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Coupling of the cortical hemodynamic response to cortical and thalamic neuronal activity

机译:对皮层和丘脑神经元活动的皮层血流动力学反应的耦合

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Accurate interpretation of functional MRI (fMRI) signals requires knowledge of the relationship between the hemodynamic response and the neuronal activity that underlies it. Here we address the question of coupling between pre- and postsynaptic neuronal activity and the hemodynamic response in rodent somatosensory (Barrel) cortex in response to single-whisker deflection. Using full-field multiwavelength optical imaging of hemoglobin oxygen-ation and electrophysiological recordings of spiking activity and local field potentials, we demonstrate that a point hemodynamic measure is influenced by neuronal activity across multiple cortical columns. We demonstrate that the hemodynamic response is a spatiotemporal convolution of the neuronal activation. Therefore, positive hemodynamic response in one cortical column might be explained by neuronal activity not only in that column but also in the neighboring columns. Thus, attempts at characterizing the neurovascular relationship based on point measurements of elec-trophysiology and hemodynamics may yield inconsistent results, depending on the spatial extent of neuronal activation. The finding that the hemodynamic signal observed at a given location is a function of electrophysiological activity over a broad spatial region helps explain a previously observed increase of local vascular response beyond the saturation of local neuronal activity. We also demonstrate that the oxy- and total-hemoglobin hemodynamic responses can be well approximated by space-time separable functions with an antagonistic center-surround spatial pattern extending over several millimeters. The surround "negative" hemodynamic activity did not correspond to observable changes in neuronal activity. The complex spatial integration of the hemodynamic response should be considered when interpreting fMRI data.
机译:对功能性MRI(fMRI)信号的准确解释需要了解血流动力学响应与其基础的神经元活动之间的关系。在这里,我们解决突触前和突触后神经元活动与啮齿类动物体感(桶)皮层对单晶须偏转的响应之间的血液动力学响应之间的耦合问题。使用血红蛋白氧合的全场多波长光学成像以及尖峰活动和局部场电势的电生理记录,我们证明了点血流动力学测量受跨多个皮质柱的神经元活动的影响。我们证明血液动力学反应是神经元激活的时空卷积。因此,一个皮质柱中的阳性血流动力学反应可能不仅通过该柱中的神经元活动来解释,而且还可以通过相邻列中的神经元活动来解释。因此,根据神经生理学和血液动力学的点测量来表征神经血管关系的尝试可能会产生不一致的结果,具体取决于神经元激活的空间范围。在给定位置观察到的血液动力学信号是在广阔空间区域内电生理活动的函数的发现有助于解释先前观察到的局部血管反应增加,超出了局部神经元活动的饱和度。我们还证明了氧-和总血红蛋白的血流动力学反应可以通过时空可分离的功能很好地近似,其拮抗中心-周围空间模式延伸超过几毫米。周围的“阴性”血液动力学活性与神经元活性的可观察到的变化不对应。解释fMRI数据时应考虑血液动力学反应的复杂空间积分。

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