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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Primary cilia-mediated regulation of microglial secretion in Alzheimer's disease
Seungeun Yeo1, Jaemyung Jang1, Hyun Jin Jung1
1Korea Brain Research Institute, Daegu, Republic of Korea.
Abstract:
Alzheimer's disease (AD) is a brain disorder manifested by a gradual decline in cognitive function due to the accumulation of extracellular amyloid plaques, disruptions in neuronal substance transport, and the degeneration of neurons. In affected neurons, incomplete clearance of toxic proteins by neighboring microglia leads to irreversible brain inflammation, for which cellular signaling is poorly understood. Through single-cell transcriptomic analysis, we discovered distinct regional differences in the ability of microglia to clear damaged neurites. Specifically, microglia in the septal region of wild type mice exhibited a transcriptomic signature resembling disease-associated microglia (DAM). These lateral septum (LS)-enriched microglia were associated with dense axonal bundles originating from the hippocampus. Further transcriptomic and proteomic approaches revealed that primary cilia, small hair-like structures found on cells, played a role in the regulation of microglial secretory function. Notably, primary cilia were transiently observed in microglia, and their presence was significantly reduced in microglia from AD mice. We observed significant changes in the secretion and proteomic profiles of the secretome after inhibiting the primary cilia gene intraflagellar transport particle 88 (Ift88) in microglia. Intriguingly, inhibiting primary cilia in the septal microglia of AD mice resulted in the expansion of extracellular amyloid plaques and damage to adjacent neurites. These results indicate that DAM-like microglia are present in the LS, a critical target region for hippocampal nerve bundles, and that the primary ciliary signaling system regulates microglial secretion, affecting extracellular proteostasis. Age-related primary ciliopathy probably contributes to the selective sensitivity of microglia, thereby exacerbating AD. Targeting the primary ciliary signaling system could therefore be a viable strategy for modulating neuroimmune responses in AD treatments.
Insights
Microglia in the brain
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Alzheimer's disease (AD) involves amyloid plaque buildup and neuroinflammation.
- Microglial dysfunction in clearing toxic proteins contributes to AD pathogenesis.
- Cellular signaling mechanisms in microglia, especially in specific brain regions, remain poorly understood.
Purpose of the Study:
- To investigate regional differences in microglial function.
- To explore the role of primary cilia in microglial secretory function.
- To determine the impact of primary cilia on Alzheimer's disease pathology.
Main Methods:
- Single-cell transcriptomic analysis of wild type and AD mouse brains.
- Proteomic analysis of microglial secretomes.
- Inhibition of primary cilia gene (Ift88) in septal microglia.
Main Results:
- Disease-associated microglia (DAM)-like cells identified in the lateral septum (LS) of wild type mice.
- Primary cilia regulate microglial secretion and are reduced in AD microglia.
- Inhibiting primary cilia in LS microglia exacerbated amyloid plaques and neurite damage in AD mice.
Conclusions:
- Disease-associated microglia are present in the LS, a key region for hippocampal connections.
- Primary ciliary signaling regulates microglial secretion, impacting brain proteostasis.
- Targeting primary cilia may offer a novel therapeutic strategy for Alzheimer's disease.

