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Search Results (31)

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Keywords = UCH-L and traumatic brain injury

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18 pages, 3151 KB  
Systematic Review
GFAP and UCH-L1 for Ruling out Intracranial Lesions After Mild Traumatic Brain Injury: A Systematic Review and Meta-Analysis
by Lorena San Miguel, Vicky Jespers and Dominique Roberfroid
J. Clin. Med. 2026, 15(13), 4858; https://doi.org/10.3390/jcm15134858 - 23 Jun 2026
Viewed by 559
Abstract
Background: Patients with mild traumatic brain injury (mTBI) have a small but clinically relevant risk of intracranial injury (ICI), requiring timely detection. Computed tomography (CT) remains the diagnostic gold standard but is costly and exposes patients to ionising radiation. Combining blood-based biomarkers, [...] Read more.
Background: Patients with mild traumatic brain injury (mTBI) have a small but clinically relevant risk of intracranial injury (ICI), requiring timely detection. Computed tomography (CT) remains the diagnostic gold standard but is costly and exposes patients to ionising radiation. Combining blood-based biomarkers, glial fibrillary acidic protein (GFAP) and ubiquitin carboxy-terminal hydrolase L1 (UCH-L1), with clinical decision rules may allow safe exclusion of ICI without CT, reducing unnecessary imaging, radiation exposure, and resource use. Methods: A systematic review of clinical and economic studies in patients with mTBI was registered in PROSPERO (CRD420251051158). Searches were conducted in January 2025 and updated in May 2025 in MEDLINE, Embase, and the Cochrane Library. The aim was to assess the diagnostic accuracy and economic value of the combination of GFAP and UCH-L1 compared with CT scanning to rule out ICI in both adults and children with mTBI. Where available, studies directly comparing GFAP and UCH-L1 with S100β were also analysed descriptively. The quality of the clinical evidence was assessed with QUADAS-2 and GRADE. Meta-analyses used a bivariate random-effects model, with heterogeneity and sensitivity analyses explored. Results: Overall, 21 studies were considered in our review. Moderate- to high-quality evidence indicates that GFAP and UCH-L1, when used together with clinical assessment, have very high sensitivity and can reliably rule out ICI in adults with mTBI presenting within 12 h to the emergency department. Evidence for paediatric populations shows promise but remains very limited. Specificity is low, particularly in older adults, which limits the ability to reduce CT use in this high-risk group. Research on age-adjusted cut-offs is ongoing and may help to reduce the proportion of false positive tests without compromising sensitivity. Few studies directly compared GFAP and UCH-L1 with S100β, with slightly higher to equivalent sensitivity for GFAP and UCH-L1. Economic evaluations suggest possible cost savings and reduced CT utilisation, but these analyses rely on assumptions unsupported by robust data and are highly context-dependent. There is a lack of clarity in the included studies regarding whether existing clinical head rules were used to define the study populations (i.e., to determine which patients would be recommended for CT scanning) and, if so, which specific rules were applied. Conclusions: Evidence shows that GFAP and UCH-L1 can safely exclude ICI in adults with mTBI in whom a CT scan would otherwise be considered based on clinical assessment or decision rules. Nevertheless, real-world evidence and cost-effectiveness data are scarce. Further prospective studies, including paediatric and elderly populations, and integration with clinical decision rules will be informative to ensure optimal use in clinical practice. Full article
(This article belongs to the Section Brain Injury)
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13 pages, 937 KB  
Article
Validation of Blood-Based Biomarkers After Mild Traumatic Brain Injury with GCS 15 in a Singapore Emergency Department: An Observational Study
by Win Sen Kuan, Ying Wei Yau, Desiree Xin Ying Lim, Chew Kiat Yeoh, Nicole Mun Teng Cheung, Hannah Xin Yi Lim and Mui Teng Chua
Medicina 2026, 62(6), 1095; https://doi.org/10.3390/medicina62061095 - 5 Jun 2026
Viewed by 805
Abstract
Background and Objectives: Traumatic brain injury (TBI) affects millions of people worldwide. The Glasgow Coma Scale (GCS) is commonly used to characterize its severity. Head computed tomography (CT) is frequently the diagnostic imaging modality of choice. Recently, blood-based biomarkers such as ubiquitin [...] Read more.
Background and Objectives: Traumatic brain injury (TBI) affects millions of people worldwide. The Glasgow Coma Scale (GCS) is commonly used to characterize its severity. Head computed tomography (CT) is frequently the diagnostic imaging modality of choice. Recently, blood-based biomarkers such as ubiquitin C-terminal hydrolase-L1 (UCH-L1) and glial fibrillary acidic protein (GFAP) have emerged as possible adjuncts to head CT in evaluating mild TBI (mTBI). We aim to validate the performance of the Abbott Alinity i TBI test (UCH-L1 and GFAP) compared to head CT in an Asian cohort with mTBI and GCS 15. Materials and Methods: This prospective observational study was conducted at a tertiary academic medical center from 2 December 2024 to 19 March 2025. Patients aged 21 years and above who sustained head injury within 12 h of ED attendance had GCS of 15 and required head CT as per attending physician were eligible. Plasma was separated from whole blood within 10 min of collection and immediately stored at −20 °C. UCH-L1 and GFAP levels were analyzed in batches within 28 days of recruitment at the hospital central laboratory using the Alinity i TBI test. Results: Among 120 patients enrolled, there was predominance of males (55.8%, 67/120) and Chinese ethnicity (75.8%, 91/120). The median age was 73 (interquartile range [IQR] 56 to 79) years. Overall incidence of positive head CT was 9.2% (11/120); all 11 patients had positive Alinity i TBI tests. The sensitivity and negative predictive value of the biomarkers in our cohort were both 100% (95% confidence intervals [CIs] 71.5% to 100% and 78.2% to 100%, respectively), specificity 13.8% (95% CI 7.9% to 21.7%) and positive predictive value 10.5% (95%CI 5.4% to 18%). Exploratory post hoc analysis suggested that GFAP alone, at the prespecified assay threshold, was associated with modestly higher specificity [21.1% (95% CI 13.9% to 30.0%)] in this cohort. Conclusions: The Alinity i TBI test can safely rule out intracranial injury in patients with mTBI and GCS 15 presenting within 12 h of injury. However, specificity was low, limiting its ability to reduce head CT use in its current form. Exploratory post hoc analyses of the individual biomarkers, particularly GFAP alone, should be interpreted cautiously. Future studies should focus on optimizing specificity while maintaining a high degree of sensitivity. Full article
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18 pages, 1255 KB  
Article
Age- and Sex-Related Differences in GFAP and UCH-L1 Levels in Mild Traumatic Brain Injury
by Celia Espinar-Barranco, Gemma Álvarez-Corral, María del Rio-Rico, María Isabel Romero Manjón, Eva Gutiérrez, Francisco Ruiz-Cabello and Juan Francisco Gutiérrez-Bautista
Int. J. Mol. Sci. 2026, 27(11), 4944; https://doi.org/10.3390/ijms27114944 - 29 May 2026
Viewed by 525
Abstract
Blood-based biomarkers such as glial fibrillary acidic protein (GFAP) and ubiquitin carboxy-terminal hydrolase L1 (UCH-L1) are increasingly used to rule out intracranial injury in patients with mild traumatic brain injury (mTBI); however, their circulating levels may be influenced by demographic factors. This study [...] Read more.
Blood-based biomarkers such as glial fibrillary acidic protein (GFAP) and ubiquitin carboxy-terminal hydrolase L1 (UCH-L1) are increasingly used to rule out intracranial injury in patients with mild traumatic brain injury (mTBI); however, their circulating levels may be influenced by demographic factors. This study evaluated the effects of age and sex on GFAP and UCH-L1 concentrations and assessed whether adjusted cut-off values improve the diagnostic performance of head computed tomography (CT). In this retrospective observational study, 820 consecutive patients with mTBI presenting within 12 h of injury underwent CT imaging and biomarker measurements using a chemiluminescent immunoassay. CT-positive findings were identified in 11.8% of patients (n = 97). Biomarker levels were analyzed according to age and sex, and optimized cut-off values were derived and evaluated. GFAP concentrations varied significantly according to both age and sex, whereas UCH-L1 demonstrated mainly sex-related differences. The use of manufacturer-recommended fixed cut-offs resulted in markedly reduced specificity in older patients, particularly for GFAP. Age-adjusted cut-offs improved specificity while maintaining high negative predictive values across all age groups, although this was accompanied by a reduction in sensitivity and an increase in false-negative results. For the combined GFAP/UCH-L1 assay, sensitivity ranged from 90.9% to 100%, specificity from 42.6% to 57.0%, and negative predictive values from 97.7% to 100%. Age-adjusted cut-off values for GFAP ranged from 82.1 to 112.2 pg/mL across adult age groups, whereas age-adjusted UCH-L1 cut-off values ranged from 469.6 to 1072.5 pg/mL. In conclusion, age and sex significantly influence GFAP and UCH-L1 concentrations in mTBI patients. Demographic-adjusted cut-offs improve diagnostic calibration and reduce false-positive classifications while maintaining high negative predictive values despite a moderate reduction in sensitivity. Full article
(This article belongs to the Section Molecular Neurobiology)
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9 pages, 691 KB  
Article
A Randomized Placebo-Controlled Trial of Mild Hyperbaric Oxygen on Serum Biomarkers in Persistent Post-Concussive Symptoms: Analysis at 13-Week Follow-Up
by Emilie E. Vomhof-DeKrey and Olayinka David Ajayi
Trauma Care 2026, 6(2), 9; https://doi.org/10.3390/traumacare6020009 - 7 May 2026
Viewed by 863
Abstract
Background: The management of persistent post-concussive symptoms (PPCS) is limited by the absence of objective biomarkers to guide treatment. We examined the early effects of a mild hyperbaric oxygen protocol on serum biomarkers of neuronal injury (neurofilament light chain, NfL), astrogliosis (glial fibrillary [...] Read more.
Background: The management of persistent post-concussive symptoms (PPCS) is limited by the absence of objective biomarkers to guide treatment. We examined the early effects of a mild hyperbaric oxygen protocol on serum biomarkers of neuronal injury (neurofilament light chain, NfL), astrogliosis (glial fibrillary acidic protein, GFAP), acute neuronal injury (ubiquitin C-terminal hydrolase L1, UCH-L1), and axonal stability (total tau) in patients with PPCS. Methods: In this single-center, randomized, placebo-controlled trial, we enrolled adults with PPCS lasting from 3 months to 5 years after mild traumatic brain injury. Participants received 40 sessions of either active treatment (≥99% O2 at 1.5 atmospheres absolute, ATA) or a true chamber placebo (21% O2 with simulated pressure changes). Serum samples were collected at baseline and 13 weeks after treatment. The primary outcome was the difference between groups in serum NfL levels. Analysis was performed on an intention-to-treat basis using a two-way ANOVA with Šídák’s multiple comparison test. Findings: Of 84 individuals assessed, 20 were randomized (Placebo, n = 9; Intervention, n = 11). Eight from each group received their respective interventions. At 13 weeks, one participant from each group was lost to follow-up, leaving seven per group for analysis. We found no significant differences in serum levels of GFAP, NfL, total tau, or UCH-L1 between the intervention and placebo groups from baseline to 13 weeks. Conclusions: A 40-session mild hyperbaric oxygen protocol at 1.5 ATA did not significantly change serum biomarkers of neuronal injury, astrogliosis, or acute neuronal damage at 13 weeks post-treatment in individuals with PPCS. This early-phase analysis, at the highest point of participant retention, provides no evidence of a treatment effect on these pathophysiological markers. Full article
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25 pages, 1521 KB  
Review
Astroglial and Neuronal Injury Markers (GFAP, UCHL-1, NfL, Tau, S100B) as Diagnostic and Prognostic Biomarkers in PTSD and Neurological Disorders
by Ewa Alicja Ogłodek and Michal Bar
Int. J. Mol. Sci. 2026, 27(5), 2374; https://doi.org/10.3390/ijms27052374 - 4 Mar 2026
Cited by 5 | Viewed by 2145
Abstract
Post-traumatic stress disorder (PTSD) is increasingly recognized as a neurobiological condition involving persistent neuroinflammation, glial dysfunction, and neuronal injury. Chronic stress induces dysregulation of the hypothalamic–pituitary–adrenal axis, mitochondrial impairment, oxidative stress, and activation of inflammatory signaling pathways, leading to blood–brain barrier (BBB) disruption [...] Read more.
Post-traumatic stress disorder (PTSD) is increasingly recognized as a neurobiological condition involving persistent neuroinflammation, glial dysfunction, and neuronal injury. Chronic stress induces dysregulation of the hypothalamic–pituitary–adrenal axis, mitochondrial impairment, oxidative stress, and activation of inflammatory signaling pathways, leading to blood–brain barrier (BBB) disruption and progressive neural damage. These processes are reflected in circulating biomarkers that provide insight into underlying molecular pathology. This article focuses on key astroglial and neuronal injury markers—glial fibrillary acidic protein (GFAP), ubiquitin C-terminal hydrolase L1 (UCHL-1), neurofilament light chain (NfL), tau protein, and S100B—as indicators of stress-related brain dysfunction in PTSD. GFAP and S100B reflect astrocyte activation and BBB permeability, while UCHL-1, NfL, and tau indicate neuronal injury, axonal degeneration, and cytoskeletal instability. Accumulating clinical and experimental evidence suggests that altered levels of these biomarkers are associated with symptom severity, cognitive impairment, and neuroinflammatory activity in PTSD, often overlapping with mechanisms observed in neurodegenerative disorders. This review summarizes the current understanding of the biological significance and clinical relevance of these biomarkers and highlights their potential utility for early diagnosis, disease monitoring, and risk stratification. The combined assessment of astroglial and neuronal markers may support a more precise, biologically grounded approach to PTSD and facilitate the development of personalized diagnostic and therapeutic strategies. Full article
(This article belongs to the Section Molecular Neurobiology)
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21 pages, 331 KB  
Review
Blood-Based Biomarkers for Traumatic Brain Injury: A New Era in Diagnosis and Prognosis
by Giulia Pignataro, Marta Sacco Fernandez, Marcello Candelli, Gloria Rozzi, Andrea Piccioni, Evelina Forte and Francesco Franceschi
Int. J. Mol. Sci. 2025, 26(24), 12158; https://doi.org/10.3390/ijms262412158 - 18 Dec 2025
Cited by 10 | Viewed by 4341
Abstract
Traumatic brain injury (TBI) is a major global health concern and a leading cause of mortality and disability. Head computed tomography (CT) remains indispensable for the detection of intracranial hemorrhage; however, its indiscriminate use in mild trauma increases radiation exposure, cumulative oncogenic risk, [...] Read more.
Traumatic brain injury (TBI) is a major global health concern and a leading cause of mortality and disability. Head computed tomography (CT) remains indispensable for the detection of intracranial hemorrhage; however, its indiscriminate use in mild trauma increases radiation exposure, cumulative oncogenic risk, and healthcare costs. Consequently, there is growing interest in tools capable of improving sensitivity in mild or early-stage TBI. Protein-based biomarkers are promising complements to conventional assessment. Molecules such as glial fibrillary acidic protein (GFAP), ubiquitin C-terminal hydrolase L1 (UCH-L1), S100 calcium-binding protein B (S100B), and neurofilament light chain (NfL) reflect astroglial activation, neuronal injury, and axonal damage, enabling objective evaluation of neurotrauma. Beyond protein biomarkers, metabolomic and lipidomic approaches capture alterations associated with early metabolic distress, oxidative stress, mitochondrial dysfunction, and membrane disruption following TBI. High-resolution mass spectrometry studies have identified reproducible metabolite and lipid signatures correlating with injury severity and functional outcomes. Longitudinal profiling further reveals dynamic metabolic trajectories that distinguish secondary injury progression from stabilization, supporting predictive modeling and risk stratification. Together, these advances pave the way toward precision medicine in neurotrauma. Nevertheless, variability in assay performance and sampling timing continues to limit widespread clinical adoption. Future research should prioritize methodological standardization, analytical validation, and the integration of multi-omic data with machine learning–based predictive models. Full article
(This article belongs to the Section Molecular Pathology, Diagnostics, and Therapeutics)
18 pages, 918 KB  
Article
Association of Marshall CT Scores with GFAP, UCH-L1, Tau, NfL, and p-Tau231 After Traumatic Brain Injury
by Katie A. Edwards, John Alice, Maryn Day, Joseph Yun, Sijung Yun, Heather E. Dark, Lillian Gabor and Jessica M. Gill
Int. J. Mol. Sci. 2025, 26(24), 11765; https://doi.org/10.3390/ijms262411765 - 5 Dec 2025
Viewed by 2182
Abstract
This study identifies a significant association among blood-based biomarkers of traumatic brain injury (TBI) and the Marshall CT classification of TBI (MCTC) scores, but not with Glasgow Coma Scale (GCS) scores. We aimed to determine whether GCS and MCTC scores relate to glial [...] Read more.
This study identifies a significant association among blood-based biomarkers of traumatic brain injury (TBI) and the Marshall CT classification of TBI (MCTC) scores, but not with Glasgow Coma Scale (GCS) scores. We aimed to determine whether GCS and MCTC scores relate to glial fibrillary acid protein (GFAP), ubiquitin carboxy hydrolase-1 (UCH-L1), tau, neurofilament light chain (NfL), and phosphorylated tau (p-tau231) concentrations following acute TBIs. Participants included patients from 20 trauma centers across 12 regional sites in the United States and Canada with an initial CT scan within 6 h after TBI and GCS scores of 3 to 12. Blood samples collected upon hospital arrival were analyzed for biomarker concentrations (pg/mL). Concentrations from 271 patients with GCS ≥ 9 were compared to 145 with GCS ≤ 9. Samples from 347 patients with MCTC < 3 were compared to 70 with MCTC ≥ 3. No significant differences in GCS groups were found (p’s > 0.5), while MCTC groups differed significantly (p’s < 0.001). Higher concentrations of plasma GFAP, NfL, and p-tau231 correlated with MCTC scores > 3, with no associations with GCS. Future research might show an application in individual risk assessments to improve triaging of TBI patients. Full article
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13 pages, 443 KB  
Review
Objective Markers for Diagnosing Concussions: Beyond Blood Biomarkers and the Role of Real-Time Diagnostic Tools
by Robert Kamil, Youssef Atef AbdelAlim, Shiv Patel, Paxton Sweeney, Harry Feng, Jasdeep Hundal and Ira Goldstein
J. Clin. Med. 2025, 14(21), 7727; https://doi.org/10.3390/jcm14217727 - 30 Oct 2025
Cited by 2 | Viewed by 1966
Abstract
Concussions, classified as a type of mild traumatic brain injury (mTBI), are frequently underdiagnosed due to the subjective nature of symptoms and limitations in existing diagnostic methodologies. Current clinical evaluations, including tools such as the Sport Concussion Assessment Tool 5 (SCAT5), Balance Error [...] Read more.
Concussions, classified as a type of mild traumatic brain injury (mTBI), are frequently underdiagnosed due to the subjective nature of symptoms and limitations in existing diagnostic methodologies. Current clinical evaluations, including tools such as the Sport Concussion Assessment Tool 5 (SCAT5), Balance Error Scoring System (BESS), and Vestibular Ocular Motor Screening (VOMS), demonstrate high sensitivity and specificity but often fail to capture the full complexity of concussive injuries. Emerging diagnostic approaches, such as blood biomarkers (for example, glial fibrillary acidic protein (GFAP), ubiquitin C-terminal hydrolase-L1 (UCH-L1), S100 calcium-binding protein B (S100B), and tau) and advanced neuroimaging techniques (for example, diffusion tensor imaging (DTI) and functional magnetic resonance imaging (fMRI)), show promise but remain impractical for routine clinical use due to accessibility and standardization challenges. This review examines objective markers, including neuroimaging, electrophysiological measures (for example, Electroencephalography (EEG), Magnetoencephalography (MEG)), and real-time diagnostic tools, as complementary strategies to enhance traditional clinical evaluations. Findings indicate that while clinical assessments remain central to concussion diagnosis, integrating them with advanced imaging and electrophysiological tools can provide more accurate diagnostics and recovery tracking. Biomarkers, although not yet ready for widespread use, hold significant potential for future applications. Further research is required to validate these methods and establish standardized protocols to facilitate their integration into clinical practice. Full article
(This article belongs to the Section Brain Injury)
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27 pages, 3261 KB  
Article
A Bioinformatic Study of Genetics Involved in Determining Mild Traumatic Brain Injury Severity and Recovery
by Mahnaz Tajik and Michael D. Noseworthy
Biomedicines 2025, 13(11), 2669; https://doi.org/10.3390/biomedicines13112669 - 30 Oct 2025
Viewed by 2403
Abstract
Objectives: This in silico study sought to identify specific biomarkers for mild traumatic brain injury (mTBI) through the analysis of publicly available gene and miRNA databases, hypothesizing their influence on neuronal structure, axonal integrity, and regeneration. Methods: This study implemented a three-step process: [...] Read more.
Objectives: This in silico study sought to identify specific biomarkers for mild traumatic brain injury (mTBI) through the analysis of publicly available gene and miRNA databases, hypothesizing their influence on neuronal structure, axonal integrity, and regeneration. Methods: This study implemented a three-step process: (1) data searching for mTBI-related genes in Gene and MalaCard databases and literature review, (2) data analysis involved performing functional annotation through GO and KEGG, identifying hub genes using Cytoscape, mapping protein–protein interactions via DAVID and STRING, and predicting miRNA targets using miRSystem, miRWalk2.0, and mirDIP, and (3) RNA-sequencing analysis applied to the mTBI dataset GSE123336. Results: Eleven candidate hub genes associated with mTBI outcome were identified: APOE, S100B, GFAP, BDNF, AQP4, COMT, MBP, UCHL1, DRD2, ASIC1, and CACNA1A. Enrichment analysis linked these genes to neuron projection regeneration and synaptic plasticity. miRNAs linked to the mTBI candidate genes were hsa-miR-9-5p, hsa-miR-204-5p, hsa-miR-1908-5p, hsa-miR-16-5p, hsa-miR-10a-5p, has-miR-218-5p, has-miR-34a-5p, and has-miR-199b-5p. The RNA sequencing revealed 2664 differentially expressed miRNAs post-mTBI, with 17 showing significant changes at the time of injury and 48 h post-injury. Two miRNAs were positively correlated with direct head hits. Conclusions: Our bioinformatic analysis suggests that specific genes and miRNAs, particularly hsa-miR-10a-5p, may be involved in molecular pathways influencing mTBI outcomes. Our research may guide future mTBI diagnostics, emphasizing the need to measure and track these specific genes and miRNAs in diverse cohorts. Full article
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17 pages, 1585 KB  
Article
Short-Term Cyclosporin A Treatment Reduced Serum Neurofilament-Light Levels in Diffuse but Not Focal Traumatic Brain Injury in a Piglet Model
by Colin M. Huber, Akshara D. Thakore, Anna Oeur and Susan S. Margulies
Biomedicines 2025, 13(10), 2547; https://doi.org/10.3390/biomedicines13102547 - 18 Oct 2025
Cited by 1 | Viewed by 1138
Abstract
Background/Objectives: Traumatic brain injury (TBI) in the pediatric patient results in acute neurophysiological deficits and can have potential long-term sequelae, impacting neurodevelopment. Serum biomarkers are an active area of study for TBI prognosis and diagnosis. Cyclosporin A (CsA), an immunosuppressant drug with [...] Read more.
Background/Objectives: Traumatic brain injury (TBI) in the pediatric patient results in acute neurophysiological deficits and can have potential long-term sequelae, impacting neurodevelopment. Serum biomarkers are an active area of study for TBI prognosis and diagnosis. Cyclosporin A (CsA), an immunosuppressant drug with neuroprotective qualities, targets mitochondria to stabilize the neurometabolic energy crisis following TBI. The objective of this study was to determine the acute effect of CsA treatment following focal and diffuse TBI on piglet serum biomarkers associated with glial neurofilaments, axonal dysfunction, and neuronal injury. Methods: Biomarker concentrations of GFAP, Nf-L, and UCH-L1 were quantified retrospectively from porcine serum samples (n = 488) at multiple timepoints from three experimental groups: anesthetized sham (n = 10), controlled cortical impact (CCI, n = 49), or rapid, non-impact rotations (RNR, n = 151) of the head. Injured animals received 24 h post-injury intravenous administration of saline or one of four CsA treatment doses (10, 20, 40, or 60 mg/kg/day), and then, were sacrificed. Results: After RNR, GFAP levels significantly increased from baseline at 1 h and recovered by 1 day to healthy reference ranges, while Nf-L increased at 1 day. Multiple CsA treatment doses (10, 40 mg/kg/day) significantly reduced Nf-L levels at 1 day compared to the untreated group. After CCI, GFAP and Nf-L increased at 1 day; there were no significant treatment effects. Conclusions: Focal and diffuse brain injury mechanisms resulted in distinct biomarker timelines. CsA reduced Nf-L levels at 1 day after diffuse TBI, showing promise of acute therapeutic benefit and warranting further investigation in extended timelines. Full article
(This article belongs to the Special Issue Mechanisms and Therapeutic Strategies of Brain and Spinal Cord Injury)
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19 pages, 349 KB  
Review
From the Emergency Department to Follow-Up: Clinical Utility of Biomarkers in Mild Traumatic Brain Injury
by Giacomo Spaziani, Gloria Rozzi, Silvia Baroni, Benedetta Simeoni, Simona Racco, Fabiana Barone, Mariella Fuorlo, Francesco Franceschi and Marcello Covino
Emerg. Care Med. 2025, 2(3), 45; https://doi.org/10.3390/ecm2030045 - 8 Sep 2025
Cited by 3 | Viewed by 4083
Abstract
Mild traumatic brain injury (mTBI) remains a clinical challenge, particularly in cases with normal computed tomography (CT) findings but persistent or evolving symptoms. Conventional diagnostic approaches relying solely on clinical criteria and neuroimaging often lack adequate sensitivity and may lead to unnecessary radiation [...] Read more.
Mild traumatic brain injury (mTBI) remains a clinical challenge, particularly in cases with normal computed tomography (CT) findings but persistent or evolving symptoms. Conventional diagnostic approaches relying solely on clinical criteria and neuroimaging often lack adequate sensitivity and may lead to unnecessary radiation exposure. Recent advances in biomarker research have identified several blood-based proteins such as glial fibrillary acidic protein (GFAP), ubiquitin carboxy-terminal hydrolase L1 (UCH-L1), S100 calcium-binding protein B (S100B), Tau protein, neuron-specific enolase (NSE), and neurofilament light chain (NFL) as potential tools for improving diagnostic precision and guiding clinical decisions. In this study, we synthesize current evidence evaluating the diagnostic and prognostic utility of these biomarkers using sensitivity, specificity, negative predictive value (NPV), and area under the receiver operating characteristic curve (AUC). GFAP and UCH-L1 have shown high sensitivity in detecting intracranial lesions and are now FDA-cleared for emergency department triage within 12 h of injury. While S100B remains widely investigated, its low specificity limits its application beyond select clinical scenarios (i.e., in patients without polytrauma). Additionally, Tau, NSE, and NFL are emerging as prognostic markers, with studies suggesting associations with persistent symptoms and long-term neurocognitive outcomes. Overall, the integration of biomarker-based data into clinical workflows may enhance early mTBI diagnosis, reduce reliance on imaging, and enable individualized follow-up and prognostic stratification. Future research should refine optimal sampling windows and explore multimarker panels to maximize diagnostic and prognostic performance. Full article
16 pages, 332 KB  
Systematic Review
Blood Biomarkers as Optimization Tools for Computed Tomography in Mild Traumatic Brain Injury Management in Emergency Departments: A Systematic Review
by Ángela Caballero Ballesteros, María Isabel Alonso Gallardo and Juan Mora-Delgado
J. Pers. Med. 2025, 15(8), 350; https://doi.org/10.3390/jpm15080350 - 3 Aug 2025
Cited by 4 | Viewed by 3047
Abstract
Background/Objectives: Traumatic brain injury (TBI), especially mild TBI (mTBI), is frequently caused by traffic accidents, falls, or sports injuries. Although computed tomography (CT) is the gold standard for diagnosis, overuse can lead to unnecessary radiation exposure, increased healthcare costs, and emergency department saturation. [...] Read more.
Background/Objectives: Traumatic brain injury (TBI), especially mild TBI (mTBI), is frequently caused by traffic accidents, falls, or sports injuries. Although computed tomography (CT) is the gold standard for diagnosis, overuse can lead to unnecessary radiation exposure, increased healthcare costs, and emergency department saturation. Blood-based biomarkers have emerged as potential tools to optimize CT scan use. This systematic review aims to evaluate recent evidence on the role of specific blood biomarkers in guiding CT decisions in patients with mTBI. Methods: A systematic search was conducted in the PubMed, Cochrane, and CINAHL databases for studies published between 2020 and 2024. Inclusion criteria focused on adult patients with mTBI evaluated using both CT imaging and at least one of the following biomarkers: glial fibrillary acidic protein (GFAP), ubiquitin carboxy-terminal hydrolase L1 (UCH-L1), and S100 calcium-binding protein B (S100B). After screening, six studies were included in the final review. Results: All included studies reported high sensitivity and negative predictive value for the selected biomarkers in detecting clinically relevant intracranial lesions. GFAP and UCH-L1, particularly in combination, consistently identified low-risk patients who could potentially forgo CT scans. While S100B also showed high sensitivity, discrepancies in cutoff values across studies highlighted the need for harmonization. Conclusions: Blood biomarkers such as GFAP, UCH-L1, and S100B demonstrate strong potential to reduce unnecessary CT imaging in mTBI by identifying patients at low risk of significant brain injury. Future research should focus on standardizing biomarker thresholds and validating protocols to support their integration into clinical practice guidelines. Full article
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24 pages, 1218 KB  
Review
From Acute Injury to Chronic Neurodegeneration: Molecular Mechanisms Linking Secondary Brain Injury to Long-Term Pathology
by Julia K. Kaniuk, Divy Kumar, Christopher Mazurek, Sepehr Khavari, Christopher Sollenberger, Arun Ahuja, James M. Mossner and Christopher S. Ahuja
Int. J. Mol. Sci. 2025, 26(15), 7191; https://doi.org/10.3390/ijms26157191 - 25 Jul 2025
Cited by 7 | Viewed by 3517
Abstract
Traumatic brain injury (TBI) initiates a complex cascade of pathophysiological events that have far-reaching consequences beyond the initial injury. This review examines the current state of the literature on the mechanisms underlying neurotrauma and neuroinflammation, with particular emphasis on the molecular cross-talk between [...] Read more.
Traumatic brain injury (TBI) initiates a complex cascade of pathophysiological events that have far-reaching consequences beyond the initial injury. This review examines the current state of the literature on the mechanisms underlying neurotrauma and neuroinflammation, with particular emphasis on the molecular cross-talk between these disparate pathways that ultimately precipitates the development of chronic traumatic encephalopathy (CTE). We integrate this mechanistic knowledge with potential diagnostic biomarkers, such as glial fibrillary acidic protein (GFAP), neurofilament light chain (NfL), and ubiquitin carboxy-terminal hydrolase L1 (UCH-L1), and advances in neuroimaging and machine learning-based predictive tools. Finally, we discuss the current therapeutic approaches under investigation, and highlight which molecular targets have yet to be explored for potential therapeutic development. Full article
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12 pages, 1366 KB  
Article
Budget Impact Analysis of the Use of Specific Biomarkers GFAP and UCH-L1 in the Management of Mild Traumatic Brain Injury in Spain
by Francisco Moya Torrecilla, Gemma Álvarez-Corral, Eva Gutiérrez Pérez, Daniel Morell-Garcia, Juan Ortega Pérez, Beatriz Miriam Rodríguez, Leticia Sánchez Martín and Francisco Temboury Ruiz
J. Clin. Med. 2025, 14(12), 4095; https://doi.org/10.3390/jcm14124095 - 10 Jun 2025
Cited by 6 | Viewed by 2347
Abstract
Objective: To evaluate the economic impact associated with the use of specific brain biomarkers glial fibrillary acid protein (GFAP) and ubiquitin C-terminal hydrolase L1 (UCH-L1) in adult patients with suspected mild traumatic brain injury (TBI) in a standard Spanish hospital setting. Methods: We [...] Read more.
Objective: To evaluate the economic impact associated with the use of specific brain biomarkers glial fibrillary acid protein (GFAP) and ubiquitin C-terminal hydrolase L1 (UCH-L1) in adult patients with suspected mild traumatic brain injury (TBI) in a standard Spanish hospital setting. Methods: We used a budget impact analysis (BIA) to compare the cost of standard of care using head computed tomography (CT) to evaluate intracranial injury with a scenario incorporating specific biomarkers GFAP and UCH-L1 in an estimated population of 3500 adult patients attending the hospital emergency department with a score of 13 to 15 on the Glasgow Coma Scale (GCS). The probabilities associated with clinical procedures were obtained from a multidisciplinary group of experts from Spanish hospitals and supplemented with data from the literature. Costs were estimated using hospital tariffs from the Spanish autonomous communities and other official sources. Results: The incorporation of specific biomarkers GFAP and UCH-L1 in the management of mild TBI could generate an estimated annual savings of EUR 696,634 in a standard Spanish hospital, mainly due to reduced CT use. The average savings per patient would be EUR 199.04, and the care time would be reduced by 111 min. Sensitivity analysis, with variations of ±20% in the parameters, confirms these savings. Conclusions: This study suggests that the use of specific biomarkers GFAP and UCH-L1 in the management of mild TBI patients in Spain could reduce the average cost per patient, generating significant savings for hospitals. Future studies that incorporate data from clinical records will help validate these results. Full article
(This article belongs to the Section Brain Injury)
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Systematic Review
The Diagnostic and Prognostic Role of Biomarkers in Mild Traumatic Brain Injury: An Umbrella Meta-Analysis
by Ioannis Mavroudis, Foivos Petridis, Dimitrios Kazis, Alin Ciobica, Gabriel Dăscălescu, Antoneta Dacia Petroaie, Irina Dobrin, Otilia Novac, Ioana Vata and Bogdan Novac
Brain Sci. 2025, 15(6), 581; https://doi.org/10.3390/brainsci15060581 - 28 May 2025
Cited by 9 | Viewed by 4475
Abstract
Background: Mild traumatic brain injury (mTBI), commonly known as concussion, is a major public health issue characterized by subtle neuronal damage that traditional imaging techniques such as computed tomography (CT) and magnetic resonance imaging (MRI) often fail to detect. Fluid biomarkers have emerged [...] Read more.
Background: Mild traumatic brain injury (mTBI), commonly known as concussion, is a major public health issue characterized by subtle neuronal damage that traditional imaging techniques such as computed tomography (CT) and magnetic resonance imaging (MRI) often fail to detect. Fluid biomarkers have emerged as promising diagnostic and prognostic tools for mTBI. Objectives: This umbrella meta-analysis aims to evaluate the diagnostic accuracy and clinical utility of the key fluid biomarkers, S100B, glial fibrillary acidic protein (GFAP), ubiquitin carboxy-terminal hydrolase L1 (UCH-L1, neurofilament light chain (NfL)) and tau protein, in detecting mTBI and to clarify their roles as screening, confirmatory, and complementary indicators. Methods: A systematic review was performed using PubMed, Web of Science, Scopus, and Cochrane to identify the published meta-analyses that assessed the biomarkers in mTBI. Sensitivity, specificity, and diagnostic odds ratios were then calculated using random-effects models. Heterogeneity was evaluated with the I2 statistic, and publication bias was assessed via funnel plots. The results of S100B demonstrated high sensitivity (91.6%) but low specificity (42.4%), making it an effective rule-out biomarker to minimize unnecessary CT scans. In contrast, GFAP exhibited moderate sensitivity (84.5%) with improved specificity (61.0%), supporting its role in confirming mTBI diagnoses. UCH-L1 revealed a sensitivity of 86.7% alongside low specificity (37.3%), indicating its potential as a complementary marker. Additionally, the NfL levels were notably elevated in sports-related concussions, while the diagnostic utility of tau protein remains inconclusive due to limited available data. Conclusions: The findings underscore the clinical promise of fluid biomarkers in the management of mTBI. S100B and GFAP are particularly valuable as screening and confirmatory markers, respectively. Nonetheless, further standardization of biomarker thresholds and additional longitudinal studies are necessary to validate the roles of UCH-L1, NfL, and Tau protein. The integration of these biomarkers into a multimodal diagnostic panel may enhance mTBI detection accuracy and facilitate improved patient stratification and management. Full article
(This article belongs to the Section Neurorehabilitation)
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