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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Extracellular signal-regulated kinase regulates microglial immune responses in Alzheimer's disease
Michael J Chen1, Supriya Ramesha1, Laura D Weinstock2,3
1Department of Neurology, Emory University, Atlanta, GA, USA.
Abstract:
The importance of mitogen-activated protein kinase (MAPK) pathway signaling in regulating microglia-mediated neuroinflammation in Alzheimer's disease (AD) remains unclear. We examined the role of MAPK signaling in microglia using a preclinical model of AD pathology and quantitative proteomics studies of postmortem human brains. In multiplex immunoassay analyses of MAPK phosphoproteins in acutely isolated microglia and brain tissue from 5xFAD mice, we found phosphorylated extracellular signal-regulated kinase (ERK) was the most strongly upregulated phosphoprotein within the MAPK pathway in acutely isolated microglia, but not whole-brain tissue from 5xFAD mice. The importance of ERK signaling in primary microglia cultures was next investigated using transcriptomic profiling and functional assays of amyloid-β and neuronal phagocytosis, which confirmed that ERK is a critical regulator of IFNγ-mediated pro-inflammatory activation of microglia, although it was also partly important for constitutive microglial functions. Phospho-ERK was an upstream regulator of disease-associated microglial gene expression (Trem2, Tyrobp), as well as several human AD risk genes (Bin1, Cd33, Trem2, Cnn2), indicative of the importance of microglial ERK signaling in AD pathology. Quantitative proteomic analyses of postmortem human brain showed that ERK1 and ERK2 were the only MAPK proteins with increased protein expression and positive associations with neuropathological grade. In a human brain phosphoproteomic study, we found evidence for increased flux through the ERK signaling pathway in AD. Overall, our analyses strongly suggest that ERK phosphorylation, particularly in microglia in mouse models, is a regulator of pro-inflammatory immune responses in AD pathogenesis.
Insights
Extracellular signal-regulated kinase (ERK) pathway activation in microglia is crucial for Alzheimer's disease (AD) neuroinflammation. This study highlights ERK signaling's role in regulating microglial pro-inflammatory responses and AD pathogenesis.
Area of Science:
- Neuroscience
- Immunology
- Molecular Biology
Background:
- The role of mitogen-activated protein kinase (MAPK) pathway signaling in microglia-mediated neuroinflammation in Alzheimer's disease (AD) is not fully understood.
- Microglia are key immune cells in the brain, and their dysregulation contributes to AD pathogenesis.
Purpose of the Study:
- To investigate the role of MAPK pathway signaling, specifically extracellular signal-regulated kinase (ERK), in microglia during AD.
- To determine if ERK signaling in microglia is associated with AD pathology in preclinical models and human brains.
Main Methods:
- Multiplex immunoassay and quantitative proteomics on mouse models (5xFAD) and postmortem human brains.
- Transcriptomic profiling and functional assays (amyloid-β and neuronal phagocytosis) in primary microglia cultures.
- Analysis of MAPK phosphoproteins, protein expression, and signaling pathway flux.
Main Results:
- Phosphorylated ERK (p-ERK) was significantly upregulated in microglia from 5xFAD mice, but not whole brain tissue.
- ERK signaling critically regulates interferon-gamma (IFNγ)-mediated pro-inflammatory microglial activation and is partly involved in constitutive microglial functions.
- p-ERK regulates disease-associated microglial genes (e.g., Trem2, Tyrobp) and human AD risk genes (e.g., Bin1, Cd33).
- ERK1 and ERK2 protein levels were increased in human AD brains and associated with neuropathological grade.
- Evidence of increased ERK signaling pathway flux was found in human AD brains.
Conclusions:
- ERK phosphorylation in microglia is a key regulator of pro-inflammatory immune responses in AD pathogenesis.
- ERK signaling represents a potential therapeutic target for modulating neuroinflammation in Alzheimer's disease.

