Gaglianese Anna, Vansteensel Mariska J, Harvey Ben M, Dumoulin Serge O, Petridou Natalia, Ramsey Nick F
Department of Neurosurgery and Neurology, Brain Center Rudolf Magnus, University Medical Center Utrecht, Utrecht, The Netherlands; Department of Radiology, University Medical Center Utrecht, Utrecht, The Netherlands.
Department of Neurosurgery and Neurology, Brain Center Rudolf Magnus, University Medical Center Utrecht, Utrecht, The Netherlands.
Neuroimage. 2017 Jul 15;155:480-489. doi: 10.1016/j.neuroimage.2017.04.007. Epub 2017 Apr 5.
Changes in brain neuronal activity are reflected by hemodynamic responses mapped through Blood Oxygenation Level Dependent (BOLD) functional magnetic resonance imaging (fMRI), a primary tool to measure brain functioning non-invasively. However, the exact relationship between hemodynamics and neuronal function is still a matter of debate. Here, we combine 3T BOLD fMRI and High Frequency Band (HFB) electrocorticography (ECoG) signals to investigate the relationship between neuronal activity and hemodynamic responses in the human Middle Temporal complex (hMT+), a higher order brain area involved in visual motion processing. We modulated the ECoG HFB and fMRI BOLD responses with a visual stimulus moving at different temporal frequencies, and compared measured BOLD responses to estimated BOLD responses that were predicted from the temporal profile of the HFB power change. We show that BOLD responses under an electrode over hMT+ can be well predicted not only be the strength of the neuronal response but also by the temporal profile of the HFB responses recorded by this electrode. Our results point to a linear relationship between BOLD and neuronal activity in hMT+, extending previous findings on primary cortex to higher order cortex.
大脑神经元活动的变化通过基于血氧水平依赖(BOLD)的功能磁共振成像(fMRI)所绘制的血液动力学反应得以反映,fMRI是一种用于非侵入性测量大脑功能的主要工具。然而,血液动力学与神经元功能之间的确切关系仍是一个有争议的问题。在此,我们结合3T BOLD fMRI和高频带(HFB)皮层脑电图(ECoG)信号,以研究人类颞中复合体(hMT+)中神经元活动与血液动力学反应之间的关系,hMT+是一个参与视觉运动处理的高级脑区。我们用在不同时间频率下移动的视觉刺激来调制ECoG HFB和fMRI BOLD反应,并将测得的BOLD反应与根据HFB功率变化的时间轮廓预测的估计BOLD反应进行比较。我们发现,hMT+上方电极下的BOLD反应不仅可以通过神经元反应的强度很好地预测,还可以通过该电极记录的HFB反应的时间轮廓来预测。我们的结果表明hMT+中BOLD与神经元活动之间存在线性关系,将先前关于初级皮层的研究结果扩展到了高级皮层。