Department of Neurology, University of North Carolina, Chapel Hill, NC 27599, USA.
Neuroimage. 2013 Jun;73:113-20. doi: 10.1016/j.neuroimage.2013.01.062. Epub 2013 Feb 4.
High-resolution functional-magnetic-resonance-imaging (fMRI) has been used to study brain functions at increasingly finer scale, but whether fMRI can accurately reflect layer-specific neuronal activities is less well understood. The present study investigated layer-specific cerebral-blood-volume (CBV) fMRI and electrophysiological responses in the rat cortex. CBV fMRI at 40×40 μm in-plane resolution was performed on an 11.7-T scanner. Electrophysiology used a 32-channel electrode array that spanned the entire cortical depth. Graded electrical stimulation was used to study activations in different cortical layers, exploiting the notion that most of the sensory-specific neurons are in layers II-V and most of the nociceptive-specific neurons are in layers V-VI. CBV response was strongest in layer IV of all stimulus amplitudes. Current source density analysis showed strong sink currents at cortical layers IV and VI. Multi-unit activities mainly appeared at layers IV-VI and peaked at layer V. Although our measures showed scaled activation profiles during modulation of stimulus amplitude and failed to detect specific recruitment at layers V and VI during noxious electrical stimuli, there appears to be discordance between CBV fMRI and electrophysiological peak responses, suggesting neurovascular uncoupling at laminar resolution. The technique implemented in the present study offers a means to investigate intracortical neurovascular function in the normal and diseased animal models at laminar resolution.
高分辨率功能磁共振成像(fMRI)已被用于研究越来越精细的脑功能尺度,但 fMRI 是否能准确反映特定于层的神经元活动还不太清楚。本研究调查了大鼠皮层的特定于层的脑血容量(CBV)fMRI 和电生理反应。在 11.7-T 扫描仪上进行了 40×40μm 面内分辨率的 CBV fMRI。电生理学使用了一个 32 通道电极阵列,该阵列跨越整个皮层深度。采用分级电刺激来研究不同皮层层的激活,利用大多数感觉特异性神经元位于 II-V 层,大多数伤害感受特异性神经元位于 V-VI 层的概念。在所有刺激幅度下,CBV 反应在所有刺激幅度下在第四层最强。电流源密度分析显示在皮层 IV 和 VI 层有强烈的汇流电流。多单位活动主要出现在 IV-VI 层,并在 V 层达到峰值。尽管我们的测量结果表明在刺激幅度调制期间表现出缩放的激活谱,并且在有害电刺激期间未能在 V 和 VI 层检测到特定募集,但 CBV fMRI 和电生理峰值反应之间似乎存在不一致,提示在层分辨率下神经血管解耦。本研究中实施的技术提供了一种在正常和患病动物模型中以层分辨率研究皮质内神经血管功能的方法。