腹部弥散加权成像技术进展。

IF 2.5 3区 医学 Q2 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING Magnetic Resonance in Medical Sciences Pub Date : 2023-04-01 DOI:10.2463/mrms.rev.2022-0107
Makoto Obara, Jihun Kwon, Masami Yoneyama, Yu Ueda, Marc Van Cauteren
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引用次数: 0

摘要

自18世纪首次观察到扩散现象以来,许多研究者对其进行了积极的研究。扩散加权成像(diffusion weighted imaging, DWI)是一种基于局部扩散特性来探测水分子的扩散并生成具有对比度的MR图像的技术。DWI像素强度由扩散的水分子所经历的阻碍调制。这种障碍是由组织结构引起的,反映了组织的状态。这一特点使DWI成为一种独特而有效的工具,可以更深入地了解组织的病理生理状况。在过去的几十年里,DWI取得了巨大的技术进步,在临床实践中得到了更大的认可。然而,在腹部区域,由于成像体积大,呼吸和其他类型的运动,以及难以实现均匀的脂肪抑制,获得高质量的DWI是具有挑战性的。在这篇综述中,我们讨论了过去几十年的技术进步,这些技术进步有助于减轻腹部成像中常见的这些问题。我们描述了使用扫描加速技术,如并行成像和压缩感知来减少回波平面成像中的图像失真。然后,我们比较了为缓解呼吸运动引起的问题而开发的技术,如自由呼吸、呼吸触发和基于导航仪的方法。介绍了常用的脂肪抑制技术,并对其有效性进行了讨论。此外,还论证了上述技术对图像质量的影响。最后,我们讨论了腹部DWI目前和未来的临床应用,如全身DWI、同时多层激发、体素内非相干运动和人工智能的应用。由于技术的进步,扫描速度加快,图像质量提高,腹部DWI在未来有进一步发展的潜力。临床证据的积累将进一步推动临床接受度。
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Technical Advancements in Abdominal Diffusion-weighted Imaging.

Since its first observation in the 18th century, the diffusion phenomenon has been actively studied by many researchers. Diffusion-weighted imaging (DWI) is a technique to probe the diffusion of water molecules and create a MR image with contrast based on the local diffusion properties. The DWI pixel intensity is modulated by the hindrance the diffusing water molecules experience. This hindrance is caused by structures in the tissue and reflects the state of the tissue. This characteristic makes DWI a unique and effective tool to gain more insight into the tissue's pathophysiological condition. In the past decades, DWI has made dramatic technical progress, leading to greater acceptance in clinical practice. In the abdominal region, however, acquiring DWI with good quality is challenging because of several reasons, such as large imaging volume, respiratory and other types of motion, and difficulty in achieving homogeneous fat suppression. In this review, we discuss technical advancements from the past decades that help mitigate these problems common in abdominal imaging. We describe the use of scan acceleration techniques such as parallel imaging and compressed sensing to reduce image distortion in echo planar imaging. Then we compare techniques developed to mitigate issues due to respiratory motion, such as free-breathing, respiratory-triggering, and navigator-based approaches. Commonly used fat suppression techniques are also introduced, and their effectiveness is discussed. Additionally, the influence of the abovementioned techniques on image quality is demonstrated. Finally, we discuss the current and future clinical applications of abdominal DWI, such as whole-body DWI, simultaneous multiple-slice excitation, intravoxel incoherent motion, and the use of artificial intelligence. Abdominal DWI has the potential to develop further in the future, thanks to scan acceleration and image quality improvement driven by technological advancements. The accumulation of clinical proof will further drive clinical acceptance.

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来源期刊
Magnetic Resonance in Medical Sciences
Magnetic Resonance in Medical Sciences RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING-
CiteScore
5.80
自引率
20.00%
发文量
71
审稿时长
>12 weeks
期刊介绍: Magnetic Resonance in Medical Sciences (MRMS or Magn Reson Med Sci) is an international journal pursuing the publication of original articles contributing to the progress of magnetic resonance in the field of biomedical sciences including technical developments and clinical applications. MRMS is an official journal of the Japanese Society for Magnetic Resonance in Medicine (JSMRM).
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