Microglia Drive Pockets of Neuroinflammation in Middle Age
Eric N Moca1, Daniela Lecca2, Keenan T Hope1
1Department of Physiology, David Geffen School of Medicine at UCLA, Los Angeles, California 90095.
Abstract:
During aging, microglia produce inflammatory factors, show reduced tissue surveillance, altered interactions with synapses, and prolonged responses to CNS insults, positioning these cells to have profound impact on the function of nearby neurons. We and others recently showed that microglial attributes differ significantly across brain regions in young adult mice. However, the degree to which microglial properties vary during aging is largely unexplored. Here, we analyze and manipulate microglial aging within the basal ganglia, brain circuits that exhibit prominent regional microglial heterogeneity and where neurons are vulnerable to functional decline and neurodegenerative disease. In male and female mice, we demonstrate that VTA and SNc microglia exhibit unique and premature responses to aging, compared with cortex and NAc microglia. This is associated with localized VTA/SNc neuroinflammation that may compromise synaptic function as early as middle age. Surprisingly, systemic inflammation, local neuron death, and astrocyte aging do not appear to underlie these early aging responses of VTA and SNc microglia. Instead, we found that microglial lysosome status was tightly linked to early aging of VTA microglia. Microglial ablation/repopulation normalized VTA microglial lysosome swelling and suppressed increases in VTA microglial density during aging. In contrast, CX3CR1 receptor KO exacerbated VTA microglial lysosome rearrangements and VTA microglial proliferation during aging. Our findings reveal a previously unappreciated regional variation in onset and magnitude of microglial proliferation and inflammatory factor production during aging and highlight critical links between microglial lysosome status and local microglial responses to aging.SIGNIFICANCE STATEMENT Microglia are CNS cells that are equipped to regulate neuronal health and function throughout the lifespan. We reveal that microglia in select brain regions begin to proliferate and produce inflammatory factors in late middle age, months before microglia in other brain regions. These findings demonstrate that CNS neuroinflammation during aging is not uniform. Moreover, they raise the possibility that local microglial responses to aging play a critical role in determining which populations of neurons are most vulnerable to functional decline and neurodegenerative disease.
Insights
Microglia in specific brain regions age prematurely, showing inflammation and proliferation before other areas. This regional aging impacts neuronal health and function, highlighting the importance of microglial lysosome status.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia, the brain's immune cells, exhibit region-specific characteristics in young adults.
- Aging alters microglial function, impacting neuronal health and increasing susceptibility to neurodegeneration.
- The regional variability of microglial aging remains largely unexplored.
Purpose of the Study:
- To investigate the regional differences in microglial aging within the basal ganglia.
- To identify factors influencing premature microglial aging in specific brain regions.
- To understand the role of microglial lysosome status in aging-related changes.
Main Methods:
- Analysis of microglial aging in VTA, SNc, cortex, and NAc of male and female mice.
- Manipulation of microglial populations via ablation/repopulation.
- Investigation of CX3CR1 receptor knockout (KO) effects on microglial aging.
- Assessment of lysosome status and microglial proliferation.
Main Results:
- VTA and SNc microglia exhibit premature aging responses compared to cortex and NAc microglia.
- Localized neuroinflammation in VTA/SNc is associated with early aging.
- Microglial lysosome status is tightly linked to early VTA microglial aging.
- Microglial ablation/repopulation and CX3CR1 KO modulated VTA microglial aging phenotypes.
Conclusions:
- Microglial aging is region-specific, with early onset in VTA/SNc.
- Lysosome dysfunction is a key factor in premature VTA microglial aging.
- Regional microglial aging may determine neuronal vulnerability in aging and neurodegenerative diseases.


