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超声在肝细胞癌诊断中的当前作用。

Current role of ultrasound in the diagnosis of hepatocellular carcinoma.

作者信息

Tanaka Hironori

机构信息

Department of Gastroenterology and Hepatology, Takarazuka Municipal Hospital, 4-5-1 Kohama, Takarazuka, Hyogo, Japan.

出版信息

J Med Ultrason (2001). 2020 Apr;47(2):239-255. doi: 10.1007/s10396-020-01012-y. Epub 2020 Mar 13.

Abstract

Ultrasonography (US) is a major, sustainable hepatocellular carcinoma (HCC) surveillance method as it provides inexpensive, real-time, and noninvasive detection. Since US findings are based on pathological features, knowledge of pathological features is essential for delivering a correct US diagnosis. Recent advances in US equipment have made it possible to provide more information, such as malignancy potential and accurate localization diagnosis of HCC. Evaluation of malignancy potential is important to determine the treatment strategy, especially for small HCC. Diagnosis of blood flow dynamics using color Doppler and contrast-enhanced US is one of the most definitive approaches for evaluating HCC malignancy potential. Recently, a new Doppler microvascular imaging technique, superb microvascular imaging, which can detect Doppler signals generated by low-velocity blood flow, was developed. A fusion imaging system, another innovative US technology, has already become an indispensable technology over the last few years not only for US-guided radiofrequency ablation but also for the detection of small, invisible HCC. This article reviews the evidence on the use of ultrasound and contrast-enhanced ultrasound with Sonazoid for the practical management of HCC.

摘要

超声检查(US)是一种主要的、可持续的肝细胞癌(HCC)监测方法,因为它能提供廉价、实时且无创的检测。由于超声检查结果基于病理特征,了解病理特征对于做出正确的超声诊断至关重要。超声设备的最新进展使得提供更多信息成为可能,例如HCC的恶性潜能和精确的定位诊断。评估恶性潜能对于确定治疗策略很重要,尤其是对于小肝癌。使用彩色多普勒和超声造影诊断血流动力学是评估HCC恶性潜能最具决定性的方法之一。最近,一种新的多普勒微血管成像技术——超微血管成像被开发出来,它能够检测由低速血流产生的多普勒信号。融合成像系统是另一项创新性的超声技术,在过去几年中,它不仅已成为超声引导下射频消融不可或缺的技术,而且对于检测微小、隐匿性HCC也很重要。本文综述了关于使用超声和超声造影剂声诺维用于HCC实际管理的证据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/14d9/7181430/72e56d7b3bf0/10396_2020_1012_Fig1_HTML.jpg

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