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Updated: Jan 18, 2026

Co-analysis of Brain Structure and Function using fMRI and Diffusion-weighted Imaging
Published on: November 8, 2012
A multimodal fusion analysis of structural and functional abnormalities in acute onset treatment-resistant
Peiyu Cao1, Yanlin Han1, Lulu Zou2
1Department of Psychiatry, the Affiliated Brain Hospital of Nanjing Medical University, Nanjing, China.
Background:
Patients with treatment-resistant schizophrenia (TRS) experience more severe clinical symptoms, which may derive from greater structural and functional brain abnormalities compared to non-TRS. However, the neural underpinnings of TRS remain poorly understood, and conventional unimodal neuroimaging approaches are limited in capturing cross-modal interactions. Therefore, we used multimodal fusion via multiset canonical correlation and joint independent component analysis (mCCA+jICA) to integrate MRI data to examine shared and modality-specific features in TRS. Methods65 TRS patients, 65 non-TRS patients, and 54 healthy controls (HCs) underwent 3 T MRI. Structural MRI and resting-state functional MRI data were preprocessed using DPARSFA, and grey matter volume (GMV), fractional amplitude of low-frequency fluctuations (fALFF), and regional homogeneity (ReHo) maps were extracted. The mCCA+jICA was performed to derive joint independent components (ICs) and subject-specific mixing coefficients. Group differences in mixing coefficients were assessed via MANCOVA, and clinical correlations were evaluated using partial correlations.
Results:
Patients showed significant differences in mixing coefficients for one modality-specific group-discriminative IC (GMV-IC3) and two joint group-discriminative ICs (ReHo-IC6, and GMV-IC6) compared to HCs. These components also differentiated TRS from non-TRS, with abnormalities concentrated in the precuneus in both ReHo and GMV. Partial correlation analysis revealed significant positive associations between the mixing coefficients of GMV-IC3, GMV-IC6, and total PANSS scores and CPZ equivalents specifically in the TRS group.
Conclusions:
This study demonstrates that co-existing structural and functional brain alterations are associated with the pathophysiology of TRS, highlighting their potential as novel multimodal biomarkers.

