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Published on: December 26, 2016
Microglial repopulation reverses cognitive and synaptic deficits in an Alzheimer's disease model by restoring BDNF
Wanbing Wang1, Yanzhong Li1, Fangling Ma1
1Fujian Provincial Key Laboratory of Neurodegenerative Disease and Aging Research, Institute of Neuroscience, School of Medicine, Xiamen University, Xiamen 361102, China.
Abstract:
Over the past decade, compelling genetic evidence has highlighted the crucial role of microglial dysregulation in the development of Alzheimer's disease (AD). As resident immune cells in the brain, microglia undergo dystrophy and senescence during the chronic progression of AD. To explore the potential therapeutic benefits of replenishing the brain with new microglia in AD, we utilized the CSF1R inhibitor PLX3397 to deplete existing microglia and induce repopulation after inhibitor withdrawal in 5xFAD transgenic mice. Our findings revealed the remarkable benefits of microglial repopulation in ameliorating AD-associated cognitive deficits, accompanied by a notable elevation in synaptic proteins and an enhancement of hippocampal long-term potentiation (LTP). Additionally, we observed the profound restoration of microglial morphology and synaptic engulfment following their self-renewal. The impact of microglial repopulation on amyloid pathology is dependent on the duration of repopulation. Transcriptome analysis revealed a high resemblance between the gene expression profiles of repopulated microglia from 5xFAD mice and those of microglia from WT mice. Importantly, the dysregulated neurotrophic signaling pathway and hippocampal neurogenesis in the AD brain are restored following microglial replenishment. Lastly, we demonstrated that the repopulation restores the expression of brain-derived neurotrophic factor (BDNF) in microglia, thereby contributing to synaptic plasticity. In conclusion, our findings provide compelling evidence to support the notion that microglial self-renewal confers substantial benefits to the AD brain by restoring the BDNF neurotrophic signaling pathway. Thus, targeted microglial repopulation emerges as a highly promising and novel therapeutic strategy for alleviating cognitive impairment in AD.
Insights
Replenishing the brain with new microglia, or microglial repopulation, significantly improves cognitive deficits in Alzheimer
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Microglial dysregulation is implicated in Alzheimer's disease (AD) pathogenesis.
- Microglia exhibit dystrophy and senescence during chronic AD progression.
- Therapeutic strategies targeting microglial replenishment are under investigation for AD.
Purpose of the Study:
- To investigate the therapeutic potential of microglial repopulation in an AD mouse model.
- To assess the impact of new microglia on cognitive function, synaptic integrity, and amyloid pathology.
Main Methods:
- Utilized the CSF1R inhibitor PLX3397 to deplete microglia in 5xFAD mice.
- Induced microglial repopulation upon inhibitor withdrawal.
- Evaluated cognitive deficits, synaptic protein levels, hippocampal long-term potentiation (LTP), microglial morphology, and gene expression profiles.
Main Results:
- Microglial repopulation ameliorated AD-associated cognitive deficits and restored synaptic function.
- Repopulated microglia exhibited normalized morphology and enhanced synaptic engulfment.
- Restoration of neurotrophic signaling, hippocampal neurogenesis, and brain-derived neurotrophic factor (BDNF) expression was observed.
Conclusions:
- Microglial self-renewal offers significant therapeutic benefits for the Alzheimer's disease brain.
- Restoration of the BDNF signaling pathway by repopulated microglia is crucial for synaptic plasticity.
- Targeted microglial repopulation represents a promising novel therapeutic strategy for AD cognitive impairment.

