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Updated: Jan 7, 2026

High-resolution Functional Magnetic Resonance Imaging Methods for Human Midbrain
Published on: May 10, 2012
Diffusion-weighted steady-state free precession imaging in the ex vivo macaque brain on a 10.5T human MRI scanner
Benjamin C Tendler1, Shaun Warrington2, Mohamed K Selim2
1Centre for Integrative Neuroimaging, FMRIB, Nuffield Department of Clinical Neurosciences, University of Oxford, Oxford, UK.
Abstract:
Diffusion MRI provides a non-invasive probe of local fibre bundles and long-range anatomical connections to characterise the structural connectome. One way to achieve very high spatial resolution diffusion MRI data for connectivity investigations is to scan ex-vivo brains over many hours or days, ideally at ultra-high field strength to boost signal levels. However, conventional diffusion MRI acquisition techniques do not generally deliver good data quality for the challenging conditions of ex-vivo tissue, characterised by reduced diffusivities and relaxation times when compared to in vivo. In this work, we investigate the potential of the diffusion-weighted steady-state free precession (DW-SSFP) sequence for ex vivo diffusion imaging of the macaque brain using a 10.5 T human MRI scanner with a conventional gradient set. SNR-efficiency optimisations incorporating experimental relaxation times demonstrate that the DW-SSFP sequence is predicted to achieve improved or similar SNR efficiency compared to a diffusion-weighted spin- and stimulated-echo sequence. Importantly, DW-SSFP can achieve this with the additional benefit of negligible geometric distortions, unlike conventional diffusion MRI using an echo-planar imaging readout. Using optimised DW-SSFP sequence parameters, we propose a protocol at 0.4 mm isotropic resolution using a two-shell multi-orientation protocol (effective b-values of 3200 s/mm2 and 5600 s/mm2). We fit the data using Tensor, Ball and 3-Sticks and Constrained Spherical Deconvolution signal representations. The results demonstrate high-quality diffusivity estimates across the entire brain with the ability to resolve multiple fibre populations in challenging crossing-fibre regions. The data will be made fully open source and multimodal as part of the Center for Mesoscale Connectomics, providing a resource for future connectivity investigations.
Insights
This study introduces diffusion-weighted steady-state free precession (DW-SSFP) for high-resolution ex vivo brain imaging. DW-SSFP offers improved signal-to-noise ratio and minimal distortion, enabling detailed mapping of macaque brain connectivity.
Area of Science:
- Neuroimaging
- Biophysics
- Connectomics
Background:
- Diffusion MRI is crucial for mapping brain connectivity but faces challenges with ex vivo tissue.
- Conventional diffusion MRI sequences struggle with reduced diffusivities and relaxation times in fixed tissue.
- High spatial resolution is needed for detailed ex vivo connectome investigations.
Purpose of the Study:
- To investigate the utility of the diffusion-weighted steady-state free precession (DW-SSFP) sequence for ex vivo macaque brain diffusion imaging.
- To optimize DW-SSFP parameters for high-resolution imaging at ultra-high field strength.
- To assess the performance of DW-SSFP compared to conventional diffusion MRI sequences.
Main Methods:
- Utilized a 10.5 T MRI scanner with a conventional gradient set for ex vivo macaque brain scanning.
- Optimized DW-SSFP sequence parameters for SNR efficiency, considering experimental relaxation times.
- Acquired data using a two-shell multi-orientation protocol (b-values 3200 and 5600 s/mm²) at 0.4 mm isotropic resolution.
- Analyzed diffusion data using Tensor, Ball and 3-Sticks, and Constrained Spherical Deconvolution models.
Main Results:
- DW-SSFP demonstrated improved or similar SNR efficiency compared to diffusion-weighted spin- and stimulated-echo sequences.
- Achieved negligible geometric distortions, a significant advantage over echo-planar imaging readouts.
- Produced high-quality diffusivity estimates across the entire brain.
- Successfully resolved multiple fibre populations in complex crossing-fibre regions.
Conclusions:
- DW-SSFP is a promising sequence for high-resolution ex vivo diffusion MRI of the brain.
- The proposed protocol enables detailed characterization of brain structural connectivity.
- The generated dataset will be made open source, serving as a valuable resource for future research.
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