ArticleJournal of neuroinflammation2025
Single cell RNA sequencing after moderate traumatic brain injury: effects of therapeutic hypothermia.
Article in Journal of neuroinflammation, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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Who cites it
11 citing papers in PubMed.
- ABCC9/SUR2 has a Complex Expression Pattern in Human Brain Gliovascular Unit Cells, Including Astrocytes.Journal of molecular neuroscience : MN · 2026Article
- Article
- SenFlag gene signature identifies senescent cells in mouse and human tissues through a conserved core transcriptional program.The EMBO journal · 2026Article
- Enhanced endocrine-metabolic support and axonemal assembly in high-sperm-motility geese: insights from testicular cellular heterogeneity by scRNA-seq.Poultry science · 2026Article
- Integrated analysis of porcine brain microRNA profiles following pediatric diffuse traumatic brain injury.Acta neuropathologica communications · 2026Article
- A single-cell transcriptomic dataset profiling traumatic brain injury and NeuroD1-based gene therapy in mice.Scientific data · 2026Article
- A commentary on "The role of coagulopathy and subdural hematoma thickness at admission in predicting the prognoses of patients with severe traumatic brain injury: a multicenter retrospective cohort study from China".International journal of surgery (London, England) · 2026Article
- Influence of early temperature trajectories on clinical outcomes in traumatic brain injury: a multicenter validation study using machine learning.European journal of medical research · 2025Article
- Bispecific self-assembled peptides as supra-growth factors for preventing endotheliopathy and improving survival of traumatic brain injury in mice.Journal of nanobiotechnology · 2025Article
- Discovery of PAK2 as a Key Regulator of Cancer Stem Cell in Head and Neck Squamous Cell Carcinoma Using Multi-Omic Techniques.Stem cells international · 2025Article
- Single-cell RNA sequencing reveals microglial proliferative bias and neuroinflammatory communication reprogramming following traumatic brain injury.Frontiers in neurologyArticle
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Authors and funding
7 authors.
Funding
Abstract
Traumatic brain injury (TBI) initiates a cascade of cellular and molecular events that promote acute and long-term patterns of neuronal, glial, vascular, and synaptic vulnerability leading to lasting neurological deficits. These complex responses lead to patterns of programmed cell death, diffuse axonal injury, increased blood-brain barrier disruption, neuroinflammation, and reactive gliosis, each a potential target for therapeutic interventions. Posttraumatic therapeutic hypothermia (TH) has been reported to be highly protective after brain and spinal cord injury and studies have investigated molecular mechanisms underlying mild hypothermic protection while commonly assessing heterogenous cell populations. In this study we conducted single-cell RNA sequencing (scRNA-seq) on cerebral cortical tissues after experimental TBI followed by a period of normothermia or hypothermia to comprehensively assess multiple cell type-specific transcriptional responses. C57BL/6 mice underwent moderate controlled cortical impact (CCI) injury or sham surgery and then placed under sustained normothermia (37⁰C) or hypothermia (33⁰C) for 2 h. After 24 h, cortical tissues including peri-contused regions were processed for scRNA-seq. Unbiased clustering revealed cellular heterogeneity among glial and immune cells at this subacute posttraumatic time point. The analysis also revealed vascular and immune subtypes associated with neovascularization and debris clearance, respectively. Compared to normothermic conditions, TH treatment altered the abundance of specific cell subtypes and induced reactive astrocyte-specific modulation of neurotropic factor gene expression. In addition, an increase in the proportion of endothelial tip cells in the hypothermic TBI group was documented compared to normothermia. These data emphasize the importance of early temperature-sensitive glial and vascular cell processes in producing potentially neuroprotective downstream signaling cascades in a cell-type-dependent manner. The use of scRNA-seq to address cell type-specific mechanisms underlying therapeutic treatments provides a valuable resource for identifying targetable biological pathways for the development of neuroprotective and reparative interventions.
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