三维超分辨率超声成像研究进展述评

IF 2.1 4区 医学 Q2 ACOUSTICS
Debabrata Ghosh, Kenneth Hoyt
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引用次数: 0

摘要

传统超声(US)成像对小血管血流缓慢缺乏敏感性,导致了微泡(MB)造影剂的发展。这些MBs通过静脉注射,超声成像可以非常有效地检测到它们。这种无创成像方法,被称为对比增强超声(CEUS),现在可以准确地评估组织灌注和血流。虽然CEUS提供了一些好处,但衍射限制了所有US成像系统的空间分辨率,其长度尺度大约等于传输的US光束波长的一半。基于单个MB的检测和定位,最近开发的超分辨率US (SRUS)成像方法显示出前所未有的高空间分辨率,超过了物理衍射极限。现在,通过在多个帧中定位空间隔离的mb,可以在衍射限制的分辨率之外可视化微血管。当组织和探针运动不存在时,在临床超声频率下可能的最高分辨率可以达到几微米。利用结构数据加强组织微血管网络的功能研究可以改善疾病的管理。通过对mb的定位和跟踪,SRUS可以在二维(2D)和三维(3D)空间以超过衍射极限的分辨率重建微血管图像。与2D方法相比,3D SRUS成像不会受到面外运动的影响,并且可以在所有三个维度上提供超分辨率的体积覆盖。研究人员使用了两种主要的3D SRUS成像方法,包括可以电子收集体积信息的阵列,或者用线性探针对体积进行机械扫描,以产生一堆2D SRUS图像。该手稿旨在提供3D SRUS成像,澄清方法,临床应用和显著的挑战,可以激励未来的研究和帮助促进临床翻译的全面审查。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advancements in Three-Dimensional Super-Resolution Ultrasound Imaging: A Narrative Review.

The lack of sensibility of traditional ultrasound (US) imaging to the slow blood flow in small vessels resulted in the development of microbubble (MB) contrast agents. These MBs are given intravenously, and US imaging can detect them quite effectively. This noninvasive imaging method, known as contrast-enhanced US (CEUS), now makes it possible to accurately assess tissue perfusion and blood flow. Though CEUS offers several benefits, diffraction restricts the spatial resolution of all US imaging systems to length scales equal to roughly half the wavelength of the transmitted US beam. Based on individual MB detection and localization, the recently developed super-resolution US (SRUS) imaging method has shown unprecedentedly high spatial resolution exceeding the physical diffraction limit. It is now possible to visualize the microvasculature beyond the diffraction-limited resolution by localizing spatially isolated MBs across several frames. The highest resolution possible at clinical US frequencies can be on the order of several micrometers when tissue and probe motion are not present. Enhancing the functional study of tissue microvascular networks with structural data could lead to improved disease management. Through the localization and tracking of MBs, SRUS may reconstruct images of the microvasculature with resolution exceeding the diffraction limit in both 2-dimensional (2D) and 3-dimensional (3D) space. In contrast to the 2D approach, 3D SRUS imaging does not suffer from out-of-plane motion and can offer volumetric coverage with super-resolution in all three dimensions. Research has used two primary methods for 3D SRUS imaging including arrays that can electronically gather volumetric information or mechanically scanning the volume with a linear probe to produce a stack of 2D SRUS images. This manuscript aims to offer a comprehensive review of 3D SRUS imaging, clarifying methodologies, clinical applications, and notable challenges that could motivate future research and help facilitate clinical translation.

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来源期刊
CiteScore
5.10
自引率
4.30%
发文量
205
审稿时长
1.5 months
期刊介绍: The Journal of Ultrasound in Medicine (JUM) is dedicated to the rapid, accurate publication of original articles dealing with all aspects of medical ultrasound, particularly its direct application to patient care but also relevant basic science, advances in instrumentation, and biological effects. The journal is an official publication of the American Institute of Ultrasound in Medicine and publishes articles in a variety of categories, including Original Research papers, Review Articles, Pictorial Essays, Technical Innovations, Case Series, Letters to the Editor, and more, from an international bevy of countries in a continual effort to showcase and promote advances in the ultrasound community. Represented through these efforts are a wide variety of disciplines of ultrasound, including, but not limited to: -Basic Science- Breast Ultrasound- Contrast-Enhanced Ultrasound- Dermatology- Echocardiography- Elastography- Emergency Medicine- Fetal Echocardiography- Gastrointestinal Ultrasound- General and Abdominal Ultrasound- Genitourinary Ultrasound- Gynecologic Ultrasound- Head and Neck Ultrasound- High Frequency Clinical and Preclinical Imaging- Interventional-Intraoperative Ultrasound- Musculoskeletal Ultrasound- Neurosonology- Obstetric Ultrasound- Ophthalmologic Ultrasound- Pediatric Ultrasound- Point-of-Care Ultrasound- Public Policy- Superficial Structures- Therapeutic Ultrasound- Ultrasound Education- Ultrasound in Global Health- Urologic Ultrasound- Vascular Ultrasound
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