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用于新生儿功能神经成像的机械柔性超轻型高密度扩散光学断层扫描系统的设计与验证

Design and validation of a mechanically flexible and ultra-lightweight high-density diffuse optical tomography system for functional neuroimaging of newborns.

作者信息

Zhao Hubin, Frijia Elisabetta M, Vidal Rosas Ernesto, Collins-Jones Liam, Smith Greg, Nixon-Hill Reuben, Powell Samuel, Everdell Nicholas L, Cooper Robert J

机构信息

University College London, DOT-HUB, Department of Medical Physics and Biomedical Engineering, Biomedical Optics Research Laboratory, London, United Kingdom.

University of Glasgow, James Watt School of Engineering, Glasgow, United Kingdom.

出版信息

Neurophotonics. 2021 Jan;8(1):015011. doi: 10.1117/1.NPh.8.1.015011. Epub 2021 Mar 26.

Abstract

Neonates are a highly vulnerable population. The risk of brain injury is greater during the first days and weeks after birth than at any other time of life. Functional neuroimaging that can be performed longitudinally and at the cot-side has the potential to improve our understanding of the evolution of multiple forms of neurological injury over the perinatal period. However, existing technologies make it very difficult to perform repeated and/or long-duration functional neuroimaging experiments at the cot-side. We aimed to create a modular, high-density diffuse optical tomography (HD-DOT) technology specifically for neonatal applications that is ultra-lightweight, low profile and provides high mechanical flexibility. We then sought to validate this technology using an anatomically accurate dynamic phantom. An advanced 10-layer rigid-flexible printed circuit board technology was adopted as the basis for the DOT modules, which allows for a compact module design that also provides the flexibility needed to conform to the curved infant scalp. Two module layouts were implemented: dual-hexagon and triple-hexagon. Using in-built board-to-board connectors, the system can be configured to provide a vast range of possible layouts. Using epoxy resin, thermochromic dyes, and MRI-derived 3D-printed moulds, we constructed an electrically switchable, anatomically accurate dynamic phantom. This phantom was used to quantify the imaging performance of our flexible, modular HD-DOT system. Using one particular module configuration designed to cover the infant sensorimotor system, the device provided 36 source and 48 detector positions, and over 700 viable DOT channels per wavelength, ranging from 10 to over an area of approximately . The total weight of this system is only 70 g. The signal changes from the dynamic phantom, while slow, closely simulated real hemodynamic response functions. Using difference images obtained from the phantom, the measured 3D localization error provided by the system at the depth of the cortex was in the of range 3 to 6 mm, and the lateral image resolution at the depth of the neonatal cortex is estimated to be as good as 10 to 12 mm. The HD-DOT system described is ultra-low weight, low profile, can conform to the infant scalp, and provides excellent imaging performance. It is expected that this device will make functional neuroimaging of the neonatal brain at the cot-side significantly more practical and effective.

摘要

新生儿是一个高度脆弱的群体。出生后的头几天和几周内,脑损伤的风险比生命中的任何其他时期都要高。能够在婴儿床边进行纵向检查的功能性神经成像技术,有可能增进我们对围产期多种神经损伤形式演变的理解。然而,现有技术使得在婴儿床边进行重复和/或长时间的功能性神经成像实验变得非常困难。我们旨在创建一种专门用于新生儿的模块化、高密度扩散光学断层扫描(HD-DOT)技术,该技术超轻、外形低矮且具有高机械灵活性。然后,我们试图使用解剖学上精确的动态模型来验证这项技术。采用先进的10层刚挠性印刷电路板技术作为DOT模块的基础,这允许进行紧凑的模块设计,同时还提供了贴合婴儿弯曲头皮所需的灵活性。实现了两种模块布局:双六边形和三六边形。使用内置的板对板连接器,该系统可以配置成提供大量可能的布局。我们使用环氧树脂、热致变色染料和MRI衍生的3D打印模具,构建了一个电可切换、解剖学精确的动态模型。这个模型用于量化我们灵活的模块化HD-DOT系统的成像性能。使用一种特定的模块配置来覆盖婴儿的感觉运动系统,该设备提供了36个光源和48个探测器位置,每个波长有超过70个可行的DOT通道,范围从10到 ,覆盖面积约为 。该系统的总重量仅为70克。动态模型的信号变化虽然缓慢,但紧密模拟了真实的血流动力学响应函数。使用从模型获得的差异图像,系统在皮层深度处测得的3D定位误差在3至6毫米范围内,新生儿皮层深度处的横向图像分辨率估计高达10至12毫米。所描述的HD-DOT系统超轻、外形低矮,能够贴合婴儿头皮,并提供出色的成像性能。预计该设备将使在婴儿床边对新生儿大脑进行功能性神经成像变得更加切实可行和有效。

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