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Updated: Nov 8, 2025

Development of an Uncomplicated Mild Traumatic Brain Injury Model Modified by Weight-Drop Method and Evidenced by Magnetic Resonance Imaging
Published on: April 11, 2025
A Longitudinal Study of White Matter Functional Network in Mild Traumatic Brain Injury
Xiaoyan Jia1, Xuebin Chang2, Lijun Bai1
1Department of Biomedical Engineering, Xi'an Jiaotong University, Xi'an, China.
Abstract:
Some patients after mild traumatic brain injury (mTBI) experience microstructural damages in the long-distance white matter (WM) connections, which disrupts the functional connectome of large-scale brain networks that support cognitive function. Patterns of WM structural damage following mTBI were well documented using diffusion tensor imaging (DTI). However, the functional organization of WM and its association with gray matter functional networks (GM-FNs) and its DTI metrics remain unknown. The present study adopted resting-state functional magnetic resonance imaging to explore WM functional properties in mTBI patients (108 acute patients, 48 chronic patients, 46 healthy controls [HCs]). Eleven large-scale WM functional networks (WM-FNs) were constructed by the k-means clustering algorithm of voxel-wise WM functional connectivity (FC). Compared with HCs, acute mTBI patients observed enhanced FC between inferior fronto-occipital fasciculus (IFOF) WM-FN and primary sensorimotor WM-FNs, and cortical primary sensorimotor GM-FNs. Further, acute mTBI patients showed increased DTI metrics (mean diffusivity, axial diffusivity, and radial diffusivity) in deep WM-FNs and higher-order cognitive WM-FNs. Moreover, mTBI patients demonstrated full recovery of FC and partial recovery of DTI metrics in the chronic stage. Additionally, enhanced FC between IFOF WM-FN and anterior cerebellar GM-FN was correlated with impaired information processing speed. Our findings provide novel evidence for functional and structural alteration of WM-FNs in mTBI patients. Importantly, the convergent damage of the IFOF network might imply its crucial role in our understanding of the pathophysiology mechanism of mTBI patients.
Insights
Mild traumatic brain injury (mTBI) disrupts white matter (WM) networks, affecting brain function. This study reveals altered WM functional connectivity and diffusion tensor imaging (DTI) metrics in mTBI patients, with some recovery in chronic stages.
Area of Science:
- Neuroscience
- Radiology
- Neurology
Background:
- Mild traumatic brain injury (mTBI) can cause microstructural damage to white matter (WM) connections, impacting cognitive function.
- While WM structural damage is documented, its functional organization and association with gray matter networks (GM-FNs) and diffusion tensor imaging (DTI) metrics post-mTBI are less understood.
Purpose of the Study:
- To explore WM functional properties and their association with DTI metrics in acute and chronic mTBI patients.
- To investigate alterations in large-scale WM functional networks (WM-FNs) and their relationship with GM-FNs.
Main Methods:
- Resting-state functional magnetic resonance imaging (rs-fMRI) and DTI were used in 108 acute mTBI patients, 48 chronic mTBI patients, and 46 healthy controls (HCs).
- Eleven large-scale WM-FNs were constructed using k-means clustering of voxel-wise WM functional connectivity (FC).
Main Results:
- Acute mTBI patients showed enhanced FC between the inferior fronto-occipital fasciculus (IFOF) WM-FN and sensorimotor networks, along with increased DTI metrics in deep and cognitive WM-FNs.
- mTBI patients exhibited full FC recovery and partial DTI metric recovery in the chronic stage.
- Enhanced IFOF WM-FN to anterior cerebellar GM-FN connectivity correlated with slower information processing speed.
Conclusions:
- mTBI leads to significant functional and structural alterations in WM-FNs.
- The inferior fronto-occipital fasciculus (IFOF) network may play a critical role in the pathophysiology of mTBI.

