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Updated: Jul 4, 2026

Diffusion Imaging in the Rat Cervical Spinal Cord
Published on: April 7, 2015
Attenuation of lower-thoracic, lumbar, and sacral spinal cord motion: implications for imaging human spinal cord
C R Figley1, D Yau, P W Stroman
1Centre for Neuroscience Studies, Queen's University, Kingston, Ontario, Canada.
Background And Purpose:
Recent literature indicates that cervical and upper-thoracic spinal cord motion adversely affect both structural and functional MR imaging (fMRI; particularly diffusion tensor imaging [DTI] and spinal fMRI), ultimately reducing the reliability of these methods for both research and clinical applications. In the present study, we investigated motion of the lower-thoracic, lumbar, and sacral cord segments to evaluate the incidence of similar motion-related confounds in these regions.
Materials And Methods:
Recently developed methods, used previously for measuring cervical and upper-thoracic spinal cord motion, were employed in the present study to examine anteroposterior (A/P) and left-right (L/R) spinal cord motion in caudal regions. Segmented cinematic imaging was applied with a gradient-echo, turbo fast low-angle shot (turbo-FLASH) pulse sequence to acquire midline images of the cord at 24 cardiac phases throughout the lower-thoracic, lumbar, and sacral spinal cord regions.
Results:
The magnitude of A/P motion was found to be largest in rostral cord regions, whereas in caudal regions (at the level of the T4/T5 vertebrae and below), peak cord motion was uniformly small (routinely < or =0.10 mm). L/R motion, however, was found to be minimal throughout the thoracic, lumbar, and sacral regions.
Conclusion:
Motion-related errors in spinal fMRI and DTI are expected to be significantly reduced throughout caudal regions of the spinal cord, thus yielding higher sensitivity and specificity compared with rostral regions. The paucity of such errors is expected to provide a means of observing the specific impact of motion (in rostral regions) and to enable the acquisition of uncorrupted DTI and fMRI data for studies of structure and function throughout lumbar and sacral regions.
Insights
Spinal cord motion significantly impacts MRI scans in upper regions. However, motion is minimal in lower-thoracic, lumbar, and sacral regions, improving MRI reliability for research and clinical use.
Area of Science:
- Neuroimaging
- Spinal Cord Anatomy
- Medical Imaging Physics
Background:
- Cervical and upper-thoracic spinal cord motion can compromise structural and functional MRI (fMRI), including diffusion tensor imaging (DTI).
- These motion artifacts reduce the reliability of MRI for both research and clinical applications in the spinal cord.
Purpose of the Study:
- To investigate spinal cord motion in the lower-thoracic, lumbar, and sacral regions.
- To evaluate the incidence of motion-related confounds in these caudal spinal cord segments.
Main Methods:
- Utilized recently developed methods for measuring spinal cord motion.
- Employed segmented cinematic imaging with a turbo-FLASH pulse sequence.
- Acquired midline cord images at 24 cardiac phases across lower-thoracic, lumbar, and sacral regions.
Main Results:
- Anteroposterior (A/P) motion was largest in rostral cord regions.
- Peak cord motion in caudal regions (T4/T5 and below) was consistently small (< or =0.10 mm).
- Left-right (L/R) motion was minimal throughout the thoracic, lumbar, and sacral regions.
Conclusions:
- Motion-related errors in spinal fMRI and DTI are expected to be substantially reduced in caudal spinal cord regions.
- This reduction in motion artifacts is anticipated to enhance sensitivity and specificity compared to rostral regions.
- Uncorrupted DTI and fMRI data can be acquired for lumbar and sacral region studies, allowing better observation of motion's impact in rostral areas.
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