» Articles » PMID: 17999940

Structural Consequences of Diffuse Traumatic Brain Injury: a Large Deformation Tensor-based Morphometry Study

Overview
Journal Neuroimage
Specialty Radiology
Date 2007 Nov 15
PMID 17999940
Citations 80
Authors
Affiliations
Soon will be listed here.
Abstract

Traumatic brain injury (TBI) is one of the most common causes of long-term disability. Despite the importance of identifying neuropathology in individuals with chronic TBI, methodological challenges posed at the stage of inter-subject image registration have hampered previous voxel-based MRI studies from providing a clear pattern of structural atrophy after TBI. We used a novel symmetric diffeomorphic image normalization method to conduct a tensor-based morphometry (TBM) study of TBI. The key advantage of this method is that it simultaneously estimates an optimal template brain and topology preserving deformations between this template and individual subject brains. Detailed patterns of atrophies are then revealed by statistically contrasting control and subject deformations to the template space. Participants were 29 survivors of TBI and 20 control subjects who were matched in terms of age, gender, education, and ethnicity. Localized volume losses were found most prominently in white matter regions and the subcortical nuclei including the thalamus, the midbrain, the corpus callosum, the mid- and posterior cingulate cortices, and the caudate. Significant voxel-wise volume loss clusters were also detected in the cerebellum and the frontal/temporal neocortices. Volume enlargements were identified largely in ventricular regions. A similar pattern of results was observed in a subgroup analysis where we restricted our analysis to the 17 TBI participants who had no macroscopic focal lesions (total lesion volume >1.5 cm(3)). The current study confirms, extends, and partly challenges previous structural MRI studies in chronic TBI. By demonstrating that a large deformation image registration technique can be successfully combined with TBM to identify TBI-induced diffuse structural changes with greater precision, our approach is expected to increase the sensitivity of future studies examining brain-behavior relationships in the TBI population.

Citing Articles

Prediction of Post Traumatic Epilepsy Using MR-Based Imaging Markers.

Akrami H, Cui W, Kim P, Heck C, Irimia A, Jerbi K Hum Brain Mapp. 2024; 45(17):e70075.

PMID: 39560185 PMC: 11574740. DOI: 10.1002/hbm.70075.


Differences in Brain Volume in Military Service Members and Veterans After Blast-Related Mild TBI: A LIMBIC-CENC Study.

Dennis E, Rowland J, Esopenko C, Tustison N, Newsome M, Hovenden E JAMA Netw Open. 2024; 7(11):e2443416.

PMID: 39527059 PMC: 11555548. DOI: 10.1001/jamanetworkopen.2024.43416.


Structural neuroimaging markers of normal pressure hydrocephalus versus Alzheimer's dementia and Parkinson's disease, and hydrocephalus versus atrophy in chronic TBI-a narrative review.

Kadaba Sridhar S, Dysterheft Robb J, Gupta R, Cheong S, Kuang R, Samadani U Front Neurol. 2024; 15:1347200.

PMID: 38576534 PMC: 10991762. DOI: 10.3389/fneur.2024.1347200.


Brain reserve affects the expression of cognitive reserve networks.

Coors A, Lee S, Gazes Y, Gacheru M, Habeck C, Stern Y Hum Brain Mapp. 2024; 45(5):e26658.

PMID: 38520368 PMC: 10960550. DOI: 10.1002/hbm.26658.


Diffusion tensor imaging and plasma immunological biomarker panel in a rat traumatic brain injury (TBI) model and in human clinical TBI.

To X, Mohamed A, Cumming P, Nasrallah F Front Immunol. 2024; 14:1293471.

PMID: 38259455 PMC: 10800599. DOI: 10.3389/fimmu.2023.1293471.


References
1.
Dubb A, Xie Z, Gur R, Gur R, Gee J . Characterization of brain plasticity in schizophrenia using template deformation. Acad Radiol. 2005; 12(1):3-9. DOI: 10.1016/j.acra.2004.06.009. View

2.
Adams J, Doyle D, Ford I, Gennarelli T, Graham D, McLellan D . Diffuse axonal injury in head injury: definition, diagnosis and grading. Histopathology. 1989; 15(1):49-59. DOI: 10.1111/j.1365-2559.1989.tb03040.x. View

3.
Adams J, Graham D, Jennett B . The neuropathology of the vegetative state after an acute brain insult. Brain. 2000; 123 ( Pt 7):1327-38. DOI: 10.1093/brain/123.7.1327. View

4.
Mendez C, Hurley R, Lassonde M, Zhang L, Taber K . Mild traumatic brain injury: neuroimaging of sports-related concussion. J Neuropsychiatry Clin Neurosci. 2005; 17(3):297-303. DOI: 10.1176/jnp.17.3.297. View

5.
Gaser C, Volz H, Kiebel S, Riehemann S, Sauer H . Detecting structural changes in whole brain based on nonlinear deformations-application to schizophrenia research. Neuroimage. 1999; 10(2):107-13. DOI: 10.1006/nimg.1999.0458. View