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Published on: September 11, 2017
MICROGLIA AND INFILTRATING T-CELLS ADOPT LONG-TERM, AGE-SPECIFIC, TRANSCRIPTIONAL CHANGES AFTER TRAUMATIC BRAIN
Zhangying Chen, Mecca B A R Islam1, Kacie P Ford1
1Division of Trauma and Critical Care, Department of Surgery, Northwestern University Feinberg School of Medicine, Chicago, Illinois.
Abstract:
Aged traumatic brain injury (TBI) patients suffer increased mortality and long-term neurocognitive and neuropsychiatric morbidity compared with younger patients. Microglia, the resident innate immune cells of the brain, are complicit in both. We hypothesized that aged microglia would fail to return to a homeostatic state after TBI and adopt a long-term injury-associated state within aged brains compared with young brains after TBI. Young and aged male C57BL/6 mice underwent TBI via controlled cortical impact versus sham injury and were sacrificed 4 months post-TBI. We used single-cell RNA sequencing to examine age-associated cellular responses after TBI. Brains were harvested, and CD45+ cells were isolated via fluorescence-activated cell sorting. cDNA libraries were prepared using the 10x Genomics Chromium Single Cell 3' Reagent Kit, followed by sequencing on a HiSeq 4,000 instrument and computational analyses. Post-injury, aged mice demonstrated a disparate microglial gene signature and an increase in infiltrating T cells compared with young adult mice. Notably, aged mice post-injury had a subpopulation of age-specific, immune-inflammatory microglia resembling the gene profile of neurodegenerative disease-associated microglia with enriched pathways involved in leukocyte recruitment and brain-derived neurotrophic factor signaling. Meanwhile, post-injury, aged mice demonstrated heterogeneous T-cell infiltration with gene profiles corresponding to CD8 effector memory, CD8 naive-like, CD8 early active T cells, and Th1 cells with enriched pathways, such as macromolecule synthesis. Taken together, our data showed that the aged brain had an age-specific gene signature change in both T-cell infiltrates and microglia, which may contribute to its increased vulnerability to TBI and the long-term sequelae of TBI.
Insights
Aging exacerbates traumatic brain injury (TBI) outcomes. Aged microglia adopt a detrimental, inflammatory state post-TBI, contributing to increased vulnerability and long-term neurocognitive deficits in older individuals.
Area of Science:
- Neuroscience
- Immunology
- Aging Research
Background:
- Aged traumatic brain injury (TBI) patients exhibit higher mortality and worse neurocognitive/neuropsychiatric outcomes than younger patients.
- Microglia, the brain's immune cells, play a role in TBI pathogenesis.
- Aging may alter microglial responses to TBI, leading to persistent detrimental states.
Purpose of the Study:
- To investigate age-associated cellular responses, particularly microglial and T-cell behavior, in the brain 4 months after TBI.
- To determine if aged microglia adopt a long-term injury-associated state compared to young microglia post-TBI.
Main Methods:
- Controlled cortical impact TBI model in young and aged male C57BL/6 mice.
- Single-cell RNA sequencing of isolated CD45+ cells 4 months post-TBI.
- Computational analysis to identify age-specific gene signatures and cellular responses.
Main Results:
- Aged mice showed distinct microglial gene signatures and increased T-cell infiltration post-TBI compared to young mice.
- A subpopulation of aged microglia exhibited an immune-inflammatory profile similar to neurodegenerative disease-associated microglia.
- Aged mice displayed heterogeneous T-cell infiltration with profiles linked to effector memory, naive-like, early active CD8 T cells, and Th1 cells.
Conclusions:
- The aged brain exhibits unique age-specific gene signature changes in both microglia and T-cell infiltrates following TBI.
- These age-related immune alterations in the brain may underlie increased TBI vulnerability and long-term sequelae in older individuals.

