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本文引用的文献

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Improved adaptive reconstruction of multichannel MR images.多通道磁共振图像的改进自适应重建
Med Phys. 2015 Feb;42(2):637-644. doi: 10.1118/1.4905163.
2
Imaging Cerebral Microhemorrhages in Military Service Members with Chronic Traumatic Brain Injury.对患有慢性创伤性脑损伤的军人进行脑微出血成像
Radiology. 2016 Feb;278(2):536-45. doi: 10.1148/radiol.2015150160. Epub 2015 Sep 15.
3
Quantity of Cerebral Microbleeds, Antiplatelet Therapy, and Intracerebral Hemorrhage Outcomes: A Systematic Review and Meta-analysis.脑微出血的数量、抗血小板治疗与脑出血结局:一项系统评价和荟萃分析。
J Stroke Cerebrovasc Dis. 2015 Dec;24(12):2728-37. doi: 10.1016/j.jstrokecerebrovasdis.2015.08.003. Epub 2015 Sep 3.
4
Imaging of Cerebral Microbleeds.脑微出血的影像学检查
Clin Neuroradiol. 2015 Oct;25 Suppl 2:167-75. doi: 10.1007/s00062-015-0458-z. Epub 2015 Sep 4.
5
A fully flow-compensated multiecho susceptibility-weighted imaging sequence: The effects of acceleration and background field on flow compensation.一种全血流补偿多回波磁敏感加权成像序列:加速和背景场对血流补偿的影响。
Magn Reson Med. 2016 Aug;76(2):478-89. doi: 10.1002/mrm.25878. Epub 2015 Sep 2.
6
Rapid multi-orientation quantitative susceptibility mapping.快速多方位定量磁化率成像
Neuroimage. 2016 Jan 15;125:1131-1141. doi: 10.1016/j.neuroimage.2015.08.015. Epub 2015 Aug 12.
7
Incidental Cerebral Microbleeds and Cerebral Blood Flow in Elderly Individuals.老年人的偶然脑微出血与脑血流
JAMA Neurol. 2015 Sep;72(9):1021-8. doi: 10.1001/jamaneurol.2015.1359.
8
Susceptibility Vessel Sign for Intra-arterial Thrombus in Acute Posterior Cerebral Artery Infarction.急性大脑后动脉梗死动脉内血栓的易损血管征
J Stroke Cerebrovasc Dis. 2015 Jun;24(6):1229-34. doi: 10.1016/j.jstrokecerebrovasdis.2015.01.021. Epub 2015 Apr 20.
9
Diffuse axonal injury at ultra-high field MRI.超高场磁共振成像中的弥漫性轴索损伤
PLoS One. 2015 Mar 20;10(3):e0122329. doi: 10.1371/journal.pone.0122329. eCollection 2015.
10
Susceptibility Weighted Imaging and Mapping of Micro-Hemorrhages and Major Deep Veins after Traumatic Brain Injury.创伤性脑损伤后微出血和主要深部静脉的磁敏感加权成像及图谱分析
J Neurotrauma. 2016 Jan 1;33(1):10-21. doi: 10.1089/neu.2014.3856. Epub 2015 May 26.

susceptibility加权成像:现状与未来方向。 (注:Susceptibility-weighted imaging常译为“磁敏感加权成像” ,这里按照你要求的字面翻译了)

Susceptibility-weighted imaging: current status and future directions.

作者信息

Liu Saifeng, Buch Sagar, Chen Yongsheng, Choi Hyun-Seok, Dai Yongming, Habib Charbel, Hu Jiani, Jung Joon-Yong, Luo Yu, Utriainen David, Wang Meiyun, Wu Dongmei, Xia Shuang, Haacke E Mark

机构信息

The MRI Institute for Biomedical Research, Waterloo, ON, Canada.

Department of Radiology, Wayne State University, Detroit, MI, USA.

出版信息

NMR Biomed. 2017 Apr;30(4). doi: 10.1002/nbm.3552. Epub 2016 May 18.

DOI:10.1002/nbm.3552
PMID:27192086
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5116013/
Abstract

Susceptibility-weighted imaging (SWI) is a method that uses the intrinsic nature of local magnetic fields to enhance image contrast in order to improve the visibility of various susceptibility sources and to facilitate diagnostic interpretation. It is also the precursor to the concept of the use of phase for quantitative susceptibility mapping (QSM). Nowadays, SWI has become a widely used clinical tool to image deoxyhemoglobin in veins, iron deposition in the brain, hemorrhages, microbleeds and calcification. In this article, we review the basics of SWI, including data acquisition, data reconstruction and post-processing. In particular, the source of cusp artifacts in phase images is investigated in detail and an improved multi-channel phase data combination algorithm is provided. In addition, we show a few clinical applications of SWI for the imaging of stroke, traumatic brain injury, carotid vessel wall, siderotic nodules in cirrhotic liver, prostate cancer, prostatic calcification, spinal cord injury and intervertebral disc degeneration. As the clinical applications of SWI continue to expand both in and outside the brain, the improvement of SWI in conjunction with QSM is an important future direction of this technology. Copyright © 2016 John Wiley & Sons, Ltd.

摘要

磁敏感加权成像(SWI)是一种利用局部磁场的固有特性来增强图像对比度的方法,目的是提高各种磁敏感源的可见性并便于诊断解读。它也是利用相位进行定量磁敏感成像(QSM)这一概念的前身。如今,SWI已成为一种广泛应用的临床工具,用于对静脉中的脱氧血红蛋白、脑内铁沉积、出血、微出血和钙化进行成像。在本文中,我们回顾了SWI的基础知识,包括数据采集、数据重建和后处理。特别详细研究了相位图像中尖点伪影的来源,并提供了一种改进的多通道相位数据组合算法。此外,我们展示了SWI在中风、创伤性脑损伤、颈动脉血管壁、肝硬化肝脏中的铁质沉着结节、前列腺癌、前列腺钙化、脊髓损伤和椎间盘退变成像方面的一些临床应用。随着SWI在脑内外的临床应用不断扩展,将SWI与QSM相结合进行改进是该技术未来的一个重要发展方向。版权所有© 2016约翰威立父子有限公司。