Related Experiment Video
Updated: Mar 1, 2026

A Novel In Vitro Live-imaging Assay of Astrocyte-mediated Phagocytosis Using pH Indicator-conjugated Synaptosomes
Published on: February 5, 2018
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.
Abstract:
We previously found that Mertk and its ligand Gas6, astrocytic genes involved in phagocytosis, are upregulated after acute sleep deprivation. These results suggested that astrocytes may engage in phagocytic activity during extended wake, but direct evidence was lacking. Studies in humans and rodents also found that sleep loss increases peripheral markers of inflammation, but whether these changes are associated with neuroinflammation and/or activation of microglia, the brain's resident innate immune cells, was unknown. Here we used serial block-face scanning electron microscopy to obtain 3D volume measurements of synapses and surrounding astrocytic processes in mouse frontal cortex after 6-8 h of sleep, spontaneous wake, or sleep deprivation (SD) and after chronic (∼5 d) sleep restriction (CSR). Astrocytic phagocytosis, mainly of presynaptic components of large synapses, increased after both acute and chronic sleep loss relative to sleep and wake. MERTK expression and lipid peroxidation in synaptoneurosomes also increased to a similar extent after short and long sleep loss, suggesting that astrocytic phagocytosis may represent the brain's response to the increase in synaptic activity associated with prolonged wake, clearing worn components of heavily used synapses. Using confocal microscopy, we then found that CSR but not SD mice show morphological signs of microglial activation and enhanced microglial phagocytosis of synaptic elements, without obvious signs of neuroinflammation in the CSF. Because low-level sustained microglia activation can lead to abnormal responses to a secondary insult, these results suggest that chronic sleep loss, through microglia priming, may predispose the brain to further damage.SIGNIFICANCE STATEMENT We find that astrocytic phagocytosis of synaptic elements, mostly of presynaptic origin and in large synapses, is upregulated already after a few hours of sleep deprivation and shows a further significant increase after prolonged and severe sleep loss, suggesting that it may promote the housekeeping of heavily used and strong synapses in response to the increased neuronal activity of extended wake. By contrast, chronic sleep restriction but not acute sleep loss activates microglia, promotes their phagocytic activity, and does so in the absence of overt signs of neuroinflammation, suggesting that like many other stressors, extended sleep disruption may lead to a state of sustained microglia activation, perhaps increasing the brain's susceptibility to other forms of damage.
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.

