing susceptibility to secondary brain damage.
  • Sleep loss-induced changes in astrocytes and microglia occur without obvious signs of neuroinflammation in cerebrospinal fluid.

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