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Diffusion Tensor Magnetic Resonance Imaging in the Analysis of Neurodegenerative Diseases
Published on: July 28, 2013
Comparative overview of multi-shell diffusion MRI models to characterize the microstructure of multiple sclerosis
Colin Vanden Bulcke1, Anna Stölting2, Dragan Maric3
1Neuroinflammation Imaging Lab (NIL), Institute of NeuroScience, Université catholique de Louvain, Brussels, Belgium; ICTEAM Institute, Université catholique de Louvain, Louvain-la-Neuve, Belgium.
Abstract:
In multiple sclerosis (MS), accurate in vivo characterization of the heterogeneous lesional and extra-lesional tissue pathology remains challenging. Marshalling several advanced imaging techniques - quantitative relaxation time (T1) mapping, a model-free average diffusion signal approach and four multi-shell diffusion models - this study investigates the performance of multi-shell diffusion models and characterizes the microstructural damage within (i) different MS lesion types - active, chronic active, and chronic inactive - (ii) their respective periplaque white matter (WM), and (iii) the surrounding normal-appearing white matter (NAWM). In 83 MS participants (56 relapsing-remitting, 27 progressive) and 23 age and sex-matched healthy controls (HC), we analysed a total of 317 paramagnetic rim lesions (PRL+), 232 non-paramagnetic rim lesions (PRL-), 38 contrast-enhancing lesions (CEL). Consistent with previous findings and histology, our analysis revealed the ability of advanced multi-shell diffusion models to characterize the unique microstructural patterns of CEL, and to elucidate their possible evolution into a resolving (chronic inactive) vs smoldering (chronic active) inflammatory stage. In addition, we showed that the microstructural damage extends well beyond the MRI-visible lesion edge, gradually fading out while moving outward from the lesion edge into the immediate WM periplaque and the NAWM, the latter still characterized by diffuse microstructural damage in MS vs HC. This study also emphasizes the critical role of selecting appropriate diffusion models to elucidate the complex pathological architecture of MS lesions and their periplaque. More specifically, multi-compartment diffusion models based on biophysically interpretable metrics such as neurite orientation dispersion and density (NODDI; mean auc=0.8002) emerge as the preferred choice for MS applications, while simpler models based on a representation of the diffusion signal, like diffusion tensor imaging (DTI; mean auc=0.6942), consistently underperformed, also when compared to T1 mapping (mean auc=0.73375).
Insights
Advanced MRI diffusion models accurately characterize multiple sclerosis (MS) lesions and surrounding tissue damage. Multi-compartment models like NODDI outperform simpler methods for MS microstructural analysis.
Area of Science:
- Neuroimaging
- Biophysics
- Neurology
Background:
- Accurate in vivo characterization of multiple sclerosis (MS) tissue pathology is challenging.
- Heterogeneous MS lesions and extra-lesional tissue damage require advanced imaging techniques for detailed analysis.
Purpose of the Study:
- To investigate the performance of multi-shell diffusion models in characterizing microstructural damage in various MS lesion types and surrounding white matter.
- To compare the efficacy of different diffusion models, including neurite orientation dispersion and density (NODDI) and diffusion tensor imaging (DTI), against quantitative relaxation time (T1) mapping.
Main Methods:
- Utilized quantitative T1 mapping, model-free average diffusion signal, and four multi-shell diffusion models in 83 MS patients and 23 healthy controls.
- Analyzed active, chronic active, and chronic inactive lesions, including paramagnetic rim lesions (PRL+) and contrast-enhancing lesions (CEL).
- Assessed microstructural damage in periplaque white matter (WM) and normal-appearing white matter (NAWM).
Main Results:
- Multi-shell diffusion models effectively characterized microstructural patterns of CEL and their evolution.
- Microstructural damage extended beyond visible lesions into periplaque WM and NAWM, with significant differences observed between MS patients and healthy controls.
- Multi-compartment models (e.g., NODDI) demonstrated superior performance (mean AUC=0.8002) compared to simpler models (DTI; mean AUC=0.6942) and T1 mapping (mean AUC=0.73375).
Conclusions:
- Advanced multi-shell diffusion models, particularly multi-compartment approaches like NODDI, are crucial for elucidating MS lesion complexity and periplaque pathology.
- Microstructural damage in MS is widespread, extending into normal-appearing white matter.
- Appropriate model selection is critical for accurate in vivo assessment of MS neuropathology.
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