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用于监测自由活动啮齿动物脑氧饱和度的光纤光度法。

Fiber photometry for monitoring cerebral oxygen saturation in freely-moving rodents.

作者信息

Yu Linhui, Thurston Elizabeth M S, Hashem Mada, Dunn Jeff F, Whelan Patrick J, Murari Kartikeya

机构信息

University of Calgary, Schulich School of Engineering, Electrical and Computer Engineering, Calgary, Canada.

University of Calgary, Hotchkiss Brain Institute, Calgary, Canada.

出版信息

Biomed Opt Express. 2020 Jun 4;11(7):3491-3506. doi: 10.1364/BOE.393295. eCollection 2020 Jul 1.

Abstract

Hemodynamic parameters, such as tissue oxygen saturation and blood volume fraction, are important markers of brain physiology. They are also widely used surrogate markers of electrophysiological activity. Here, we present a single fiber spectroscopic (SFS) system for monitoring cerebral oxygen saturation in localized, non-line-of-sight brain regions in freely-moving rodents. We adapted the implantation ferrule and patch cable design from commercialized optogenetics and fiber photometry systems, enabling stereotaxic fiber implantation, longitudinal tissue access and measurement from freely-moving animals. The optical system delivers and collects light from the brain through a 200 m-core-diameter, 0.39NA multimode fiber. We robustly measured oxygen saturation from phantoms with different optical properties mimicking brain tissue. In mice, we demonstrated, for the first time, measurements of oxygen saturation from a highly-localized, targeted brain region over 31 days and continuous measurements from a freely-moving animal for over an hour. These results suggest that single fiber spectroscopy has enormous potential for functional brain monitoring and investigating neurovascular coupling in freely-moving animals. In addition, this technique can potentially be combined with fiber photometry systems to correct for hemodynamic artifacts in the fluorescence detection.

摘要

血流动力学参数,如组织氧饱和度和血容量分数,是脑生理学的重要指标。它们也是广泛使用的电生理活动替代指标。在此,我们展示了一种单纤维光谱(SFS)系统,用于监测自由活动啮齿动物局部非直视脑区的脑氧饱和度。我们采用了商业化光遗传学和纤维光度测量系统的植入套管和转接电缆设计,实现了立体定位纤维植入、纵向组织接入以及对自由活动动物的测量。光学系统通过一根芯径为200μm、数值孔径为0.39的多模光纤传输和收集来自大脑的光。我们从具有模拟脑组织不同光学特性的模型中可靠地测量了氧饱和度。在小鼠中,我们首次展示了在31天内对高度局部化的目标脑区的氧饱和度测量,以及对自由活动动物长达一个多小时的连续测量。这些结果表明,单纤维光谱在自由活动动物的脑功能监测和研究神经血管耦合方面具有巨大潜力。此外,该技术有可能与纤维光度测量系统相结合,以校正荧光检测中的血流动力学伪影。

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