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Purpose: To implement, optimize, and validate parallel imaging (PI)-accelerated, 2D, flip angle modulated (FAM) chemical shift-encoded quantification of liver proton-density fat fraction (PDFF), with motion insensitivity.
Methods: The optimization cost function that determines flip angles in FAM was generalized for PI. Phantom studies and prospective studies in volunteers with varying liver fat levels were performed. Free-breathing FAM was acquired in the axial, sagittal, and coronal planes, with varying nominal PI acceleration factors (R) of 1.0 to 3.0. A breath-held, commercially available 3D chemical shift-encoded method was acquired as reference for PDFF. Overall image quality, qualitative SNR, and motion artifacts for all methods were Likert-scale rated. PDFF measured by FAM was compared to reference to assess bias. Test-retest repeatability was assessed for all methods by repeating acquisitions after volunteer repositioning. Noise performance was assessed with standard deviation of PDFF maps as R increased.
Results: The reader study (N = 3 readers/10 subjects) demonstrated excellent image quality for FAM during free-breathing, with reduced motion artifacts compared to breath-held reference (p < 0.01). PI-accelerated FAM shows fewer motion artifacts than unaccelerated FAM (p < 0.01). In all planes and accelerations, PDFF measured by FAM showed good agreement with reference PDFF measurements (mean bias: -0.4% to 2.0% PDFF; 95% limits of agreement: 2.8% to 4.0% PDFF). FAM in axial and coronal planes showed similar or improved repeatability (repeatability coefficient = 1.7% to 2.6% PDFF) compared to the reference (2.7%). Sagittal FAM shows similar or worse repeatability (repeatability coefficient = 3.0% to 3.6%). FAM with R = 2.0 has good noise performance and high SNR efficiency.
Conclusion: FAM, in axial or coronal planes with R = 2.0, is optimal for motion-insensitive liver PDFF quantification.
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http://dx.doi.org/10.1002/mrm.70047 | DOI Listing |
Magn Reson Med
September 2025
Medical Physics, University of Wisconsin-Madison, Madison, Wisconsin, USA.
Purpose: To implement, optimize, and validate parallel imaging (PI)-accelerated, 2D, flip angle modulated (FAM) chemical shift-encoded quantification of liver proton-density fat fraction (PDFF), with motion insensitivity.
Methods: The optimization cost function that determines flip angles in FAM was generalized for PI. Phantom studies and prospective studies in volunteers with varying liver fat levels were performed.
Eur Radiol
August 2025
Department of Radiology, Shuguang Hospital Affiliated to Shanghai University of Traditional Chinese Medicine, Shanghai, China.
Objectives: To develop and evaluate a novel multi-parameter MRI-based model (EFT1) for identifying high-risk metabolic dysfunction-associated steatohepatitis (MASH) to improve diagnostic accuracy and efficiency.
Materials And Methods: A prospective study included 118 patients (55 male; 48 ± 13 years) with hepatic steatosis and metabolic risk factors. Among these, 80 patients were classified as having high-risk MASH.
Nat Commun
July 2025
State Key Laboratory of Magnetic Resonance Spectroscopy and Imaging, National Center for Magnetic Resonance in Wuhan, Wuhan Institute of Physics and Mathematics, Innovation Academy for Precision Measurement Science and Technology, Chinese Academy of Sciences, Wuhan, 430071, P. R. China. xinzhou@wipm
Fluorescent molecules with specific target moieties are essential for histopathological analysis, but their limited tissue penetration depth makes in vivo, in situ color encoding analysis challenging. Magnetic resonance imaging (MRI) offers deep tissue penetration. When combined with chemical shift-encoded MRI reporters, it enables in vivo chemical shift encoding for biotarget imaging and analysis.
View Article and Find Full Text PDFJ Magn Reson Imaging
July 2025
Department of Radiology, University of Wisconsin-Madison, Madison, Wisconsin, USA.
Background: Breath-held quantitative three-dimensional chemical-shift-encoded (3D-CSE)-MRI is widely used for liver fat and iron quantification but is limited in patients unable to hold breath. Motion-insensitive two-dimensional flip angle modulated (2D-FAM) acquisitions with short temporal aperture may address this limitation.
Purpose: To evaluate the performance of 2D-FAM-based CSE-MRI during free-breathing for quantifying proton density fat-fraction (PDFF) and R2*-based liver iron concentration (LIC).
Clin Radiol
August 2025
Department of Radiology, Shanghai Tenth People's Hospital, Tongji University School of Medicine, Shanghai, China. Electronic address:
Aim: To investigate the relationship between anaemia and bone marrow fat fraction (BMFF) based on chemical shift-encoded magnetic resonance imaging (CSE-MRI) in Crohn's disease (CD) patients.
Materials And Methods: A total of 103 patients with CD and 67 healthy volunteers were enrolled in this study. Differences in BMFF, red blood cell (RBC), and haemoglobin (Hb) counts were compared between the two groups.