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Hemodynamic Traveling Waves in Human Visual Cortex

机译:人体视觉皮层中的血流动力学行波

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Functional MRI (fMRI) experiments rely on precise characterization of the blood oxygen level dependent (BOLD) signal. As the spatial resolution of fMRI reaches the sub-millimeter range, the need for quantitative modelling of spatiotemporal properties of this hemodynamic signal has become pressing. Here, we find that a detailed physiologically-based model of spatiotemporal BOLD responses predicts traveling waves with velocities and spatial ranges in empirically observable ranges. Two measurable parameters, related to physiology, characterize these waves: wave velocity and damping rate. To test these predictions, high-resolution fMRI data are acquired from subjects viewing discrete visual stimuli. Predictions and experiment show strong agreement, in particular confirming BOLD waves propagating for at least 5–10 mm across the cortical surface at speeds of 2–12 mm s-1. These observations enable fundamentally new approaches to fMRI analysis, crucial for fMRI data acquired at high spatial resolution.
机译:功能性MRI(fMRI)实验依赖于血氧水平依赖性(BOLD)信号的精确表征。随着功能磁共振成像的空间分辨率达到亚毫米范围,对该血流动力学信号的时空特性进行定量建模的需求变得迫切。在这里,我们发现时空大胆响应的基于生理的详细模型预测行波具有速度和空间范围的经验可观察范围。与生理相关的两个可测量参数表征了这些波:波速和阻尼率。为了测试这些预测,从观看离散视觉刺激的受试者中获取高分辨率的fMRI数据。预测和实验显示出很强的一致性,尤其是确认BOLD波以2-12 mm s-1的速度在皮质表面传播至少5-10 mm。这些观察从根本上实现了功能磁共振成像分析的新方法,这对于以高空间分辨率采集的功能磁共振成像数据至关重要。

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