Using respiratory challenges to modulate CSF movement across different physiological pathways: An fMRI study

V. V. Nair, Tyler C. Diorio, Qiuting Wen, Vitaliy L. Rayz, Yunjie Tong
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Abstract

Abstract With growing evidence signifying the impact of cerebrospinal fluid (CSF) flow in facilitating waste clearance from the brain and potential pathophysiological links to neurodegenerative disorders, it is of vital importance to develop effective methods to modulate CSF flow in the brain. Here, we attempt this by means of simple commonly used respiratory challenges—paced breathing and breath holding. Functional Magnetic Resonance Imaging scans of the brain and neck respectively were used to record the craniad and caudad CSF movements at the fourth ventricle from eight healthy volunteers during paced breathing and breath holding. Further, we utilized a novel approach for the first time to combine these separately acquired unidirectional CSF movement signals to compare the CSF flow in both directions (in the fourth ventricle) with the respiratory stimuli as a physiological control. Our results demonstrate that these respiratory challenges enhance the magnitude as well as control the direction of CSF movement in the fourth ventricle. They also reveal the capability of blood CO2 concentration changes (induced by respiratory challenges) in the low-frequency range to bring about these CSF movement modulations. Finally, we also successfully report our novel approach where we use these breathing challenges as a unique control condition to detect the small net CSF flows from independently captured unidirectional signals.
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利用呼吸挑战来调节 CSF 在不同生理途径中的运动:一项 fMRI 研究
摘要 越来越多的证据表明,脑脊液(CSF)流动在促进脑内废物清除方面的影响以及与神经退行性疾病的潜在病理生理学联系,因此开发有效的方法来调节脑脊液流动至关重要。在这里,我们尝试通过简单常用的呼吸挑战--有节奏的呼吸和屏气--来实现这一目标。我们利用大脑和颈部的功能磁共振成像扫描,分别记录了八名健康志愿者在有节奏呼吸和屏气时第四脑室颅侧和尾侧 CSF 的运动情况。此外,我们首次采用了一种新颖的方法,将这些分别获取的单向 CSF 运动信号结合起来,在呼吸刺激作为生理控制的情况下,比较 CSF 在两个方向(第四脑室)的流动情况。我们的结果表明,这些呼吸挑战增强了第四脑室 CSF 运动的幅度并控制了其方向。这些结果还揭示了低频范围内血液二氧化碳浓度变化(由呼吸挑战诱发)对这些 CSF 运动调节的能力。最后,我们还成功报告了我们的新方法,即利用这些呼吸挑战作为独特的控制条件,从独立捕获的单向信号中检测出微小的 CSF 净流量。
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