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Susceptibility-weighted imaging and quantitative susceptibility mapping in the brain

磁化率加权成像 定量磁化率图 磁共振成像 磁化率 核磁共振 医学 放射科 物理 量子力学
作者
Chunlei Liu,Wei Li,Karen A. Tong,Kristen W. Yeom,Samuel J. Kuzminski
出处
期刊:Journal of Magnetic Resonance Imaging [Wiley]
卷期号:42 (1): 23-41 被引量:467
标识
DOI:10.1002/jmri.24768
摘要

Susceptibility-weighted imaging (SWI) is a magnetic resonance imaging (MRI) technique that enhances image contrast by using the susceptibility differences between tissues. It is created by combining both magnitude and phase in the gradient echo data. SWI is sensitive to both paramagnetic and diamagnetic substances which generate different phase shift in MRI data. SWI images can be displayed as a minimum intensity projection that provides high resolution delineation of the cerebral venous architecture, a feature that is not available in other MRI techniques. As such, SWI has been widely applied to diagnose various venous abnormalities. SWI is especially sensitive to deoxygenated blood and intracranial mineral deposition and, for that reason, has been applied to image various pathologies including intracranial hemorrhage, traumatic brain injury, stroke, neoplasm, and multiple sclerosis. SWI, however, does not provide quantitative measures of magnetic susceptibility. This limitation is currently being addressed with the development of quantitative susceptibility mapping (QSM) and susceptibility tensor imaging (STI). While QSM treats susceptibility as isotropic, STI treats susceptibility as generally anisotropic characterized by a tensor quantity. This article reviews the basic principles of SWI, its clinical and research applications, the mechanisms governing brain susceptibility properties, and its practical implementation, with a focus on brain imaging.

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