首页> 美国卫生研究院文献>Frontiers in Neuroscience >A Resilient Non-neuronal Source of the Spatiotemporal Lag Structure Detected by BOLD Signal-Based Blood Flow Tracking
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A Resilient Non-neuronal Source of the Spatiotemporal Lag Structure Detected by BOLD Signal-Based Blood Flow Tracking

机译:通过基于BOLD信号的血流跟踪检测到的时空滞后结构的弹性非神经源

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摘要

Recent evidence has suggested that blood oxygenation level-dependent (BOLD) signals convey information about brain circulation via low frequency oscillation of systemic origin (sLFO) that travels through the vascular structure (“lag mapping”). Prompted by its promising application in both physiology and pathology, we examined this signal component using multiple approaches. A total of 30 healthy volunteers were recruited to perform two reproducibility experiments at 3 Tesla using multiband echo planar imaging. The first experiment investigated the effect of denoising and the second was designed to study the effect of subject behavior on lag mapping. The lag map's intersession test-retest reproducibility and image contrast were both diminished by removal of either the neuronal or the non-neuronal (e.g., cardiac, respiratory) components by independent component analysis-based denoising, suggesting that the neurovascular coupling also comprises a part of the BOLD lag structure. The lag maps were, at the same time, robust against local perfusion increases due to visuomotor task and global changes in perfusion induced by breath-holding at the same level as the intrasession reliability. The lag structure was preserved after time-locked averaging to the visuomotor task and breath-holding events, while any preceding signal changes were canceled out for the visuomotor task, consistent with the passive effect of neurovascular coupling in the venous side of the vasculature. These findings support the current assumption that lag mapping primarily reflects vascular structure despite the presence of sLFO perturbation of neuronal or non-neuronal origin and, thus, emphasize the vascular origin of the lag map, encouraging application of BOLD-based blood flow tracking.
机译:最近的证据表明,血液氧合水平依赖性(BOLD)信号通过在血管结构中传播的系统起源的低频振荡(sLFO)传递有关脑循环的信息(“滞后映射”)。由于其在生理学和病理学中的应用前景广阔,我们使用多种方法研究了该信号成分。总共招募了30名健康志愿者,使用多频带回波平面成像技术在3 Tesla处进行了两个重现性实验。第一个实验研究了去噪的影响,第二个实验旨在研究对象行为对滞后映射的影响。通过基于独立成分分析的去噪去除神经元或非神经元(例如,心脏,呼吸)成分,从而消除了滞后图的闭会期间测试-再测试的可重复性和图像对比度,这表明神经血管耦合也包括一部分大胆的滞后结构。同时,滞后图对于因运动运动任务引起的局部灌注增加和由于屏气而引起的整体灌注变化具有鲁棒性,屏气的保持与会话中的可靠性相同。滞后结构在对粘膜运动任务和屏气事件进行时间锁定平均后得以保留,而在粘膜运动任务中先前的任何信号变化都被抵消,这与脉管系统静脉侧神经血管耦合的被动作用相一致。这些发现支持当前的假设,即尽管存在sLFO扰动神经元或非神经元起源,但滞后图谱仍主要反映了血管结构,因此强调了滞后图谱的血管起源,从而鼓励基于BOLD的血流追踪的应用。

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