Modern acceleration in musculoskeletal MRI: applications, implications, and challenges.

IF 1.9 3区 医学 Q2 ORTHOPEDICS Skeletal Radiology Pub Date : 2024-09-01 Epub Date: 2024-03-05 DOI:10.1007/s00256-024-04634-2
Jan Vosshenrich, Gregor Koerzdoerfer, Jan Fritz
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Abstract

Magnetic resonance imaging (MRI) is crucial for accurately diagnosing a wide spectrum of musculoskeletal conditions due to its superior soft tissue contrast resolution. However, the long acquisition times of traditional two-dimensional (2D) and three-dimensional (3D) fast and turbo spin-echo (TSE) pulse sequences can limit patient access and comfort. Recent technical advancements have introduced acceleration techniques that significantly reduce MRI times for musculoskeletal examinations. Key acceleration methods include parallel imaging (PI), simultaneous multi-slice acquisition (SMS), and compressed sensing (CS), enabling up to eightfold faster scans while maintaining image quality, resolution, and safety standards. These innovations now allow for 3- to 6-fold accelerated clinical musculoskeletal MRI exams, reducing scan times to 4 to 6 min for joints and spine imaging. Evolving deep learning-based image reconstruction promises even faster scans without compromising quality. Current research indicates that combining acceleration techniques, deep learning image reconstruction, and superresolution algorithms will eventually facilitate tenfold accelerated musculoskeletal MRI in routine clinical practice. Such rapid MRI protocols can drastically reduce scan times by 80-90% compared to conventional methods. Implementing these rapid imaging protocols does impact workflow, indirect costs, and workload for MRI technologists and radiologists, which requires careful management. However, the shift from conventional to accelerated, deep learning-based MRI enhances the value of musculoskeletal MRI by improving patient access and comfort and promoting sustainable imaging practices. This article offers a comprehensive overview of the technical aspects, benefits, and challenges of modern accelerated musculoskeletal MRI, guiding radiologists and researchers in this evolving field.

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肌肉骨骼磁共振成像的现代加速:应用、影响和挑战。
磁共振成像(MRI)具有卓越的软组织对比分辨率,对于准确诊断各种肌肉骨骼疾病至关重要。然而,传统的二维(2D)和三维(3D)快速脉冲序列和涡轮自旋回波(TSE)脉冲序列的采集时间较长,会限制患者的就诊机会和舒适度。最近的技术进步引入了加速技术,大大缩短了肌肉骨骼检查的磁共振成像时间。主要的加速方法包括并行成像(PI)、同步多切片采集(SMS)和压缩传感(CS),在保持图像质量、分辨率和安全标准的同时,扫描时间最多可缩短八倍。现在,这些创新技术可将临床肌肉骨骼磁共振成像检查的速度提高 3 到 6 倍,将关节和脊柱成像的扫描时间缩短到 4 到 6 分钟。基于深度学习的图像重建技术不断发展,有望在不影响质量的前提下实现更快的扫描。目前的研究表明,结合加速技术、深度学习图像重建和超分辨率算法,最终将有助于在常规临床实践中将肌肉骨骼磁共振成像加速十倍。与传统方法相比,这种快速磁共振成像协议可将扫描时间大幅缩短 80-90%。实施这些快速成像方案确实会影响工作流程、间接成本以及磁共振成像技师和放射医师的工作量,因此需要谨慎管理。然而,从传统磁共振成像到基于深度学习的加速磁共振成像的转变,通过提高患者的就诊率和舒适度以及促进可持续成像实践,提升了肌肉骨骼磁共振成像的价值。本文全面概述了现代加速肌肉骨骼磁共振成像的技术方面、优点和挑战,为这一不断发展的领域的放射医师和研究人员提供指导。
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来源期刊
Skeletal Radiology
Skeletal Radiology 医学-核医学
CiteScore
4.40
自引率
9.50%
发文量
253
审稿时长
3-8 weeks
期刊介绍: Skeletal Radiology provides a forum for the dissemination of current knowledge and information dealing with disorders of the musculoskeletal system including the spine. While emphasizing the radiological aspects of the many varied skeletal abnormalities, the journal also adopts an interdisciplinary approach, reflecting the membership of the International Skeletal Society. Thus, the anatomical, pathological, physiological, clinical, metabolic and epidemiological aspects of the many entities affecting the skeleton receive appropriate consideration. This is the Journal of the International Skeletal Society and the Official Journal of the Society of Skeletal Radiology and the Australasian Musculoskelelal Imaging Group.
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