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B 1+ Phase mapping at 7 T and its application for in vivo electrical conductivity mapping

机译:B T1 + 7 T相映射及其在体内电导率映射中的应用

摘要

In this study, a new approach to measure local electrical conductivity in tissue is presented, which is based on the propagating B 1+ phase and the homogeneous Helmholtz equation. This new MRI technique might open future opportunities for tumor and lesion characterization based on conductivity differences, while it may also find application in radio frequency safety assessment. Prerequisites for conductivity mapping using only the B 1+ phase (instead of the complex B +1 field) are addressed. Furthermore it was found that the B 1+ phase can be derived directly from the measurable transceive phase arg(B +1 B -1) in the head. Validation for a human head excited by a 7 T-birdcage coil using simulations and measurements showed that it is possible to measure in vivo conductivity patterns in the brain using B 1+ phase information only. Conductivity contrast between different brain tissues is clearly observed. The measured mean values for white matter, gray matter and cerebrospinal fluid differed 54%, 26%, and -13% respectively from literature values. The proposed method for B 1+ phase measurements is very suited for in vivo applications, as the measurement is short (less than a minute per imaged slice) and exposes the patient to low RF power, contrary to earlier proposed approaches. Magn Reson Med, 2011. © 2011 Wiley-Liss, Inc.
机译:在这项研究中,提出了一种新的测量组织中局部电导率的方法,该方法基于传播的B 1+相和均质Helmholtz方程。这项新的MRI技术可能会基于电导率差异为肿瘤和病变的特征化开辟未来的机会,同时也可能会在射频安全性评估中得到应用。解决了仅使用B 1+相(而不是复数B +1场)进行电导率映射的先决条件。此外还发现,B 1+相可以直接从头部的可测量收发相arg(B +1 B -1)导出。使用模拟和测量对由7 T鸟笼线圈激发的人头的验证表明,仅使用B 1+相信息就可以测量大脑中的体内电导率模式。可以清楚地观察到不同大脑组织之间的电导率对比。白质,灰质和脑脊液的测量平均值分别与文献值相差54%,26%和-13%。提出的B 1+相位测量方法非常适合于体内应用,因为测量时间短(每个成像切片少于一分钟),并且使患者暴露于低RF功率,这与早期提出的方法相反。 Magn Reson Med,2011年。©2011 Wiley-Liss,Inc.。

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