Mechanisms of activity-dependent increases in cerebral blood flow ('/> Modification of activity-dependent increases of cerebral blood flow by excitatory synaptic activity and spikes in rat cerebellar cortex
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Modification of activity-dependent increases of cerebral blood flow by excitatory synaptic activity and spikes in rat cerebellar cortex

机译:兴奋性突触活动和大鼠小脑皮层的突增对活动依赖性脑血流增加的调节

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class="enumerated" style="list-style-type:decimal">Mechanisms of activity-dependent increases in cerebral blood flow (CBF) were examined in rat cerebellar cortex using the laser Doppler flow technique and extracellular recordings of single unit activity and field potentials.Stimulation of the monosynaptic climbing fibre system evoked long-lasting complex spikes in Purkinje cells, and extracellular field potentials with a characteristic profile that indicated contributions from both passive and active membrane mechanisms. The concomitant CBF increases were reproducible at fairly short intervals, and suggest that both synaptic activity and spikes may contribute to increased CBF.Stimulation of the disynaptic parallel fibre system inhibited the spiking activity in Purkinje cells, while the postsynaptic activity increased as indicated by the simultaneously recorded field potential. Nevertheless, CBF always increased. The inhibition of spike firing activity was partly dependent on GABAergic transmission, but may also relate to the intrinsic membrane properties of Purkinje cells.The CBF increases evoked by parallel or climbing fibre stimulation were highly correlated to the sum of neural activities, i.e. the negativity of field potentials multiplied by the stimulus frequency. This suggests a robust link between extracellular current flow and activity-dependent increases in CBF.AMPA receptor blockade attenuated CBF increases and field potential amplitudes, while NMDA receptor antagonism did not. This is consistent with the idea that the CBF responses are of neuronal origin.This study has shown that activity-dependent CBF increases evoked by stimulation of cerebellar parallel fibres are dependent on synaptic excitation, including excitation of inhibitory interneurones, whereas the net activity of Purkinje cells, the principal neurones of the cerebellar cortex, is unimportant for the vascular response. For the climbing fibre system, not only synaptic activity but also the generation of complex spikes from Purkinje cells contribute to the increases in CBF. The strong correlation between CBF and field potential amplitudes suggests that extracellular ion fluxes contribute to the coupling of brain activity to blood flow.
机译:class =“ enumerated” style =“ list-style-type:decimal”> <!-list-behavior =枚举前缀-word = mark-type = decimal max-label-size = 0-> 使用激光多普勒血流技术和单细胞活性和场电位的细胞外记录,研究了大鼠小脑皮质中脑血流量(CBF)的活动依赖性增加机制。 刺激单突触攀爬纤维系统在浦肯野细胞中引起持久的复杂尖峰,并具有特征性的细胞外场电位,表明来自被动和主动膜机制。伴随的CBF增加可以在相当短的时间间隔内重现,表明突触活性和峰值可能都促进了CBF的升高。 刺激突触平行纤维系统抑制了浦肯野细胞的突增活性,而突触后如同时记录的场势所指示的,活性增加。然而,脑血流量一直在增加。抑制穗发射活性部分取决于GABA能传递,但也可能与浦肯野细胞的固有膜特性有关。 平行或攀爬纤维刺激引起的CBF升高与神经活动,即场电位的负数乘以刺激频率。这表明细胞外电流与CBF的活动依赖性增加之间存在稳固的联系。 AMPA受体阻滞减弱了CBF的增加和场电位振幅,而NMDA受体拮抗作用却没有。 该研究表明,小脑平行纤维刺激引起的活动依赖性脑血流量增加取决于突触兴奋,包括抑制性中间神经元的兴奋。 ,而小脑皮层的主要神经元浦肯野细胞的净活性对于血管反应并不重要。对于攀岩纤维系统,不仅突触活性,而且浦肯野细胞产生复杂的尖峰也有助于CBF的增加。 CBF与场电位振幅之间的强相关性表明细胞外离子通量有助于大脑活动与血流的耦合。

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