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Published on: July 26, 2017
TLR2 is a primary receptor for Alzheimer's amyloid β peptide to trigger neuroinflammatory activation
Shirong Liu1, Yang Liu, Wenlin Hao
1Department of Neurology, University of the Saarland, 66421 Homburg/Saar, Germany.
Abstract:
Microglia activated by extracellularly deposited amyloid β peptide (Aβ) act as a two-edged sword in Alzheimer's disease pathogenesis: on the one hand, they damage neurons by releasing neurotoxic proinflammatory mediators (M1 activation); on the other hand, they protect neurons by triggering anti-inflammatory/neurotrophic M2 activation and by clearing Aβ via phagocytosis. TLRs are associated with Aβ-induced microglial inflammatory activation and Aβ internalization, but the mechanisms remain unclear. In this study, we used real-time surface plasmon resonance spectroscopy and conventional biochemical pull-down assays to demonstrate a direct interaction between TLR2 and the aggregated 42-aa form of human Aβ (Aβ42). TLR2 deficiency reduced Aβ42-triggered inflammatory activation but enhanced Aβ phagocytosis in cultured microglia and macrophages. By expressing TLR2 in HEK293 cells that do not endogenously express TLR2, we observed that TLR2 expression enabled HEK293 cells to respond to Aβ42. Through site-directed mutagenesis of tlr2 gene, we identified the amino acids EKKA (741-744) as a critical cytoplasmic domain for transduction of inflammatory signals. By coexpressing TLR1 or TLR6 in TLR2-transgenic HEK293 cells or silencing tlrs genes in RAW264.7 macrophages, we observed that TLR2-mediated Aβ42-triggered inflammatory activation was enhanced by TLR1 and suppressed by TLR6. Using bone marrow chimeric Alzheimer's amyloid precursor transgenic mice, we observed that TLR2 deficiency in microglia shifts M1- to M2-inflammatory activation in vivo, which was associated with improved neuronal function. Our study demonstrated that TLR2 is a primary receptor for Aβ to trigger neuroinflammatory activation and suggested that inhibition of TLR2 in microglia could be beneficial in Alzheimer's disease pathogenesis.
Insights
Toll-like receptor 2 (TLR2) directly binds amyloid-beta (Aβ) and drives neuroinflammation in Alzheimer's disease. Inhibiting TLR2 in microglia may offer a therapeutic strategy by shifting immune responses towards neuroprotection.
Area of Science:
- Neuroscience
- Immunology
- Molecular Biology
Background:
- Microglia play a dual role in Alzheimer's disease (AD), mediating both neurotoxicity and neuroprotection.
- Toll-like receptors (TLRs) are implicated in amyloid-beta (Aβ)-induced microglial activation, but the specific mechanisms are not fully understood.
Purpose of the Study:
- To elucidate the direct interaction between TLR2 and Aβ in the context of Alzheimer's disease.
- To investigate the functional consequences of TLR2 signaling in microglial activation and Aβ clearance.
Main Methods:
- Real-time surface plasmon resonance spectroscopy and biochemical pull-down assays to detect direct TLR2-Aβ interaction.
- Site-directed mutagenesis to identify critical TLR2 domains involved in inflammatory signaling.
- Experiments in TLR2-deficient and transgenic cell lines (HEK293, RAW264.7) and bone marrow chimeric AD mice.
Main Results:
- Demonstrated a direct interaction between TLR2 and aggregated Aβ42.
- TLR2 deficiency reduced Aβ42-induced inflammation but enhanced Aβ phagocytosis in vitro and in vivo.
- Identified a critical cytoplasmic domain (EKKA) in TLR2 for inflammatory signal transduction.
- TLR2-mediated inflammation was modulated by TLR1 (enhancement) and TLR6 (suppression).
- TLR2 deficiency in microglia shifted the inflammatory balance from M1 (pro-inflammatory) to M2 (anti-inflammatory/neurotrophic) phenotypes in vivo, improving neuronal function.
Conclusions:
- TLR2 acts as a primary receptor for Aβ, initiating neuroinflammatory responses in Alzheimer's disease.
- Targeting TLR2 in microglia presents a potential therapeutic avenue for mitigating Alzheimer's disease pathogenesis by reducing neuroinflammation and enhancing Aβ clearance.
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