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Synapse
August 1, 20250 citationsOpen Access

Fast voxel and structural MRI realignment to mitigate inter-acquisition motion for spectroscopy

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CMCassia Low MantingATAtsushi TakahashiJAJyrki Ahveninen

Key Points

  • Core finding indicates that the proposed realignment method effectively mitigates subject motion in magnetic resonance spectroscopy (MRS).
  • Demonstrated that repositioning voxels in regions like the prefrontal cortex improves accuracy by eliminating bone contamination in MRS data.
  • Utilized a quick 18-second MRI scout sequence to realign T1-weighted images for enhanced anatomical segmentation.
  • This approach offers accessible solutions for movement-prone populations, potentially aiding broader use of spectroscopy with less specialized infrastructure.

Abstract

Magnetic resonance spectroscopy (MRS) non-invasively measures the biochemical composition within a predefined brain region, enabling quantification of neurochemicals with biological and clinical relevance, such as N-acetylaspartate, creatine, choline, glutamate, and gamma-aminobutyric acid. However, accurate MRS quantification is compromised by subject motion displacing the prescribed location, a common problem during long scans or with motion-prone populations such as children and patients. Furthermore, displacement into bone tissue contaminates MRS data with noisy artifacts, often rendering them unusable. While promising solutions exist to address motion-related issues, many rely on specialized infrastructure and expertise available only at a limited number of research centers. We propose a fast and straightforward method that acquires a head scout (18 s) MRI sequence following potential motion, automatically repositions the prescribed voxel with the scanner's built-in AutoAlign function, and realigns the T1-weighted image to the updated position for anatomical segmentation. Using voxels prescribed in the prefrontal cortex, thalamus, and left superior temporal gyrus, we demonstrated that this realignment method successfully restored displaced voxels to their intended locations, eliminating bone contamination while improving voxel targeting through greater overlap with intended regions and more consistent voxel placement across subjects. This solution offers a quick and practical way for correcting subject motion between scans by combining available tools that are readily accessible even to new users, while more sophisticated motion correction technologies continue to develop towards broader adoption.

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Cite This Study

Manting et al. (2025) studied this question.

synapsesocial.com/papers/689a0c6be6551bb0af8cff7chttps://doi.org/10.1101/2025.07.31.668045
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Also Consider

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  1. 1Motion Correction in High‐Resolution <scp>3D</scp> Brain <scp>MRSI</scp> Without Water and Lipid Suppression2025
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  3. 3Learning-Based Motion Correction for High-Resolution 3D MRSI of the Brain without Water Suppression2025
  4. 4Motion-corrected brain MRI at 64 mT2025
  5. 5Towards retrospective motion correction and reconstruction for clinical 3D brain MRI protocols with a reference contrast2024 · 1 citations