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Updated: Apr 13, 2026

Co-analysis of Brain Structure and Function using fMRI and Diffusion-weighted Imaging
Published on: November 8, 2012
Modelling white matter microstructure using diffusion OGSE MRI: Model and analysis choices
Emma Friesen1, Madison Chisholm2, Bibek Dhakal3
1Department of Chemistry, University of Winnipeg, Winnipeg, MB, Canada.
Abstract:
Alterations in white matter (WM) microstructure of the central nervous system have been shown to be pathophysiological presentations of various neurodegenerative disorders. Current methods for measuring such WM features require ex vivo tissue samples analyzed using electron microscopy. Magnetic Resonance Imaging (MRI) diffusion-weighted pulse sequences provide a non-invasive tool for estimating such microstructural features in vivo. The current project investigated the use of two methods of analysis, including the ROI-based (Region of Interest, RBA) and voxel-based analysis (VBA), as well as four mathematical models of WM microstructure, including the ActiveAx Frequency-Independent Extra-Axonal Diffusion (AAI), ActiveAx Frequency-Dependent Extra-Axonal Diffusion (AAD), AxCaliber Frequency-Independent Extra-Axonal Diffusion (ACI), and AxCaliber Frequency-Dependent Extra-Axonal Diffusion (ACD) models. Two mice samples imaged at 7 T and 15.2 T were analyzed. Both the AAI and AAD models provide a single value for each of the fit parameters, including mean effective axon diameter AxD¯, packing fraction fin, intra-cellular and Din and extra-cellular Dex diffusion coefficients, as well as the frequency dependence of Dex, βex for the AAD model. The ACI and ACD models provide this, in addition to a distribution of axon diameters for a chosen ROI. VBA extends this, providing a parameter value for each voxel within the selected ROI, at the cost of increased computational load and analysis time. Overall, RBA-ACD and VBA-AAD were found to be optimal for parameter fitting to physically relevant values in a reasonable time frame. A full comparison of each combination of RBA and VBA with AAI, AAD, ACI, and ACD is provided to give the reader sufficient information to make an informed decision of which model is best for their own experiments.
Insights
This study compares white matter microstructure analysis methods using Magnetic Resonance Imaging (MRI). Region-of-interest based analysis with the AxCaliber Frequency-Dependent Extra-Axonal Diffusion (ACD) model and voxel-based analysis with ActiveAx Frequency-Dependent Extra-Axonal Diffusion (AAD) were optimal.
Area of Science:
- Neuroscience
- Biophysics
- Medical Imaging
Background:
- White matter (WM) microstructure alterations are key in neurodegenerative diseases.
- Current ex vivo electron microscopy methods are invasive.
- Magnetic Resonance Imaging (MRI) offers non-invasive in vivo assessment.
Purpose of the Study:
- To investigate and compare Region of Interest-based Analysis (RBA) and Voxel-based Analysis (VBA) for WM microstructure.
- To evaluate four mathematical models: ActiveAx Frequency-Independent Extra-Axonal Diffusion (AAI), ActiveAx Frequency-Dependent Extra-Axonal Diffusion (AAD), AxCaliber Frequency-Independent Extra-Axonal Diffusion (ACI), and AxCaliber Frequency-Dependent Extra-Axonal Diffusion (ACD).
- To determine optimal combinations for accurate and efficient WM microstructure analysis.
Main Methods:
- Analysis of two mouse brain samples at 7T and 15.2T MRI.
- Application of RBA and VBA with AAI, AAD, ACI, and ACD models.
- Comparison of parameter fitting accuracy, computational load, and analysis time.
Main Results:
- AAI and AAD models yield single values for parameters like axon diameter and diffusion coefficients.
- ACI and ACD models provide axon diameter distributions.
- Region of Interest-based analysis with AxCaliber Frequency-Dependent Extra-Axonal Diffusion (RBA-ACD) and Voxel-based Analysis with ActiveAx Frequency-Dependent Extra-Axonal Diffusion (VBA-AAD) showed optimal performance.
Conclusions:
- RBA-ACD and VBA-AAD are recommended for accurate and timely white matter microstructure analysis.
- The study provides a comprehensive comparison to guide researchers in selecting appropriate models and methods.
- This work advances non-invasive in vivo characterization of white matter in neurological disorders.
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