Microglial cell dysregulation in brain aging and neurodegeneration
Rommy von Bernhardi1, Laura Eugenín-von Bernhardi1, Jaime Eugenín2
1Department of Neurology, Faculty of Medicine, Pontificia Universidad Católica de Chile Santiago, Chile.
Abstract:
Aging is the main risk factor for neurodegenerative diseases. In aging, microglia undergoes phenotypic changes compatible with their activation. Glial activation can lead to neuroinflammation, which is increasingly accepted as part of the pathogenesis of neurodegenerative diseases, including Alzheimer's disease (AD). We hypothesize that in aging, aberrant microglia activation leads to a deleterious environment and neurodegeneration. In aged mice, microglia exhibit an increased expression of cytokines and an exacerbated inflammatory response to pathological changes. Whereas LPS increases nitric oxide (NO) secretion in microglia from young mice, induction of reactive oxygen species (ROS) predominates in older mice. Furthermore, there is accumulation of DNA oxidative damage in mitochondria of microglia during aging, and also an increased intracellular ROS production. Increased ROS activates the redox-sensitive nuclear factor kappa B, which promotes more neuroinflammation, and can be translated in functional deficits, such as cognitive impairment. Mitochondria-derived ROS and cathepsin B, are also necessary for the microglial cell production of interleukin-1β, a key inflammatory cytokine. Interestingly, whereas the regulatory cytokine TGFβ1 is also increased in the aged brain, neuroinflammation persists. Assessing this apparent contradiction, we have reported that TGFβ1 induction and activation of Smad3 signaling after inflammatory stimulation are reduced in adult mice. Other protective functions, such as phagocytosis, although observed in aged animals, become not inducible by inflammatory stimuli and TGFβ1. Here, we discuss data suggesting that mitochondrial and endolysosomal dysfunction could at least partially mediate age-associated microglial cell changes, and, together with the impairment of the TGFβ1-Smad3 pathway, could result in the reduction of protective activation and the facilitation of cytotoxic activation of microglia, resulting in the promotion of neurodegenerative diseases.
Insights
Aging impairs microglia protective functions, promoting neuroinflammation and cognitive decline in diseases like Alzheimer's. This study reveals how mitochondrial dysfunction and reduced TGFβ1 signaling contribute to detrimental microglial activation.
Area of Science:
- Neuroscience
- Immunology
- Gerontology
Background:
- Aging is a primary risk factor for neurodegenerative diseases.
- Microglia, the brain's immune cells, undergo activation changes with age, contributing to neuroinflammation.
- Neuroinflammation is implicated in the pathogenesis of diseases like Alzheimer's disease (AD).
Purpose of the Study:
- To investigate the hypothesis that aberrant microglia activation in aging leads to a detrimental brain environment and neurodegeneration.
- To explore the mechanisms behind age-associated microglial dysfunction and its role in neuroinflammation.
Main Methods:
- Comparative analysis of microglia from young and aged mice.
- Assessment of cytokine expression, nitric oxide (NO) and reactive oxygen species (ROS) production.
- Evaluation of mitochondrial DNA oxidative damage, nuclear factor kappa B (NF-κB) activation, and TGFβ1-Smad3 signaling.
Main Results:
- Aged microglia show increased inflammatory cytokine expression and exacerbated responses.
- ROS production, particularly mitochondrial ROS, increases with age, activating NF-κB and promoting neuroinflammation.
- Impaired TGFβ1-Smad3 signaling reduces protective microglial functions like phagocytosis while facilitating cytotoxic activation.
Conclusions:
- Mitochondrial and endolysosomal dysfunction contribute to age-associated microglial changes.
- Impairment of the TGFβ1-Smad3 pathway exacerbates neuroinflammation and reduces protective microglial responses.
- These age-related microglial alterations promote neurodegenerative diseases.
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