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Published on: October 18, 2016
Microglial glycolytic reprogramming in alzheimer's disease: association with impaired phagocytic function and altered
Ning Lu1,2,3,4, Zhongman Jin1,2, Nian Liu1,2
1State Key Laboratory of Common Mechanism Research for Major Disease, School of Basic Medicine Peking Union Medical College, Institute of Basic Medical Sciences Chinese Academy of Medical Sciences, Beijing, 100005, China.
Background:
Alzheimer's disease (AD) is characterized by chronic neuroinflammation alongside amyloid-beta plaque and phosphorylated tau (p-Tau) tangle accumulation. Microglia, as resident immune cells, undergo glycolytic reprogramming that may exacerbate inflammation and impede toxic protein clearance. Specifically, the glycolytic enzyme pyruvate kinase M2 (PKM2) drives proinflammatory microglial phenotypes linked to neurodegeneration. This study investigates how PKM2-mediated microglial glycolytic reprogramming and inflammatory responses alongside Aβ/p-Tau clearance in human AD brains.
Methods And Results:
Hippocampal-entorhinal cortex (HP-EC) tissues from 8 AD patients and 8 matched controls underwent multiplex immunohistochemistry and high-resolution spatial analysis. PKM2+Iba1+ microglia density significantly increased in AD versus controls (p < 0.001), predominantly displaying a disease-associated microglial (HAM-like) phenotype (ABCA7+) with concurrent lipid-droplet accumulation (PLIN3+; LDAM phenotype). Spatially, glycolytic PKM2+Iba1+ microglia accumulated near Aβ plaques, p-Tau tangles, and cerebral vasculature. Notably, their distribution around plaques/tau showed anomalous increasing density with distance (p < 0.001), suggesting impaired chemotaxis. Perivascular localization lacked clear chemotactic gradients. Functionally, overall phagocytic activity (CD68+) decreased significantly in AD (p = 0.001), primarily attributed to PKM2- subsets, whereas PKM2+Iba1+ microglia exhibited pronounced phagocytic exhaustion (PLIN2+; p < 0.001), consistent around both Aβ and p-Tau lesions (all p < 0.001).
Conclusion:
Our study establishes that microglial glycolytic reprogramming via PKM2 promotes a proinflammatory HAM-like phenotype, phagocytic exhaustion, and peri-pathological accumulation with aggregates and cerebral vessels. Targeting glycolytic pathways represents a viable therapeutic strategy for alleviating microglial dysfunction and neuroinflammation in AD.
Insights
Microglia in Alzheimer's disease (AD) show altered metabolism (PKM2) leading to inflammation and impaired clearance of amyloid-beta and tau. Targeting these metabolic pathways may offer new AD therapies.
Area of Science:
- Neuroscience
- Immunology
- Metabolism
Background:
- Alzheimer's disease (AD) involves neuroinflammation, amyloid-beta plaques, and tau tangles.
- Microglia, the brain's immune cells, exhibit metabolic changes, particularly in glycolysis, which can worsen inflammation and hinder toxic protein clearance.
- The enzyme pyruvate kinase M2 (PKM2) is implicated in promoting microglial inflammation linked to neurodegeneration.
Purpose of the Study:
- To investigate the role of PKM2-mediated microglial glycolytic reprogramming in Alzheimer's disease.
- To examine the relationship between PKM2, microglial inflammatory responses, and the clearance of amyloid-beta and phosphorylated tau in human AD brains.
Main Methods:
- Analysis of hippocampal-entorhinal cortex tissues from AD patients and controls using multiplex immunohistochemistry and spatial analysis.
- Quantification of PKM2-positive microglia and their association with amyloid-beta plaques, tau tangles, and cerebral vasculature.
- Assessment of microglial phagocytic activity and phenotype (HAM-like, LDAM).
Main Results:
- Increased density of PKM2+ microglia with a disease-associated (HAM-like) phenotype and lipid accumulation in AD brains.
- PKM2+ microglia were found near amyloid plaques, tau tangles, and blood vessels, with impaired chemotaxis observed.
- Significant decrease in overall microglial phagocytic activity in AD, with PKM2+ microglia showing pronounced phagocytic exhaustion.
Conclusions:
- Microglial glycolytic reprogramming via PKM2 drives a proinflammatory phenotype, phagocytic exhaustion, and accumulation around pathological hallmarks in AD.
- Targeting microglial glycolysis presents a potential therapeutic strategy for AD by addressing microglial dysfunction and neuroinflammation.
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