Microglial circadian clock regulation of microglial structural complexity, dendritic spine density and inflammatory
Hiroshi Nakanishi1, Junjun Ni2, Saori Nonaka1
1Department of Pharmacology, Faculty of Pharmacy, Yasuda Women's University, Hiroshima, 731-0153, Japan.
Abstract:
Cortical microglia exhibit a ramified shape during sleep, while they have a hyper-ramified shape during wakefulness, which is characterized by their longer processes with increased branching points. The microglial molecular circadian clock regulates expressions of both cathepsin S (CatS) and P2Y12 receptors in the brain with a peak at zeitgeber time 14 (2 h after beginning of the dark phase). We postulated that these two microglia-specific molecules contribute to diurnal alterations of microglial shapes and neuronal activities in the cerebral cortex. During wakefulness, CatS secreted from cortical microglia may be involved in P2Y12 receptor-dependent process extension. Secreted CatS subsequently degrades the perineuronal nets, initiating the downscaling of both spine density and synaptic strength of cortical neurons toward the beginning of sleep. The downscaling of both spine density and synaptic strength of cortical neurons during sleep could improve signal-to-noise, which would benefit memory consolidation, or allow for new learning to occur during subsequent waking. Furthermore, disruption of CatS induces the sleep disturbance and impaired social interaction in mice. Moreover, the microglial clock system disruption may also play a role in the early pathogenesis of Alzheimer's disease. The reduced expression of BMAL1 in cortical microglia caused by oligomeric amyloid β may induce the increased presence of inflammatory phenotype through a reduction in RORα, which in turn reduced IκBα and enhanced NF-κB activation. These observations suggest that the microglial clock system disruption contribute to pathogeneses of sleep disturbance, impaired social interaction and cognitive impairment. Therefore, the growing understanding of the microglial circadian molecular clock might aid in the development of novel pharmacological interventions against both neuropsychiatric and neurodegenerative disorders.
Insights
Microglia
Area of Science:
- Neuroscience
- Cell Biology
- Chronobiology
Background:
- Microglia, the brain's immune cells, exhibit distinct morphological changes between sleep and wakefulness.
- Microglial circadian clocks regulate key molecules like cathepsin S (CatS) and P2Y12 receptors, influencing neuronal activity.
- Diurnal variations in microglial function are linked to synaptic plasticity and cognitive processes.
Purpose of the Study:
- To investigate the role of microglial circadian rhythms, CatS, and P2Y12 receptors in regulating cortical neuronal activity and shape.
- To explore the impact of microglial clock disruption on sleep, social interaction, and neurodegenerative disease pathogenesis.
Main Methods:
- Morphological analysis of cortical microglia during sleep and wakefulness.
- Measurement of cathepsin S and P2Y12 receptor expression patterns.
- Investigating the effects of CatS disruption on sleep and social behavior in mice.
- Examining the influence of amyloid-beta on microglial clock gene expression (BMAL1) and inflammatory pathways.
Main Results:
- Cortical microglia display ramified shapes during sleep and hyper-ramified shapes during wakefulness.
- Microglial circadian clock peaks CatS and P2Y12 receptor expression, potentially mediating synaptic downscaling during sleep.
- Disruption of CatS function leads to sleep disturbances and impaired social interaction.
- Microglial clock disruption, linked to amyloid-beta, promotes an inflammatory phenotype, potentially contributing to Alzheimer's disease.
Conclusions:
- Microglial circadian rhythms and associated molecules are crucial for regulating synaptic plasticity and sleep-wake cycles.
- Disruption of the microglial clock system is implicated in sleep disturbances, impaired social behavior, and neurodegeneration.
- Targeting the microglial circadian clock offers potential therapeutic strategies for neuropsychiatric and neurodegenerative disorders.
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