Mild traumatic brain injury (mTBI) affects 69 million people annually worldwide. A significant subset of those affected will develop long-term sequelae that can seriously impact quality of life and lead to other health problems. Clinical diagnosis of mTBI is complicated by patient malingering, subjective symptomatology, and variable patient reporting. This review aimed to evaluate the potential effectiveness of combining advanced neuroimaging techniques with psychometric testing and blood biomarker analyses for developing a more objective and comprehensive mTBI assessment protocol. A review was conducted using PubMed as the primary database, analyzing studies published between 2015 and 2023. Included studies evaluated mTBI (defined as Glasgow Coma Scale score ≥ 14) and incorporated neuroimaging assessment. Studies had to include patients presenting with characteristic mTBI symptoms, such as headache, balance/motor deficits, cognitive impairments, and fatigue. Studies focused on diagnostic accuracy, clinical utility, and integration of different assessment modalities were included. Advanced neuroimaging techniques, particularly Diffusion Tensor Imaging (DTI), demonstrated superior detection of subtle axonal damage compared to conventional CT and MRI. Specific brain regions, including temporal, fusiform, inferior parietal, and lateral occipital areas, showed promising diagnostic potential. Psychometric assessments, notably the Test of Memory Malingering combined with pupillometry, demonstrated high sensitivity in detecting symptom validity. Blood biomarker analyses revealed S-100B, neurofilament light, and Tau proteins as potential diagnostic indicators, where temporal profiles correlating with symptom progression. Evidence suggests that integration of multiple diagnostic modalities will significantly enhance mTBI diagnosis accuracy. A multimodal approach is the most effective way to overcome the limitations of individual methods. For example, psychometric tests are relatively subjective, while neuroimaging after an injury is unable to distinguish between pre-existing and new injuries. Devising a clinically relevant multimodal approach will require establishment of standardized norms and studies further validating individual approaches and estimating diagnostic accuracy for combinations of modalities relative to patient outcomes. These findings have particular relevance for Nevada's healthcare system, where rapid and accurate mTBI diagnosis could significantly impact patient care in both urban and rural settings. Future research should focus on validating specific combinations of these techniques and establishing standardized protocols for clinical implementation.
| Published in | American Journal of Psychiatry and Neuroscience (Volume 14, Issue 3) |
| DOI | 10.11648/j.ajpn.20261403.12 |
| Page(s) | 57-68 |
| Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
| Copyright |
Copyright © The Author(s), 2026. Published by Science Publishing Group |
MTBI, Concussion, Neuroimaging, Biomarkers, Neurofilament Light, Glasgow Coma Scale, Psychometrics
Assessment Domain | Neuroimaging | Blood Biomarkers | Psychometric Testing | Clinical Decision |
|---|---|---|---|---|
Acute Assessment (ED) (0-24 hours) | Conventional CT/MRI (rule out severe injury) | GFAP & UCH-L1 (point-of-care-test) [19 -21] | Brief cognitive screen PCSS symptom scale [36 , 43] | High-risk triage: Elevated biomarkers→Advanced imaging |
Early Subacute (2-7 days) | Advanced MRI: DTI (white matter) fMRI (connectivity) | Initial biomarker panel + IL-6 [21] | Computerized battery (imPACT/ANAM) [31 , 32] | Recovery tracking: Compare to baseline if available |
Late Subacute (1-4 weeks) | Repeat Advanced MRI: DTI prognostication fMRI trajectory | NfL & p-tau (prognostication) [22 , 23] | Comprehensive neuropsych battery if persistent [33 , 34] | Prognosis estimation: Compare to baseline If available |
Chronic Phase (>4 weeks) | PET/MRI hybrid (if available) | NfL levels (chronic trajectory) [27] | Full comprehensive assessment (disability eval) [40] | Chronic management: Planing intervention |
Assessment Domain | Specific Tool | Primary Use | Optimal Timing | References |
|---|---|---|---|---|
Advanced Neuroimaging | Diffusion Tensor Imaging (DTI) | White matter microstructure | Acute to chronic | [2 -5] |
Functional MRI (fMRI) | Functional connectivity patterns | Subacute to Chronic | [6 , 7, 9] | |
Magnetic Resonance Spectroscopy (MRS) | Metabolite abnormalities | Acute to subacute | [1 2, 44] | |
Arterial Spin Labeling | Cerebral blood flow | Acute to chronic | [1 4, 16] | |
Blood Biomarkers | GFAP and UCH-L1 | Acute diagnosis and triaging | First 24 hours | [1 9, 21] |
Neurofilament Light Chain (NfL) | Prognostication, chronic outcomes | Days to weeks | [2 2, 26, 27] | |
Phosphorylated Tau (p-Tau) | Long-term neurodegeneration risks | First 6 hours to weeks | [2 2, 23] | |
Supplementary (S100B, IL-6, mrRNA) | Complementary inflammatory markers | Variable depending on the marker | [2 0, 24, 25] | |
Glymphatic System Effects | Biomarker transport mechanism | Similar to biomarker interpretation | [2 8-30] | |
Psychometric Testing | Computerized Neurocognitive Testing | Cognitive deficit screening | Acute | [3 1, 32] |
Traditional Neuropsychological Battery | Comprehensive cognitive mapping | After symptoms persist to chronic | [3 3, 34] | |
Post-Concussion Symptom Scale | Symptom monitoring | Daily | [36] | |
Sport Concussion Assessment (SCAT) | Standardized multimodal assessment | Standardized intervals | [43] |
mTBI | Mild Traumatic Brain Injury |
GCS | Glasgow Coma Scale |
CDC | Center for Disease Control and Prevention |
VA/DoD | Department of Veterans Affairs and Department of Defense |
ACRM | American College of Rehabilitation Medicine |
EAST | Eastern Association for the Surgery of Trauma |
BIG | University of Arizona's Brain Injury Guidelines |
CT | Computed Tomography |
MRI | Magnetic Resonance Imaging |
DTI | Diffusion Tensor Imaging |
FA | Fractional Anisotropy |
MD | Mean Diffusivity |
AD | Axial Diffusivity |
RD | Radial Diffusivity |
fMRI | Functional MRI |
BOLD | Blood Oxygen Level-Dependent |
DMN | Default Mode Network |
MRS | Magnetic Resonance Spectroscopy |
NAA | N-acetylaspartate |
Cho | Choline |
Cr | Creatine |
Glx | Glutamate/Glutamine |
CBF | Cerebral Blood Flow |
ASL | Arterial Spin Labeling |
PET | Positron Emission Tomography |
FDG-PET | Fluorodeoxyglucose Positron Emission Tomography |
BBB | Blood-Brain Barrier |
GFAP | Glial Fibrillary Acidic Protein |
UCH-L1 | Ubiquitin C-terminal Hydrolase-L1 |
NfL | Neurofilament Light Chain |
p-tau | Phosphorylated Tau |
miRNAs | MicroRNAs |
CNT | Computerized Neurocognitive Testing |
ImPACT | Immediate Post-Concussion Assessment and Cognitive Testing |
ANAM | Automated Neuropsychological Assessment Metrics |
PCSS | Post-Concussion Symptom Scale |
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APA Style
Choudhary, P., Gourial, G., Muth, D. (2026). Multimodal Approach to Diagnosing Mild Traumatic Brain Injury: A Comprehensive Literature Review. American Journal of Psychiatry and Neuroscience, 14(3), 57-68. https://doi.org/10.11648/j.ajpn.20261403.12
ACS Style
Choudhary, P.; Gourial, G.; Muth, D. Multimodal Approach to Diagnosing Mild Traumatic Brain Injury: A Comprehensive Literature Review. Am. J. Psychiatry Neurosci. 2026, 14(3), 57-68. doi: 10.11648/j.ajpn.20261403.12
@article{10.11648/j.ajpn.20261403.12,
author = {Priya Choudhary and Giovani Gourial and Dakota Muth},
title = {Multimodal Approach to Diagnosing Mild Traumatic Brain Injury: A Comprehensive Literature Review},
journal = {American Journal of Psychiatry and Neuroscience},
volume = {14},
number = {3},
pages = {57-68},
doi = {10.11648/j.ajpn.20261403.12},
url = {https://doi.org/10.11648/j.ajpn.20261403.12},
eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajpn.20261403.12},
abstract = {Mild traumatic brain injury (mTBI) affects 69 million people annually worldwide. A significant subset of those affected will develop long-term sequelae that can seriously impact quality of life and lead to other health problems. Clinical diagnosis of mTBI is complicated by patient malingering, subjective symptomatology, and variable patient reporting. This review aimed to evaluate the potential effectiveness of combining advanced neuroimaging techniques with psychometric testing and blood biomarker analyses for developing a more objective and comprehensive mTBI assessment protocol. A review was conducted using PubMed as the primary database, analyzing studies published between 2015 and 2023. Included studies evaluated mTBI (defined as Glasgow Coma Scale score ≥ 14) and incorporated neuroimaging assessment. Studies had to include patients presenting with characteristic mTBI symptoms, such as headache, balance/motor deficits, cognitive impairments, and fatigue. Studies focused on diagnostic accuracy, clinical utility, and integration of different assessment modalities were included. Advanced neuroimaging techniques, particularly Diffusion Tensor Imaging (DTI), demonstrated superior detection of subtle axonal damage compared to conventional CT and MRI. Specific brain regions, including temporal, fusiform, inferior parietal, and lateral occipital areas, showed promising diagnostic potential. Psychometric assessments, notably the Test of Memory Malingering combined with pupillometry, demonstrated high sensitivity in detecting symptom validity. Blood biomarker analyses revealed S-100B, neurofilament light, and Tau proteins as potential diagnostic indicators, where temporal profiles correlating with symptom progression. Evidence suggests that integration of multiple diagnostic modalities will significantly enhance mTBI diagnosis accuracy. A multimodal approach is the most effective way to overcome the limitations of individual methods. For example, psychometric tests are relatively subjective, while neuroimaging after an injury is unable to distinguish between pre-existing and new injuries. Devising a clinically relevant multimodal approach will require establishment of standardized norms and studies further validating individual approaches and estimating diagnostic accuracy for combinations of modalities relative to patient outcomes. These findings have particular relevance for Nevada's healthcare system, where rapid and accurate mTBI diagnosis could significantly impact patient care in both urban and rural settings. Future research should focus on validating specific combinations of these techniques and establishing standardized protocols for clinical implementation.},
year = {2026}
}
TY - JOUR T1 - Multimodal Approach to Diagnosing Mild Traumatic Brain Injury: A Comprehensive Literature Review AU - Priya Choudhary AU - Giovani Gourial AU - Dakota Muth Y1 - 2026/07/30 PY - 2026 N1 - https://doi.org/10.11648/j.ajpn.20261403.12 DO - 10.11648/j.ajpn.20261403.12 T2 - American Journal of Psychiatry and Neuroscience JF - American Journal of Psychiatry and Neuroscience JO - American Journal of Psychiatry and Neuroscience SP - 57 EP - 68 PB - Science Publishing Group SN - 2330-426X UR - https://doi.org/10.11648/j.ajpn.20261403.12 AB - Mild traumatic brain injury (mTBI) affects 69 million people annually worldwide. A significant subset of those affected will develop long-term sequelae that can seriously impact quality of life and lead to other health problems. Clinical diagnosis of mTBI is complicated by patient malingering, subjective symptomatology, and variable patient reporting. This review aimed to evaluate the potential effectiveness of combining advanced neuroimaging techniques with psychometric testing and blood biomarker analyses for developing a more objective and comprehensive mTBI assessment protocol. A review was conducted using PubMed as the primary database, analyzing studies published between 2015 and 2023. Included studies evaluated mTBI (defined as Glasgow Coma Scale score ≥ 14) and incorporated neuroimaging assessment. Studies had to include patients presenting with characteristic mTBI symptoms, such as headache, balance/motor deficits, cognitive impairments, and fatigue. Studies focused on diagnostic accuracy, clinical utility, and integration of different assessment modalities were included. Advanced neuroimaging techniques, particularly Diffusion Tensor Imaging (DTI), demonstrated superior detection of subtle axonal damage compared to conventional CT and MRI. Specific brain regions, including temporal, fusiform, inferior parietal, and lateral occipital areas, showed promising diagnostic potential. Psychometric assessments, notably the Test of Memory Malingering combined with pupillometry, demonstrated high sensitivity in detecting symptom validity. Blood biomarker analyses revealed S-100B, neurofilament light, and Tau proteins as potential diagnostic indicators, where temporal profiles correlating with symptom progression. Evidence suggests that integration of multiple diagnostic modalities will significantly enhance mTBI diagnosis accuracy. A multimodal approach is the most effective way to overcome the limitations of individual methods. For example, psychometric tests are relatively subjective, while neuroimaging after an injury is unable to distinguish between pre-existing and new injuries. Devising a clinically relevant multimodal approach will require establishment of standardized norms and studies further validating individual approaches and estimating diagnostic accuracy for combinations of modalities relative to patient outcomes. These findings have particular relevance for Nevada's healthcare system, where rapid and accurate mTBI diagnosis could significantly impact patient care in both urban and rural settings. Future research should focus on validating specific combinations of these techniques and establishing standardized protocols for clinical implementation. VL - 14 IS - 3 ER -