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Senescent Microglia Mediate Neuroinflammation-Induced Cognitive Dysfunction by Selective Elimination of Excitatory
Kai Liu1, Di Fan1, Hai-Peng Wu1
1Department of Anesthesiology, The Second Affiliated Hospital of Nanjing Medical University, Nanjing, China.
Abstract:
Microglia-mediated neuroinflammation has been shown to exert an important effect on the progression of a growing number of neurodegenerative disorders. Prolonged exposure to detrimental stimuli leads to a state of progressive activation and aging-related features in microglia (also termed as senescent microglia). However, the mechanisms by which senescent microglia contribute to neuroinflammation-induced cognitive dysfunction remain to be elucidated. Here, we developed a mouse model of neuroinflammation induced by lipopolysaccharides at 0.5 mg/kg for 7 consecutive days. To evaluate cognitive function, C57BL/6J mice were employed and subjected to a series of behavioral assessments, including the open field, Y-maze, and novel object recognition tests. Employing single-cell RNA sequencing technology, we have delved into the differential expressions of RNA within microglia. Furthermore, to investigate anatomic and physiological alterations of pyramidal neurons, we utilized Golgi staining and whole-cell patch-clamp recordings, respectively. Validation of our results in protein expression was performed using western blotting and immunofluorescence. We specifically identified senescent microglia with a high expression of p16INK4a and observed that microglia in the hippocampal CA1 region of the model exhibited signatures of elevated phagocytosis and senescence. A senolytic by ABT-737 treatment alleviated the production of senescence-associated secretory phenotypes, the accumulation of senescent microglia, and the microglial hyperphagocytosis of excitatory synapses following LPS exposures. This treatment also restored reduced excitatory synaptic transmission, impaired long-term potentiation, and cognitive function in the model. These results indicate that reducing senescent microglia may potentially serve as a therapeutic approach to prevent neuroinflammation-related cognitive dysfunction.
Insights
Targeting senescent microglia, a key driver of neuroinflammation, can improve cognitive function. Clearing these aged immune cells using senolytics offers a potential therapeutic strategy for neurodegenerative diseases.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia-mediated neuroinflammation is crucial in neurodegenerative disorders.
- Prolonged detrimental stimuli cause microglia to age and become senescent.
- Mechanisms linking senescent microglia to cognitive decline are unclear.
Purpose of the Study:
- To investigate the role of senescent microglia in neuroinflammation-induced cognitive dysfunction.
- To identify therapeutic targets for mitigating neuroinflammation-related cognitive impairment.
Main Methods:
- Developed a lipopolysaccharide (LPS)-induced mouse model of neuroinflammation.
- Assessed cognitive function using behavioral tests (open field, Y-maze, novel object recognition).
- Utilized single-cell RNA sequencing, Golgi staining, patch-clamp recordings, western blotting, and immunofluorescence.
Main Results:
- Identified senescent microglia (p16INK4a+) in the hippocampus exhibiting elevated phagocytosis and senescence.
- LPS exposure induced microglial hyperphagocytosis of excitatory synapses and cognitive deficits.
- Senolytic treatment (ABT-737) reduced senescence markers, microglial accumulation, and synaptic damage.
Conclusions:
- Senescent microglia contribute significantly to neuroinflammation-induced cognitive dysfunction.
- Targeting and clearing senescent microglia can restore synaptic function and cognitive performance.
- Senolytics represent a promising therapeutic avenue for neuroinflammatory conditions affecting cognition.
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