Evidence for the Transient Presence of Atypical Astrocytes in Mice Following a Single, Closed-Head Mild Traumatic Brain Injury
Blackman, J. B.; Krauss, R.; Quinones, S.; Tirja, P.; Sommer, M. E.; Munoz-Ballester, C.; Noubary, F.; Armbruster, M.; Robel, S.; Anderson, T.; Dulla, C. G.
Show abstract
Mild traumatic brain injury (mTBI) affects roughly 42 million people each year, causes a variety of physical, behavioral, and cognitive symptoms, and increases the risk for developing neurological disorders, including post-traumatic headache (PTH) and Alzheimers disease (AD). Multiple molecular and cellular changes occur following mTBI; here we focus on astrocytes - cells that respond to brain injury and are critical to maintaining neuronal and circuit homeostasis. While some astrocytes become reactive after mTBI, others adopt an atypical state characterized by the loss of multiple functional astrocyte proteins, including glutamate transporters (GLT-1, GLAST) and ion channels (Kir4.1), without upregulation of prototypical reactive astrocyte markers (glial fibrillary acidic protein [GFAP]). Previous studies have shown that repeated mTBI causes atypical astrocytes (AtAs) that can persist for months, but we know much less about whether a single mTBI causes similar astrocyte phenotypes. To address this, we employed a closed-head mild traumatic brain injury (chmTBI) model in male and female mice and quantified the abundance of AtAs both acutely (3-days) and chronically (1-month) after a single injury. We found that 3-days after chmTBI, AtAs were present in areas subject to blunt force trauma (BFT), consistent with previous reports, as well as in other brain regions presumably affected by diffuse injury. One month after chmTBI, however, the proportion of AtAs was similar between chmTBI and sham injured mice, thereby suggesting AtAs do not persist long term in this model. Consistent with previous studies, this chmTBI model did not induce significant GFAP-positive reactive astrocytes as assayed using immunohistochemistry, at either timepoint. Overall, we show an increase in AtAs 3-days after a single chmTBI that returns to sham levels when examined 1-month after injury. This suggests that after a single mTBI, AtAs are present but do not persist long term, unlike in repeated mTBI where AtAs persist for months after injury.
Matching journals
The top 7 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- A spatial gene expression signature of the mouse brain post-injury at the focal point of contusion 96%
- Repetitive mild closed-head injury induced synapse loss and increased local BOLD-fMRI signal homogeneity 95%
- Freshly Thawed Cryobanked Human Neural Stem Cells Engraft within Endogenous Neurogenic Niches and Restore Cognitive Function Following Chronic Traumatic Brain Injury 93%
Similar papers in this journal
- Acute treatment with TrkB agonist LM22A-4 confers neuroprotection and preserves myelin integrity in a mouse model of pediatric traumatic brain injury 97%
- A post-injury immune challenge with lipopolysaccharide following adult traumatic brain injury alters neuroinflammation and the gut microbiome acutely, but has little effect on chronic outcomes 96%
- Sex-dependent effects of peptidylarginine deiminases on neutrophil function and long-term outcomes after spinal cord injury 95%
Similar papers in this journal
- The meningeal transcriptional response to traumatic brain injury and aging 95%
- Mutated neuronal voltage-gated CaV2.1 channels causing familial hemiplegic migraine 1 increase the susceptibility for cortical spreading depolarization and seizures and worsen outcome after experimental traumatic brain injury 94%
- Cingulate cortex shapes early postnatal development of social vocalizations 94%
Similar papers in this journal
- Neuronal nuclear calcium signaling suppression of microglial reactivity is mediated by osteoprotegerin after traumatic brain injury 96%
- Effects of advanced age upon astrocyte-specific responses to acute traumatic brain injury in mice 95%
- Molecular pathology of acute spinal cord injury in middle-aged mice 94%
Similar papers in this journal
- Enriching neural stem cell and pro-healing glial phenotypes with electrical stimulation after traumatic brain injury in male rats 95%
- Exogenous L-lactate promotes astrocyte plasticity but is not sufficient for enhancing striatal synaptogenesis or motor learning in mice 92%
- Persistent Hypersomnia Following Repetitive Mild Experimental Traumatic Brain Injury: Roles of Chronic Stress and Sex Differences 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.