ArticleBrain : a journal of neurology2025
High-dimensional proteomic analysis for pathophysiological classification of traumatic brain injury.
Article in Brain : a journal of neurology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. It is linked to trial NCT07636408 (Enhancing Sleep to Improve Brain-heart Functions in People With Persistent Post-concussion Symptoms), which is not on this map. Cited by 18 papers.
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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.
The trial behind it
Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.
Enhancing Sleep to Improve Brain-heart Functions in People With Persistent Post-concussion Symptoms
Who cites it
18 citing papers in PubMed.
- The Emerging Role of UCHL1 in Neurological and Musculoskeletal Diseases.Immunology and cell biology · 2026Review
- A Dynamic and Complex Early Inflammatory Response in Blood and Cerebrospinal Fluid of Severe Traumatic Brain Injury Patients: A Dual Platform Analysis.Inflammation · 2026Observational
- Inflammatory-neurodegenerative crosstalk in pediatric severe traumatic brain injury: a multi-domain plasma proteomic study.Molecular medicine (Cambridge, Mass.) · 2026Article
- Interpreting the proteomic response to pediatric severe traumatic brain injury.Pediatric research · 2026Article
- Midlife plasma proteomic profiles indicate altered amyloid and tau processing in former elite rugby players.Journal of neurology, neurosurgery, and psychiatry · 2026Article
- Systemic inflammation and its associations in acute moderate-severe Traumatic Brain Injury: a cross-sectional study.Brain, behavior, & immunity - health · 2026Article
- Integrated analysis of porcine brain microRNA profiles following pediatric diffuse traumatic brain injury.Acta neuropathologica communications · 2026Article
- From Traumatic Brain Injury to Alzheimer's Disease: Multilevel Biomechanical, Neurovascular, and Molecular Mechanisms with Emerging Therapeutic Directions.International journal of molecular sciences · 2026Review
- Targeted plasma proteomics uncover proteins associated with KIF5A-linked SPG10 and ALS spectrum disorders.HGG advances · 2026Article
- Mapping the secondary response to traumatic brain injury using spatial transcriptomics shows acute 4-aminopyridine treatment mitigates axonal and molecular pathology.Acta neuropathologica communications · 2026Article
- Construction of a predictive early warning model based on machine learning neural network for prognosis of patients with traumatic brain injury.Frontiers in surgery · 2026Article
- Metabolomics of cerebrospinal fluid following traumatic brain injury: Exploration of biomarkers for secondary injuries and severity.Neurotherapeutics : the journal of the American Society for Experimental NeuroTherapeutics · 2026Article
- Biomarker evidence of neurodegeneration in mid-life former rugby players.Brain : a journal of neurology · 2025Article
- Uncovering injury-specific proteomic signatures and neurodegenerative risks in single and repetitive traumatic brain injury.Signal transduction and targeted therapy · 2025Article
- Article
- Identifying a Biological Signature of Trauma-Related Neurodegeneration Following Repeated Traumatic Brain Injuries Compared with Healthy Controls.Neurotrauma reports · 2025Article
- Proteomic Changes of Neurodegenerative and Inflammatory Plasma Biomarkers Following Traumatic Brain Injury.Neurotrauma reportsArticle
- Assessment value of blood pressure variability combined with serum tau protein for the prognosis of patients with traumatic brain injury.Frontiers in neurologyArticle
Corrections and comments
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Authors and funding
14 authors.
Funding
Abstract
Pathophysiology and outcomes after traumatic brain injury (TBI) are complex and heterogeneous. Current classifications are uninformative about pathophysiology. Proteomic approaches with fluid-based biomarkers are ideal for exploring complex disease mechanisms, because they enable sensitive assessment of an expansive range of processes potentially relevant to TBI pathophysiology. We used novel high-dimensional, multiplex proteomic assays to assess altered plasma protein expression in acute TBI. We analysed samples from 88 participants from the BIO-AX-TBI cohort [n = 38 moderate-severe TBI (Mayo Criteria), n = 22 non-TBI trauma and n = 28 non-injured controls] on two platforms: Alamar NULISA™ CNS Diseases and OLINK® Target 96 Inflammation. Patient participants were enrolled after hospital admission, and samples were taken at a single time point ≤10 days post-injury. Participants also had neurofilament light, GFAP, total tau, UCH-L1 (all Simoa®) and S100B (Millipore) data. The Alamar panel assesses 120 proteins, most of which were previously unexplored in TBI, plus proteins with known TBI specificity, such as GFAP. A subset (n = 29 TBI and n = 24 non-injured controls) also had subacute (10 days to 6 weeks post-injury) 3 T MRI measures of lesion volume and white matter injury (fractional anisotropy). Differential expression analysis identified 16 proteins with TBI-specific significantly different plasma expression. These were neuronal markers (calbindin 2, UCH-L1 and visinin-like protein 1), astroglial markers (S100B and GFAP), neurodegenerative disease proteins (total tau, pTau231, PSEN1, amyloid-beta-42 and 14-3-3γ), inflammatory cytokines (IL16, CCL2 and ficolin 2) and cell signalling- (SFRP1), cell metabolism- (MDH1) and autophagy-related (sequestome 1) proteins. Acute plasma levels of UCH-L1, PSEN1, total tau and pTau231 were correlated with subacute lesion volume. Sequestome 1 was positively correlated with white matter fractional anisotropy, whereas CCL2 was inversely correlated. Neuronal, astroglial, tau and neurodegenerative proteins were correlated with each other, IL16, MDH1 and sequestome 1. Exploratory clustering (k means) by acute protein expression identified three TBI subgroups that differed in injury patterns, but not in age or outcome. One TBI cluster had significantly lower white matter fractional anisotropy than control-predominant clusters but had significantly lower lesion subacute lesion volumes than another TBI cluster. Proteins that overlapped on two platforms had excellent (r > 0.8) correlations between values. We identified TBI-specific changes in acute plasma levels of proteins involved in neurodegenerative disease, inflammatory and cellular processes. These changes were related to patterns of injury, thus demonstrating that processes previously studied only in animal models are also relevant in human TBI pathophysiology. Our study highlights how proteomic approaches might improve classification and understanding of TBI pathophysiology, with implications for prognostication and treatment development.
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