Characterization of white matter microstructural abnormalities associated with cognitive dysfunction in cerebral
Chaofan Sui1, Hongwei Wen2, Shengpei Wang3
1Department of Radiology, Shandong Provincial Hospital Affiliated to Shandong First Medical University, 324 Jing-wu Road, Jinan, Shandong 250021, China.
Background:
Diffusion tensor imaging (DTI) is recommended as a sensitive method to explore white matter (WM) microstructural alterations. Cerebral small vessel disease (CSVD) may be accompanied by extensive WM microstructural deterioration, while cerebral microbleeds (CMBs) are an important factor affecting CSVD.
Methods:
Fractional anisotropy (FA), mean diffusivity (MD), axial diffusivity (AD) and radial diffusivity (RD) images from 49 CSVD patients with CMBs (CSVD-c), 114 CSVD patients without CMBs (CSVD-n), and 83 controls were analyzed using DTI-derived tract-based spatial statistics to detect WM diffusion changes among groups.
Results:
Compared with the CSVD-n and control groups, the CSVD-c group showed a significant FA decrease and AD, RD and MD increases mainly in the cognitive and sensorimotor-related WM tracts. There was no significant difference in any diffusion metric between the CSVD-n and control groups. Furthermore, the widespread regional diffusion alterations among groups were significantly correlated with cognitive parameters in both the CSVD-c and CSVD-n groups. Notably, we applied the multiple kernel learning technique in multivariate pattern analysis to combine multiregion and multiparameter diffusion features, yielding an average accuracy >77 % for three binary classifications, which showed a considerable improvement over the single modality approach.
Limitations:
We only grouped the study according to the presence or absence of CMBs.
Conclusions:
CSVD patients with CMBs have extensive WM microstructural deterioration. Combining DTI-derived diffusivity and anisotropy metrics can provide complementary information for assessing WM alterations associated with cognitive dysfunction and serve as a potential discriminative pattern to detect CSVD at the individual level.
Insights
Cerebral small vessel disease patients with cerebral microbleeds show significant white matter changes. Diffusion tensor imaging metrics can help detect these alterations and cognitive dysfunction.
Area of Science:
- Neuroimaging
- Neurology
- Radiology
Background:
- Cerebral small vessel disease (CSVD) is associated with white matter (WM) microstructural deterioration.
- Cerebral microbleeds (CMBs) are a key factor influencing CSVD progression and severity.
Purpose of the Study:
- To investigate WM microstructural changes in CSVD patients with and without CMBs using Diffusion Tensor Imaging (DTI).
- To explore the relationship between WM diffusion metrics and cognitive function.
- To assess the potential of DTI-derived metrics for differentiating CSVD subtypes.
Main Methods:
- DTI data analyzed using tract-based spatial statistics in 49 CSVD patients with CMBs (CSVD-c), 114 CSVD patients without CMBs (CSVD-n), and 83 controls.
- Key diffusion metrics: Fractional Anisotropy (FA), Mean Diffusivity (MD), Axial Diffusivity (AD), and Radial Diffusivity (RD).
- Multivariate pattern analysis with multiple kernel learning was used for classification.
Main Results:
- CSVD-c group exhibited significantly decreased FA and increased AD, RD, and MD in cognitive and sensorimotor WM tracts compared to CSVD-n and control groups.
- No significant diffusion metric differences were found between CSVD-n and control groups.
- Widespread diffusion alterations correlated with cognitive parameters in both CSVD groups.
- Multivariate pattern analysis achieved >77% accuracy in classifying CSVD subtypes.
Conclusions:
- CSVD patients with CMBs demonstrate extensive WM microstructural damage.
- Combined DTI metrics offer valuable information on WM alterations linked to cognitive impairment.
- DTI analysis shows potential as a discriminative tool for individual CSVD detection.
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