Microglia aging in the hippocampus advances through intermediate states that drive activation and cognitive decline
Jeremy M Shea1, Saul A Villeda1,2,3
1Department of Anatomy, University of California, San Francisco, San Francisco, United States.
Abstract:
During aging, microglia - the resident macrophages of the brain - exhibit altered phenotypes and contribute to age-related neuroinflammation. While numerous hallmarks of age-related microglia have been elucidated, the progression from homeostasis to dysfunction during the aging process remains unresolved. To bridge this gap in knowledge, we undertook complementary cellular and molecular analyses of microglia in the mouse hippocampus across the adult lifespan and in the experimental aging model of heterochronic parabiosis. Single-cell RNA-Seq and pseudotime analysis revealed age-related transcriptional heterogeneity in hippocampal microglia and identified intermediate states of microglial aging that also emerge following heterochronic parabiosis. We tested the functionality of intermediate stress response states via TGFβ1 and translational states using pharmacological approaches in vitro to reveal their modulation of the progression to an activated state. Furthermore, we utilized single-cell RNA-Seq in conjunction with in vivo adult microglia-specific Tgfb1 conditional genetic knockout mouse models to demonstrate that microglia advancement through intermediate aging states drives transcriptional inflammatory activation and hippocampal-dependent cognitive decline.
Insights
Microglia aging involves intermediate states that drive brain inflammation and cognitive decline. Targeting these states may offer therapeutic avenues for age-related neurological dysfunction.
Area of Science:
- Neuroscience
- Immunology
- Aging Research
Background:
- Microglia, the brain's immune cells, change during aging, contributing to neuroinflammation.
- The transition from healthy to dysfunctional microglia during aging is not fully understood.
Purpose of the Study:
- To investigate the progression of microglial aging and its impact on brain function.
- To identify intermediate microglial states during aging and their role in cognitive decline.
Main Methods:
- Single-cell RNA sequencing (scRNA-Seq) and pseudotime analysis of mouse hippocampal microglia.
- In vitro pharmacological modulation of microglial states.
- In vivo genetic knockout models (Tgfb1) in microglia.
Main Results:
- Identified age-related transcriptional heterogeneity and intermediate microglial aging states.
- Demonstrated that TGFβ1 signaling influences microglial progression to activated states.
- Showed that microglial advancement through aging states exacerbates inflammation and cognitive deficits.
Conclusions:
- Microglial aging is a dynamic process involving intermediate states that promote neuroinflammation.
- Targeting these intermediate states could be a strategy to mitigate age-related cognitive impairment.
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