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Brain age gap as a diffusion MRI-based marker of traumatic brain injury-related brain changes and associated outcomes.

Overview

Authors: Livia Rodrigues1, Drew Parker1, Nima Broomand Lomer1, Alexa E Walter2, Daniel Brennan2, Douglas H Smith3, Jeffrey Ware1, Andrea L C Schneider2,4, Ramon Diaz-Arrastia2, Ragini Verma1
  1. DiCIPHR Lab, Department of Radiology, University of Pennsylvania Perelman School of Medicine, Philadelphia, PA 19104, USA
  2. Department of Neurology, University of Pennsylvania Perelman School of Medicine, Philadelphia, PA 19104, USA
  3. Department of Neurosurgery, University of Pennsylvania Perelman School of Medicine, Philadelphia, PA 19104, USA
  4. Department of Biostatistics, Epidemiology, and Informatics, University of Pennsylvania Perelman School of Medicine, Philadelphia, PA 19104, USA
Institutions: University of Pennsylvania (United States)
Journal: Brain communications, volume 8, issue 4, article fcag254
Dates: received 13 November 2025; accepted 8 May 2026; published online 1 July 2026
Type: Research article · Language: English
License: CC BY
Identifiers: DOI 10.1093/braincomms/fcag254 · PMID 42433460 · PMCID PMC13353526 · OpenAlex W7166814952
Open access: gold, a free copy (OpenAlex)
Status: code verified
Categories: structural MRI / diffusion (modality), human (organism), traumatic brain injury (population), sleep disorders (population), clinical / translational (subfield)
Methods: Statistics, Machine learning, Preprocessing, Connectivity, fMRI & imaging, Single-unit activity, calcium imaging, Physiology & signal measures
Keywords: diffusion MRI, brain age gap, traumatic brain injury, age predictor, biomarker
Topic: Traumatic Brain Injury Research (Epidemiology, Medicine), according to OpenAlex
Funding: Department of Defense (HT94252311039, W81XWH-15-9-001, TP220158); NIH; HHS | NIH | National Institute of Neurological Disorders and Stroke (NINDS) (T32-NS043126, K23NS123340); NIH (U01NS114140, U01NS131740, R01NS125408, R01NS094003, R01NS123034, RF1NS138030, R21NS135384, U54NS115322, U01NS137500)
Citations: not cited yet (Europe PMC); 50 references in the paper

Abstract

Traumatic brain injury is a common neurological disorder and a leading cause of long-term disability, presenting with heterogeneous cognitive, emotional, and functional impairments. A critical clinical challenge is the early identification of patients at risk for persistent symptoms. The Brain Age Gap (BAG), the difference between an individual’s predicted brain age from imaging data and their chronological age, has emerged as a potential marker of injury-related brain changes. Here, we aim to evaluate diffusion-MRI-derived BAG for identifying traumatic brain injury patients (Glasgow Coma Scale 13–15) at risk for persistent symptoms. For this, we trained a normative age-prediction model on >13 000 healthy controls, and applied it to traumatic brain injury patients. We associated BAG clinical scores that evaluate processing speed and executive function (Trail Making Test Parts A and B), verbal memory (Rey Auditory Verbal Learning Test), general processing speed (Wechsler Adult Intelligence Scale), post-concussion symptoms (Rivermead Post-Concussion Symptoms Questionnaire), psychological distress (Brief Symptom Inventory-18) and insomnia severity (Insomnia Severity Index). Analyses included: (i) cross-sectional comparisons across three BAG-based subgroups: BAG+, BAGn and BAG−, representing patients with higher, neutral and lower BAGs relative to healthy controls, (ii) longitudinal linear mixed-effects models evaluating BAG measured at 2-week post-injury (BAG2wk) in symptom trajectories and (iii) prognostic logistic regression for prespecified poor 12-month outcomes. All statistical analyses were performed using Python libraries, including SciPy and Statsmodels. The age-prediction model demonstrated high accuracy and reliability (mean absolute error = 3.05 ± 3.67 years; intraclass correlation = 0.93). Cross-sectionally, higher BAG was associated with greater symptom burden. Compared with BAG− patients, those in the BAG+ subgroup reported higher Insomnia Severity Index (d = 0.411; P = 0.038) and Rivermead Post-Concussion Symptoms Questionnaire scores (d = 0.415; P = 0.038). Similarly, BAGn patients showed higher Brief Symptom Inventory (d = −0.419; P = 0.040), Insomnia Severity Index (d = −0.382; P = 0.038) and Rivermead Post-Concussion Symptoms Questionnaire (d = −0.525; P = 0.002) scores relative to BAG−. Longitudinally, higher BAG2wk was associated with worse Rivermead Post-Concussion Symptoms Questionnaire (β = 0.195, 95% CI[0.093, 0.297]; partial R2 = 0.017; P = 0.0016) and worse Insomnia Severity Index (β = 0.107, 95% CI[0.033, 0.181]; partial R2 = 0.010; P = 0.0196) without time interaction. BAG2wk modified change over time in Trail Making Test Parts A (β = 0.017, 95% CI 0.002–0.056; partial R2 = 0.043; P = 0.016). Finally, adding BAG2wk into the prognostic model yielded a significant improvement in 12-month outcome prediction (likelihood-ratio test = 6.40; P = 0.011). Together, these findings indicate that diffusion-MRI-derived BAG is a robust and reproducible biomarker that captures clinically meaningful heterogeneity as early as two-week post-injury.

Reproduced under the paper's license (CC BY), from the paper cited above.

Code

No file of the authors' code could be read here: it is described below, and read at its source.

diciphr-lab

License: none: the authors keep all their rights
State: the link answers, verified on 27 September 2026
Evidence: the link answers
Software Heritage: not checked
Found in: “Data availability”
Not found: README, license file, CITATION.cff, environment file, tests, continuous integration, documentation
Availability: 1 check, the latest on 27 September 2026: the link answers (HTTP 200)
  • 27 September 2026: the link answers (HTTP 200)
At the source: github.com/diciphr-lab

The paper's code and data availability statement is in the Data section.

Tracing map

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What the map holds:

  • 1 repository of the authors' code, each at its verified commit, with its license and how the link was found in the paper;
  • 0 scripts, each with its path and the digest of its content;
  • no match between paragraphs and code yet;
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Its JSON (tracing-map.json) is deposited on Zenodo with its DOI once the map is validated.

Data

No dataset and no data link were found in the paper.

Data availability

The statistical analysis code is available at https://github.com/diciphr-lab. TRACK-TBI data are available on FITBIR (https://fitbir.nih.gov/). The harmonized and processed data can be made available on contacting the corresponding author and following the appropriate regulatory process for TRACK-TBI and the ancillary studies using their data.

Reproduced under the paper's license (CC BY), from the paper cited above.

Versions

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Version 1, 27 September 2026: the first record

Recorded: type, language, journal, volume, issue, pages, dates, 10 authors, 5 keywords, 4 funders, 42 references.

Cite

This paper

Rodrigues, L., Parker, D., Broomand Lomer, N., Walter, A. E., Brennan, D., Smith, D. H., Ware, J., Schneider, A. L. C., Diaz-Arrastia, R., & Verma, R. (2026). Brain age gap as a diffusion MRI-based marker of traumatic brain injury-related brain changes and associated outcomes. Brain communications, 8(4), fcag254. https://doi.org/10.1093/braincomms/fcag254

BibTeX

@article{rodrigues2026brain,
author = {Rodrigues, Livia and Parker, Drew and Broomand Lomer, Nima and Walter, Alexa E and Brennan, Daniel and Smith, Douglas H and Ware, Jeffrey and Schneider, Andrea L C and Diaz-Arrastia, Ramon and Verma, Ragini},
title = {{Brain age gap as a diffusion MRI-based marker of traumatic brain injury-related brain changes and associated outcomes}},
journal = {Brain communications},
year = {2026},
month = jul,
volume = {8},
number = {4},
pages = {fcag254},
publisher = {Oxford University Press},
issn = {2632-1297},
doi = {10.1093/braincomms/fcag254},
url = {https://doi.org/10.1093/braincomms/fcag254},
pmid = {42433460},
pmcid = {PMC13353526}
}

RIS

TY - JOUR
AU - Rodrigues, Livia
AU - Parker, Drew
AU - Broomand Lomer, Nima
AU - Walter, Alexa E
AU - Brennan, Daniel
AU - Smith, Douglas H
AU - Ware, Jeffrey
AU - Schneider, Andrea L C
AU - Diaz-Arrastia, Ramon
AU - Verma, Ragini
TI - Brain age gap as a diffusion MRI-based marker of traumatic brain injury-related brain changes and associated outcomes
T2 - Brain communications
J2 - Brain Commun
PY - 2026
DA - 2026/07/01
VL - 8
IS - 4
SP - fcag254
SN - 2632-1297
PB - Oxford University Press
DO - 10.1093/braincomms/fcag254
UR - https://doi.org/10.1093/braincomms/fcag254
LA - en
ER -

CSL-JSON

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