MRI引导下经颅声电成像安全准确的脑电成像

M. Allard, Chet Preston, Teodoro Trujillo, Chiao Huang, Nan-kuei Chen, R. Witte
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引用次数: 1

摘要

经颅声电脑成像(tABI)是一种将超声(US)通过颅骨传输与射频传感相结合的新模式,可以产生高分辨率的大脑电图。鉴于无创脑电图存在空间分辨率差和估计电流源密度不准确的问题,tABI利用声电(AE)相互作用信号,将电流测量限制在毫米尺度的美国波束的焦点区域。为了安全、准确地将美国脉冲传输到大脑,并将tABI地图与结构共同注册,需要一个反馈和制导系统。本研究的目的是通过实时反馈来证明和确定神经导航tABI的准确性,以最佳地放置US阵列并将波束定向到头部选定的目标位置。这将有助于人类头部模型、结构MRI和tABI电流密度图的共同配准。该集成系统可以预测通过人类头骨的美国光束轨迹,并与临床图像相匹配,以指导和提高实时tABI的准确性。引导系统协议只增加了几分钟的过程,结果很容易定位目标在大脑中。制导tABI的分辨率为3毫米,目标精度为5.1毫米。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
MRI Guided Transcranial Acoustoelectric Imaging for Safe and Accurate Electrical Brain Mapping
Transcranial acoustoelectric brain imaging (tABI) is a new modality that combines ultrasound (US) delivery through the skull with radiofrequency sensing to produce electrical maps of the brain at high resolution. Whereas noninvasive EEG suffers from poor spatial resolution and inaccuracies for estimating current source densities, tABI takes advantage of an acoustoelectric (AE) interaction signal, which confines the current measurement to the focal region of the US beam on the millimeter scale. To safely and accurately deliver US pulses to the brain and co-register tABI maps with structure, a feedback and guidance system is required. The goal of this study is to demonstrate and determine the accuracy of neuronavigated tABI with real-time feedback for optimally placing the US array and directing the beam to the selected target location in the head. This will facilitate co-registration of the human head model, structural MRI, and tABI current density maps. The integrated system allows for a prediction of the US beam trajectory through the human skull with registration to clinical images for guidance and improving accuracy of real-time tABI. The guided system protocol adds only minutes to the process and results in easy localization of the target in the brain. The guided tABI has a resolution of 3 mm and a targetting accuracy of 5.1 mm.
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