Melyan Zare, Lancaster Barrie, Wheal Howard V
Neuroscience Group, School of Biological Sciences, University of Southampton, Southampton SO16 7PX, United Kingdom.
J Neurosci. 2004 May 12;24(19):4530-4. doi: 10.1523/JNEUROSCI.5356-03.2004.
Prolonged modification of intrinsic neuronal excitability is gaining prominence as an activity-dependent form of plasticity. Here we describe a potential synaptic initiation mechanism for these changes in which release of the transmitter glutamate acts on kainate receptors to regulate the postspike slow afterhyperpolarization (sAHP). This action of synaptically released glutamate was occluded by previous kainate application. Furthermore, inhibition of glutamate uptake enhanced the effects of synaptic activation. Glutamate-mediated kainate receptor inhibition of sAHP current (I(sAHP)) was blocked by the PKC inhibitor calphostin C, confirming the requirement for a metabotropic signaling cascade. These data describe a new physiological function for glutamate release: activation of metabotropic kainate receptors, which control directly the excitability of pyramidal cells and probably contribute to prolonged excitability changes.
作为一种活动依赖型可塑性形式,内在神经元兴奋性的长期改变正日益受到关注。在此,我们描述了这些变化的一种潜在突触起始机制,即递质谷氨酸的释放作用于海人藻酸受体,以调节峰后慢超极化(sAHP)。先前应用海人藻酸可阻断突触释放谷氨酸的这一作用。此外,抑制谷氨酸摄取可增强突触激活的效应。谷氨酸介导的海人藻酸受体对sAHP电流(I(sAHP))的抑制作用被PKC抑制剂钙泊三醇C阻断,证实了对代谢型信号级联反应的需求。这些数据描述了谷氨酸释放的一种新的生理功能:代谢型海人藻酸受体的激活,其直接控制锥体细胞的兴奋性,可能有助于兴奋性的长期改变。