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磁共振超声成像系统:基本原理与初步应用。

Magnetomotive Ultrasound Imaging Systems: Basic Principles and First Applications.

机构信息

Department of Biomedical Engineering, Lund University, Lund, Sweden.

Department of Clinical Sciences Lund/Biomedical Engineering, Lund University, Lund, Sweden.

出版信息

Ultrasound Med Biol. 2020 Oct;46(10):2636-2650. doi: 10.1016/j.ultrasmedbio.2020.06.014. Epub 2020 Aug 1.

Abstract

This review discusses magnetomotive ultrasound, which is an emerging technique that uses superparamagnetic iron oxide nanoparticles as a contrast agent. The key advantage of using nanoparticle-based contrast agents is their ability to reach extravascular targets, whereas commercial contrast agents for ultrasound comprise microbubbles confined to the blood stream. This also extends possibilities for molecular imaging, where the contrast agent is labeled with specific targeting molecules (e.g., antibodies) so that pathologic tissue may be visualized directly. The principle of action is that an external time-varying magnetic field acts to displace the nanoparticles lodged in tissue and thereby their immediate surrounding. This movement is then detected with ultrasound using frequency- or time-domain analysis of echo data. As a contrast agent already approved for magnetic resonance imaging (MRI) by the US Food and Drug Administration, there is a shorter path to clinical translation, although safety studies of magnetomotion are necessary, especially if particle design is altered to affect biodistribution or signal strength. The external modulated magnetic field may be generated by electromagnets, permanent magnets, or a combination of the two. The induced nanoparticle motion may also reveal mechanical material properties of tissue, healthy or diseased, one of several interesting potential future aspects of the technique.

摘要

这篇综述讨论了磁驱动超声,这是一种新兴技术,它使用超顺磁氧化铁纳米颗粒作为对比剂。使用基于纳米颗粒的对比剂的主要优势在于它们能够到达血管外的靶标,而用于超声的商业对比剂包含局限于血流的微泡。这也扩展了分子成像的可能性,其中对比剂用特定的靶向分子(例如抗体)标记,以便可以直接可视化病理组织。作用原理是外部时变磁场作用于在组织中滞留的纳米颗粒,从而使其周围的物质发生位移。然后,使用频率或时间域分析回波数据,通过超声来检测这种运动。由于超顺磁氧化铁已被美国食品和药物管理局批准用于磁共振成像(MRI),因此向临床转化的途径更短,尽管需要进行磁运动安全性研究,特别是如果改变颗粒设计以影响生物分布或信号强度的话。外部调制磁场可以通过电磁铁、永磁体或两者的组合来产生。诱导的纳米颗粒运动也可以揭示健康或患病组织的机械材料特性,这是该技术的几个有趣的潜在未来方面之一。

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