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Updated: May 11, 2025

Cell-based Assay to Study Antibody-mediated Tau Clearance by Microglia
Published on: November 9, 2018
Clec7a Signaling in Microglia Promotes Synapse Loss Associated with Tauopathy
Shubing Yang1,2, Ji Wang1,2, Yongkang Cao1,2
1Hubei Key Laboratory of Cognitive and Affective Disorders, Jianghan University, Wuhan 430056, China.
Abstract:
Alzheimer's disease (AD) pathogenesis involves progressive synaptic degeneration, a process potentially driven by maladaptive microglial pruning activity. While synaptic loss is a hallmark of AD, the molecular signals triggering pathological microglia-mediated synaptic engulfment remain elusive. Clec7a-a key marker of disease-associated microglia (DAM)-is known to activate spleen tyrosine kinase (SYK) signaling, enhancing Aβ phagocytosis and neuroprotective functions in 5×FAD models. However, its role in regulating synapse-microglia interactions under tauopathic conditions remains undefined. Our analysis revealed a progressive activation of the Clec7a-SYK signaling axis in the hippocampus of PS19 tauopathy mice, correlating with disease progression. Spatial mapping demonstrated a significant co-localization of Clec7a with hippocampal microglia, suggesting cell-autonomous signaling. The pharmacological inhibition of Clec7a achieved multimodal therapeutic effects by attenuating microglial hyperreactivity, suppressing neuroinflammatory cytokine release, and restoring physiological synaptic turnover. Mechanistically, we identified MD2 as a synaptic "eat-me" signal on tauopathy-related synapses, recruiting Clec7a+ microglia to drive aberrant synaptic elimination in PS19 mice. Strikingly, Clec7a blockade rescued hippocampal-dependent memory deficits in behavioral tests. These findings position Clec7a as a context-dependent therapeutic target, with inhibition strategies showing particular promise for tauopathy-related synaptic degeneration.
Insights
Blocking Clec7a signaling in the brain reduces harmful microglial activity and synaptic loss in tauopathy models. This approach shows promise for treating memory deficits in neurodegenerative diseases.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Alzheimer's disease (AD) involves synaptic degeneration driven by microglial activity.
- Molecular triggers for microglia-mediated synaptic engulfment in AD are not fully understood.
- Clec7a-Syk signaling enhances Aβ clearance but its role in tauopathy is unknown.
Purpose of the Study:
- Investigate the role of Clec7a-Syk signaling in tauopathy-related synaptic degeneration.
- Identify molecular mechanisms of microglia-synapse interactions in tauopathy.
- Evaluate Clec7a inhibition as a therapeutic strategy for tauopathy.
Main Methods:
- Analysis of Clec7a-Syk axis activation in PS19 tauopathy mice.
- Spatial mapping of Clec7a and microglia co-localization.
- Pharmacological inhibition of Clec7a.
- Assessment of microglial activity, cytokine release, and synaptic turnover.
- Identification of synaptic signals mediating microglial engulfment.
- Behavioral testing for memory deficits.
Main Results:
- Progressive Clec7a-Syk axis activation correlated with tauopathy progression.
- Clec7a blockade attenuated microglial hyperreactivity and neuroinflammation.
- Pharmacological inhibition restored physiological synaptic turnover.
- MD2 was identified as a synaptic "eat-me" signal for Clec7a+ microglia.
- Clec7a blockade rescued memory deficits in PS19 mice.
Conclusions:
- Clec7a signaling drives aberrant synaptic elimination in tauopathy.
- Targeting Clec7a offers a promising therapeutic strategy for tauopathy-related synaptic degeneration and memory loss.

