轻屏蔽环境下的可穿戴式脑磁图。

IF 4.4 2区 医学 Q2 ENGINEERING, BIOMEDICAL
Niall Holmes, James Leggett, Ryan M Hill, Lukas Rier, Elena Boto, Holly Schofield, Tyler Hayward, Eliot Dawson, David Woolger, Vishal Shah, Samu Taulu, Matthew J Brookes, Richard Bowtell
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引用次数: 0

摘要

基于光学泵浦磁力计(OPM-MEG)的可穿戴式脑磁图(Wearable magnetoencephalography)可对人脑电生理学进行无创、高保真测量。OPM-MEG 的灵活性还意味着它可用于所有年龄段的参与者,并允许在运动过程中进行扫描。然而,构成 OPM-MEG 信号基础的神经元电流所产生的磁场比环境磁场小得多,这意味着测量对干扰非常敏感。此外,OPM 的动态范围较低,应在接近零的背景场中运行。因此,扫描仪必须安装在由多层屏蔽材料组成的专用磁屏蔽室(MSR)中。MSR 是一个关键部件,而目前的 OPM 优化屏蔽体积大(>3 米高)、重量大(>10,000 千克)且价格昂贵(多达 5 层材料)。这限制了 OPM-MEG 技术的应用。在这里,我们展示了麦克斯韦滤波技术信号空间分离(SSS)及其时空扩展(tSSS)在 OPM-MEG 数据中的应用,可以分离出在大干扰下测量到的小信号。我们比较了在最先进的 5 层 MSR 中执行运动任务的参与者的幻影记录和 MEG 数据,以及在轻度屏蔽房间中收集的类似数据:对轻度屏蔽房间中记录的数据应用 tSSS 可以准确定位幻影中的偶极子源和大脑中的神经元源。我们的研究结果表明,未来将在更轻、更便宜、更容易定位的 MSR 中部署 OPM-MEG,这将促进该技术的广泛应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wearable magnetoencephalography in a lightly shielded environment.

Wearable magnetoencephalography based on optically pumped magnetometers (OPM-MEG) offers non-invasive and high-fidelity measurement of human brain electrophysiology. The flexibility of OPM-MEG also means it can be deployed in participants of all ages and permits scanning during movement. However, the magnetic fields generated by neuronal currents - which form the basis of the OPM-MEG signal - are much smaller than environmental fields, and this means measurements are highly sensitive to interference. Further, OPMs have a low dynamic range, and should be operated in near-zero background field. Scanners must therefore be housed in specialised magnetically shielded rooms (MSRs), formed from multiple layers of shielding material. The MSR is a critical component, and current OPM-optimised shields are large (>3 m in height), heavy (>10,000 kg) and expensive (with up to 5 layers of material). This restricts the uptake of OPM-MEG technology. Here, we show that the application of the Maxwell filtering techniques signal space separation (SSS) and its spatiotemporal extension (tSSS) to OPM-MEG data can isolate small signals of interest measured in the presence of large interference. We compare phantom recordings and MEG data from a participant performing a motor task in a state-of-the-art 5-layer MSR, to similar data collected in a lightly shielded room: application of tSSS to data recorded in the lightly shielded room allowed accurate localisation of a dipole source in the phantom and neuronal sources in the brain. Our results point to future deployment of OPM-MEG in lighter, cheaper and easier-to-site MSRs which could catalyse widespread adoption of the technology.

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来源期刊
IEEE Transactions on Biomedical Engineering
IEEE Transactions on Biomedical Engineering 工程技术-工程:生物医学
CiteScore
9.40
自引率
4.30%
发文量
880
审稿时长
2.5 months
期刊介绍: IEEE Transactions on Biomedical Engineering contains basic and applied papers dealing with biomedical engineering. Papers range from engineering development in methods and techniques with biomedical applications to experimental and clinical investigations with engineering contributions.
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