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Rusty Microglia: Trainers of Innate Immunity in Alzheimer's Disease
Adonis Sfera1,2, Roberto Gradini3, Michael Cummings2
1Psychiatry, Loma Linda University, Loma Linda, CA, United States.
Abstract:
Alzheimer's disease, the most common form of dementia, is marked by progressive cognitive and functional impairment believed to reflect synaptic and neuronal loss. Recent preclinical data suggests that lipopolysaccharide (LPS)-activated microglia may contribute to the elimination of viable neurons and synapses by promoting a neurotoxic astrocytic phenotype, defined as A1. The innate immune cells, including microglia and astrocytes, can either facilitate or inhibit neuroinflammation in response to peripherally applied inflammatory stimuli, such as LPS. Depending on previous antigen encounters, these cells can assume activated (trained) or silenced (tolerized) phenotypes, augmenting or lowering inflammation. Iron, reactive oxygen species (ROS), and LPS, the cell wall component of gram-negative bacteria, are microglial activators, but only the latter can trigger immune tolerization. In Alzheimer's disease, tolerization may be impaired as elevated LPS levels, reported in this condition, fail to lower neuroinflammation. Iron is closely linked to immunity as it plays a key role in immune cells proliferation and maturation, but it is also indispensable to pathogens and malignancies which compete for its capture. Danger signals, including LPS, induce intracellular iron sequestration in innate immune cells to withhold it from pathogens. However, excess cytosolic iron increases the risk of inflammasomes' activation, microglial training and neuroinflammation. Moreover, it was suggested that free iron can awaken the dormant central nervous system (CNS) LPS-shedding microbes, engendering prolonged neuroinflammation that may override immune tolerization, triggering autoimmunity. In this review, we focus on iron-related innate immune pathology in Alzheimer's disease and discuss potential immunotherapeutic agents for microglial de-escalation along with possible delivery vehicles for these compounds.
Insights
Alzheimer's disease involves neuroinflammation driven by microglia. Excess iron and lipopolysaccharide (LPS) can impair immune tolerance, potentially worsening this neuroinflammation and leading to neuronal loss.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Alzheimer's disease (AD) is characterized by progressive cognitive decline due to neuronal loss.
- Microglia, activated by lipopolysaccharide (LPS), may promote neurotoxicity via a neurotoxic astrocytic phenotype (A1).
- Innate immune cells like microglia and astrocytes modulate neuroinflammation based on prior exposures, leading to trained or tolerized states.
Purpose of the Study:
- To review the role of iron-related innate immune pathology in Alzheimer's disease.
- To discuss potential immunotherapeutic strategies for microglial de-escalation in AD.
- To explore delivery vehicles for these immunotherapeutic agents.
Main Methods:
- Review of preclinical data and existing literature on microglial activation, LPS, and iron metabolism in AD.
- Analysis of the interplay between iron, reactive oxygen species (ROS), and LPS in modulating microglial phenotypes.
- Discussion of mechanisms underlying impaired immune tolerization in AD.
Main Results:
- Iron, ROS, and LPS activate microglia, but only LPS can induce immune tolerization.
- Elevated LPS levels in AD may fail to reduce neuroinflammation, suggesting impaired tolerization.
- Excess cytosolic iron can activate inflammasomes, promote microglial training, and exacerbate neuroinflammation, potentially overriding immune tolerance.
Conclusions:
- Iron dysregulation and impaired immune tolerization are critical factors in Alzheimer's disease neuroinflammation.
- Targeting iron metabolism and microglial activation presents a promising avenue for AD immunotherapy.
- Further research into microglial de-escalation strategies and targeted delivery systems is warranted for AD treatment.