TY - JOUR
T1 - Individualized functionnectome for the statistical assessment of white matter circuits underlying task-fMRI activations in glioma patients
AU - Sighinolfi, Giovanni
AU - Leemans, Alexander
AU - Manners, David Neil
AU - Cantoni, Elena
AU - Vornetti, Gianfranco
AU - Motta, Lorenzo
AU - Franceschi, Enrico
AU - Tonon, Caterina
AU - Lodi, Raffaele
AU - Luca, Alberto De
N1 - Copyright © 2025 The Author(s). Published by Elsevier Inc. All rights reserved.
PY - 2026
Y1 - 2026
N2 - The Functionnectome framework enables the projection of task-related fMRI signals onto the underlying white matter pathways, using anatomical priors derived from structural connectivity. However, the existing “standardized” priors are based on averaged tractograms from healthy controls and cannot accurately capture the altered anatomy found in patients with brain lesions. This study extends the Functionnectome framework by generating individualized anatomical priors from subject-specific diffusion MRI tractography, allowing for improved integration of functional and structural data in patients with brain tumors. Twenty-six patients with gliomas (9 females; mean age 43 ± 17 years) underwent 3 T MRI, including a multishell diffusion protocol and task-based fMRI targeting motor and/or language functions. Whole-brain tractography was reconstructed using three methods (TensorDet, PFT, and iFOD2) and converted into voxelwise individualized priors. Functionnectome maps were estimated using both standardized and individualized priors, and Z-statistic activation maps were obtained via GLM analysis. Similarity metrics and atlas-based consistency were used to compare standardized and individualized Functionnectomes. Functionnectomes derived from probabilistic tractography showed moderate correlations with standardized Functionnectomes (average Pearson’s r ≈ 0.5), highlighting the influence of individual structural variability while maintaining comparable activation patterns. The PFT-based Functionnectome exhibited superior anatomical plausibility, with consistent overlap with expected motor white matter tracts and identification of relevant bundles in up to 100% of cases, compared to 50–60% with standardized priors. The individualized Functionnectome enhances the anatomical validity and subject specificity of structure–function mapping, advancing precision neuroimaging for clinical and neurosurgical applications.
AB - The Functionnectome framework enables the projection of task-related fMRI signals onto the underlying white matter pathways, using anatomical priors derived from structural connectivity. However, the existing “standardized” priors are based on averaged tractograms from healthy controls and cannot accurately capture the altered anatomy found in patients with brain lesions. This study extends the Functionnectome framework by generating individualized anatomical priors from subject-specific diffusion MRI tractography, allowing for improved integration of functional and structural data in patients with brain tumors. Twenty-six patients with gliomas (9 females; mean age 43 ± 17 years) underwent 3 T MRI, including a multishell diffusion protocol and task-based fMRI targeting motor and/or language functions. Whole-brain tractography was reconstructed using three methods (TensorDet, PFT, and iFOD2) and converted into voxelwise individualized priors. Functionnectome maps were estimated using both standardized and individualized priors, and Z-statistic activation maps were obtained via GLM analysis. Similarity metrics and atlas-based consistency were used to compare standardized and individualized Functionnectomes. Functionnectomes derived from probabilistic tractography showed moderate correlations with standardized Functionnectomes (average Pearson’s r ≈ 0.5), highlighting the influence of individual structural variability while maintaining comparable activation patterns. The PFT-based Functionnectome exhibited superior anatomical plausibility, with consistent overlap with expected motor white matter tracts and identification of relevant bundles in up to 100% of cases, compared to 50–60% with standardized priors. The individualized Functionnectome enhances the anatomical validity and subject specificity of structure–function mapping, advancing precision neuroimaging for clinical and neurosurgical applications.
KW - Glioma/diagnostic imaging
KW - Brain Neoplasms/diagnostic imaging
KW - Brain Mapping/methods
KW - Humans
KW - Middle Aged
KW - Male
KW - Magnetic Resonance Imaging/methods
KW - White Matter/diagnostic imaging
KW - Young Adult
KW - Image Processing, Computer-Assisted/methods
KW - Female
KW - Adult
KW - Diffusion Tensor Imaging/methods
UR - https://www.scopus.com/pages/publications/105026583064
UR - https://www.mendeley.com/catalogue/44671abc-9b3b-3932-b234-8b5f93685f1a/
U2 - 10.1016/j.nicl.2025.103940
DO - 10.1016/j.nicl.2025.103940
M3 - Article
C2 - 41494449
AN - SCOPUS:105026583064
SN - 2213-1582
VL - 49
JO - NeuroImage: Clinical
JF - NeuroImage: Clinical
M1 - 103940
ER -