Harris Sam, Jones Myles, Zheng Ying, Berwick Jason
Department of Psychology, University of Sheffield Sheffield, UK.
Front Neuroenergetics. 2010 Aug 11;2. doi: 10.3389/fnene.2010.00015. eCollection 2010.
An important constraint on how hemodynamic neuroimaging signals such as fMRI can be interpreted in terms of the underlying evoked activity is an understanding of neurovascular coupling mechanisms that actually generate hemodynamic responses. The predominant view at present is that the hemodynamic response is most correlated with synaptic input and subsequent neural processing rather than spiking output. It is still not clear whether input or processing is more important in the generation of hemodynamics responses. In order to investigate this we measured the hemodynamic and neural responses to electrical whisker pad stimuli in rat whisker barrel somatosensory cortex both before and after the local cortical injections of the GABA(A) agonist muscimol. Muscimol would not be expected to affect the thalamocortical input into the cortex but would inhibit subsequent intra-cortical processing. Pre-muscimol infusion whisker stimuli elicited the expected neural and accompanying hemodynamic responses to that reported previously. Following infusion of muscimol, although the temporal profile of neural responses to each pulse of the stimulus train was similar, the average response was reduced in magnitude by approximately 79% compared to that elicited pre-infusion. The whisker-evoked hemodynamic responses were reduced by a commensurate magnitude suggesting that, although the neurovascular coupling relationships were similar for synaptic input as well as for cortical processing, the magnitude of the overall response is dominated by processing rather than from that produced from the thalamocortical input alone.
关于诸如功能磁共振成像(fMRI)之类的血流动力学神经成像信号如何根据潜在的诱发活动进行解释,一个重要的限制因素是对实际产生血流动力学反应的神经血管耦合机制的理解。目前的主流观点是,血流动力学反应与突触输入及随后的神经处理最为相关,而非与动作电位输出相关。在血流动力学反应的产生过程中,输入还是处理更为重要,目前仍不清楚。为了研究这一点,我们在大鼠胡须桶状体感皮层局部注射γ-氨基丁酸A(GABA(A))激动剂蝇蕈醇之前和之后,测量了对电刺激胡须垫的血流动力学和神经反应。预计蝇蕈醇不会影响丘脑皮质向皮层的输入,但会抑制随后的皮层内处理。注射蝇蕈醇前对胡须的刺激引发了如先前报道的预期神经反应及伴随的血流动力学反应。注射蝇蕈醇后,尽管对刺激序列每个脉冲的神经反应的时间特征相似,但与注射前引发的反应相比,平均反应幅度降低了约79%。胡须诱发的血流动力学反应也相应降低,这表明,尽管突触输入和皮层处理的神经血管耦合关系相似,但总体反应的幅度主要由处理决定,而非仅由丘脑皮质输入产生的反应决定。