Moreno Andrea, Jego Pierrick, de la Cruz Feliberto, Canals Santiago
Instituto de Neurociencias, Consejo Superior de Investigaciones Científicas, Universidad Miguel Hernández San Juan de Alicante, Spain.
Front Neuroenergetics. 2013 Mar 28;5:3. doi: 10.3389/fnene.2013.00003. eCollection 2013.
Complete understanding of the mechanisms that coordinate work and energy supply of the brain, the so called neurovascular coupling, is fundamental to interpreting brain energetics and their influence on neuronal coding strategies, but also to interpreting signals obtained from brain imaging techniques such as functional magnetic resonance imaging. Interactions between neuronal activity and cerebral blood flow regulation are largely compartmentalized. First, there exists a functional compartmentalization in which glutamatergic peri-synaptic activity and its electrophysiological events occur in close proximity to vascular responses. Second, the metabolic processes that fuel peri-synaptic activity are partially segregated between glycolytic and oxidative compartments. Finally, there is cellular segregation between astrocytic and neuronal compartments, which has potentially important implications on neurovascular coupling. Experimental data is progressively showing a tight interaction between the products of energy consumption and neurotransmission-driven signaling molecules that regulate blood flow. Here, we review some of these issues in light of recent findings with special attention to the neuron-glia interplay on the generation of neuroimaging signals.
全面理解协调大脑工作和能量供应的机制,即所谓的神经血管耦合,对于解释大脑能量学及其对神经元编码策略的影响至关重要,同时对于解释从诸如功能磁共振成像等脑成像技术获得的信号也至关重要。神经元活动与脑血流调节之间的相互作用在很大程度上是分区进行的。首先,存在一种功能分区,其中谷氨酸能突触周围活动及其电生理事件发生在与血管反应紧密相邻的位置。其次,为突触周围活动提供能量的代谢过程在糖酵解和氧化区室之间部分分离。最后,星形胶质细胞和神经元区室之间存在细胞分隔,这对神经血管耦合具有潜在的重要意义。实验数据逐渐显示出能量消耗产物与调节血流的神经传递驱动信号分子之间存在紧密的相互作用。在此,我们根据最近的研究结果对其中一些问题进行综述,特别关注神经成像信号产生过程中神经元与神经胶质细胞的相互作用。