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Purpose: To assess the impact of different B0 shimming algorithms on MRS.
Methods: B0 field maps and single-voxel MR spectroscopy were acquired in the prefrontal cortex of five volunteers at 3 T using five different B0 shimming approaches. B0 shimming was achieved using Siemens' proprietary shim algorithm, in addition to the Pseudo-Inverse (PI), Quadratic Programming (QuadProg), Least Squares (LSq), and Gradient optimization (Grad) algorithms. The standard deviation of the shimmed B0 field, as well as the SNR and FWHM of the measured metabolites, was used to evaluate the performance of each B0 shimming algorithm.
Results: Compared to Siemens's shim, significant reductions (p < 0.01) in the standard deviation of the B0 field distribution within the MRS voxel were observed for the PI, QuadProg, and Grad algorithms (3.8 Hz, 7.3 Hz, and 3.9 Hz respectively, compared to 11.5 Hz for Siemens), but not for the LSq (12.9 Hz) algorithm. Moreover, significantly increased SNR and reduced FWHM for the N-acetylaspartate metabolite were consistent with the improvement in B0 homogeneity for the aforementioned shimming algorithms.
Conclusion: Here, we demonstrate that the choice of B0 shimming algorithm can have a significant impact on the quality of MR spectra and that significant improvements in spectrum quality could be achieved by using alternatives to the default vendor approach.
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http://dx.doi.org/10.1002/mrm.30257 | DOI Listing |
Magn Reson Med
August 2025
Biomedical Imaging Research Institute, Cedars-Sinai Medical Center, Los Angeles, California, USA.
Purpose: Magnetic susceptibility differences at the heart-lung interface introduce B-field inhomogeneities that challenge cardiac MRI at high field strengths (≥ 3 T). Although hardware-based shimming has advanced, conventional approaches often neglect dynamic variations in thoracic anatomy caused by cardiac and respiratory motion, leading to residual off-resonance artifacts. This study aims to characterize motion-induced B-field fluctuations in the heart and evaluate a deep learning-enabled motion-adaptive B shimming pipeline to mitigate them.
View Article and Find Full Text PDFNMR Biomed
July 2025
Department of Radiology, University of Missouri Columbia, Columbia, Missouri, USA.
The hippocampus is known to be a key site of pathology for dementia and epilepsy, consistent with its role in memory formation. With this brain region also known to be vulnerable to metabolic injury, spectroscopic studies of the hippocampus are of relevance. However, the hippocampus is a challenging region for measurement, given its irregular small size and the high susceptibility gradients (e.
View Article and Find Full Text PDFMagn Reson Med
October 2025
Division of Medical Physics in Radiology, German Cancer Research Center (DKFZ), Heidelberg, Germany.
Purpose: To explore the feasibility of CEST imaging in the human liver at 7 T with shimming.
Methods: CEST MRI was performed on a 7 T whole-body scanner with a parallel transmission (pTx) system in five healthy volunteers. Static pTx ( shimming) was applied to locally maximize the magnitude per input power within a given region of interest (ROI) of approximately 30 mm diameter (ROI).
Magn Reson Med
September 2025
NeuroPoly Lab, Institute of Biomedical Engineering, Polytechnique Montréal, Quebec, Canada.
Purpose: This study investigates the effectiveness of through-slice gradient optimization in dynamic slice-wise B shimming of the cervico-thoracic spinal cord to enhance signal recovery in gradient-echo (GRE) EPI sequences commonly used in functional MRI studies.
Methods: Six volunteers underwent MRI acquisitions with dynamic shim updating (DSU) using a custom-built 15-channel AC/DC coil at 3 T. A magnetization-prepared rapid gradient echo was acquired to segment the spine and to provide a clear image of the anatomical region of interest in the figures.
Med Phys
May 2025
Institute of Plasma Physics, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei, China.
Background: High-resolution brain imaging is crucial in clinical diagnosis and neuroscience, with ultra-high field strength MRI systems ( ) offering significant advantages for imaging neuronal microstructures. However, achieving magnetic field homogeneity is challenging due to engineering faults during the installation of superconducting strip windings and the primary magnet.
Purpose: This study aims to design and optimize active superconducting shim coils for a 7 T animal MRI system, focusing on the impact of safety margin, size, and adjustability of the second-order shim coils on the MRI system's optimization.