一种用于连续测量脑实质阻力的无线设备跟踪人类的淋巴功能

IF 26.8 1区 医学 Q1 ENGINEERING, BIOMEDICAL
Paul Dagum, Laurent Giovangrandi, Swati Rane Levendovszky, Jake J. Winebaum, Tarandeep Singh, Yeilim Cho, Robert M. Kaplan, Michael S. Jaffee, Miranda M. Lim, Carla Vandeweerd, Jeffrey J. Iliff
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引用次数: 0

摘要

动物模型中的淋巴功能支持清除与阿尔茨海默病和帕金森病等神经退行性疾病有关的脑蛋白。由于现有技术的侵入性、定制性和时间分辨力差,对人脑淋巴功能的测量一直难以捉摸。在这里,我们描述了一种非侵入性的多模态设备,用于在两个独立的临床验证研究中使用重复的电阻抗谱测量来连续测量人类脑实质阻力的睡眠活动变化。设备测量成功地平行了睡眠相关的调节淋巴功能的细胞外体积的变化,并预测了通过对比增强MRI测量的淋巴溶质交换。我们重复了临床前研究结果,显示淋巴功能随着睡眠脑电图(EEG) δ功率的增加而增加,而随着睡眠脑电图(EEG) β功率和心率的增加而下降。目前的研究装置允许在自然环境下对实质耐药进行连续和时间解决的评估,以确定类淋巴损伤对阿尔茨海默病风险和进展的贡献,并使调节人类类淋巴功能的靶向参与研究成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A wireless device for continuous measurement of brain parenchymal resistance tracks glymphatic function in humans

A wireless device for continuous measurement of brain parenchymal resistance tracks glymphatic function in humans

Glymphatic function in animal models supports the clearance of brain proteins whose mis-aggregation is implicated in neurodegenerative conditions including Alzheimer’s and Parkinson’s disease. The measurement of glymphatic function in the human brain has been elusive due to invasive, bespoke and poorly time-resolved existing technologies. Here we describe a non-invasive multimodal device for the continuous measurement of sleep-active changes in parenchymal resistance in humans using repeated electrical impedance spectroscopy measurements in two separate clinical validation studies. Device measurements successfully paralleled sleep-associated changes in extracellular volume that regulate glymphatic function and predicted glymphatic solute exchange measured by contrast-enhanced MRI. We replicate preclinical findings showing that glymphatic function is increased with increasing sleep electroencephalogram (EEG) delta power and is decreased with increasing sleep EEG beta power and heart rate. The present investigational device permits the continuous and time-resolved assessment of parenchymal resistance in naturalistic settings necessary to determine the contribution of glymphatic impairment to risk and progression of Alzheimer’s disease and to enable target-engagement studies that modulate glymphatic function in humans.

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来源期刊
Nature Biomedical Engineering
Nature Biomedical Engineering Medicine-Medicine (miscellaneous)
CiteScore
45.30
自引率
1.10%
发文量
138
期刊介绍: Nature Biomedical Engineering is an online-only monthly journal that was launched in January 2017. It aims to publish original research, reviews, and commentary focusing on applied biomedicine and health technology. The journal targets a diverse audience, including life scientists who are involved in developing experimental or computational systems and methods to enhance our understanding of human physiology. It also covers biomedical researchers and engineers who are engaged in designing or optimizing therapies, assays, devices, or procedures for diagnosing or treating diseases. Additionally, clinicians, who make use of research outputs to evaluate patient health or administer therapy in various clinical settings and healthcare contexts, are also part of the target audience.
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