短t2成像技术在肌肉骨骼系统中的现状:过去,现在和未来。

IF 3.3 2区 医学 Q1 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Pranjal Rai, Amit Kumar Janu, Nitin Shetty, Suyash Kulkarni
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引用次数: 0

摘要

由于T2弛豫时间短的组织(如骨、韧带和软骨)信号衰减快,常规MRI在成像时受到限制。这一限制刺激了专门为短t2组织成像设计的专门MRI技术的发展。传统的脉冲序列,包括三维梯度回波(3D-GRE)、敏感加权成像(SWI)和类似于限制回波间隔(FRACTURE)的CT的快速场回波,最初解决了这些挑战,但往往缺乏足够的分辨率或对比度区分。最近的进展,如超短回波时间(UTE)、零回波时间(ZTE)、3D-Bone和合成计算机断层扫描(sCT),通过在不暴露于电离辐射的情况下提供高质量的、类似ct的可视化,显著增强了MRI的诊断能力。这些创新极大地提高了MRI描述骨形态、评估关节病理、识别细微骨折和更高准确性表征骨肿瘤的能力。除了肌肉骨骼的应用之外,这些技术在其他领域也显示出了新兴的临床应用,包括肺部和牙科成像。这篇综述文章评估了传统的脉冲序列以及新兴的MRI创新,强调了它们的临床应用、当前的局限性和技术考虑。这些技术的持续优化保证了更广泛的临床应用,潜在地减少了对侵入性和辐射强化成像模式的依赖。证据水平:无技术功效:阶段3。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Current Landscape of Short-T2 Imaging Techniques in the Musculoskeletal System: The Past, Present and Future.

Conventional MRI is limited in imaging tissues with short T2 relaxation times, such as bone, ligaments, and cartilage, due to their rapid signal decay. This limitation has spurred the development of specialized MRI techniques designed specifically for short-T2 tissue imaging. Traditional pulse sequences, including three-dimensional gradient echo (3D-GRE), susceptibility-weighted imaging (SWI), and Fast Field Echo Resembling a CT using Restricted Echo-Spacing (FRACTURE), initially addressed some of these challenges but often lacked sufficient resolution or contrast differentiation. Recent advancements, such as ultrashort echo time (UTE), zero echo time (ZTE), 3D-Bone, and synthetic computed tomography (sCT), have significantly enhanced the diagnostic capabilities of MRI by providing high-quality, CT-like visualization without exposure to ionizing radiation. These innovations have substantially improved MRI's ability to depict bone morphology, assess joint pathology, identify subtle fractures, and characterize bone tumors with higher accuracy. Beyond musculoskeletal applications, these techniques have demonstrated emerging clinical utility in additional domains, including pulmonary and dental imaging. This review article evaluates conventional pulse sequences alongside emerging MRI innovations, highlighting their clinical applications, current limitations, and technical considerations. Continued optimization of these techniques promises broader clinical adoption, potentially reducing dependence on invasive and radiation-intensive imaging modalities. Evidence Level: N/A Technical Efficacy: Stage 3.

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来源期刊
CiteScore
9.70
自引率
6.80%
发文量
494
审稿时长
2 months
期刊介绍: The Journal of Magnetic Resonance Imaging (JMRI) is an international journal devoted to the timely publication of basic and clinical research, educational and review articles, and other information related to the diagnostic applications of magnetic resonance.
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