Third Surgical Department, First Faculty of Medicine, Charles University, Prague, Czech Republic.
Physiol Res. 2010;59(5):803-810. doi: 10.33549/physiolres.932024.
In a frog neuromuscular preparation of m. sartorius, glutamate had a reversible dose-dependent inhibitory effect on both spontaneous miniature endplate potentials (MEPP) and nerve stimulation-evoked endplate potentials (EPP). The effect of glutamate on MEPP and EPP is caused by the activation of metabotropic glutamate receptors, as it was eliminated by MCPG, an inhibitor of group I metabotropic glutamate receptors. The depression of evoked EPP, but not MEPP frequency was removed by inhibiting the NO production in the muscle by L-NAME and by ODQ that inhibits the soluble NO-sensitive guanylyl cyclase. The glutamate-induced depression of the frequency of spontaneous MEPP is apparently not caused by the stimulation of the NO cascade. The particular glutamate-stimulated NO cascade affecting the evoked EPP can be down-regulated also by adenosine receptors, as the glutamate and adenosine actions are not additive and application of adenosine partially prevents the further decrease of quantal content by glutamate. On the other hand, there is no obvious interaction between the glutamate-mediated inhibition of EPP and inhibitory pathways triggered by carbacholine and ATP. The effect of glutamate on the evoked EPP release might be due to NO-mediated modulation (phosphorylation) of the voltage-dependent Ca2+ channels at the presynaptic release zone that are necessary for evoked quantal release and open during EPP production.
在青蛙的缝匠肌神经肌肉标本中,谷氨酸对自发性微小终板电位 (MEPP) 和神经刺激诱发的终板电位 (EPP) 均具有可逆的、剂量依赖性的抑制作用。谷氨酸对 MEPP 和 EPP 的作用是由代谢型谷氨酸受体的激活引起的,因为它可以被 MCPG 消除,MCPG 是一种 I 组代谢型谷氨酸受体的抑制剂。抑制肌肉中的 NO 产生的 L-NAME 和抑制可溶性 NO 敏感鸟苷酸环化酶的 ODQ 可消除诱发的 EPP ,但不能消除 MEPP 频率的抑制。谷氨酸引起的自发 MEPP 频率降低显然不是由 NO 级联的刺激引起的。可明显影响诱发 EPP 的谷氨酸刺激的特定 NO 级联也可以被腺苷受体下调,因为谷氨酸和腺苷的作用不是累加的,并且腺苷的应用部分防止了谷氨酸进一步降低量子含量。另一方面,谷氨酸介导的 EPP 抑制与由 carbacholine 和 ATP 触发的抑制途径之间没有明显的相互作用。谷氨酸对诱发的 EPP 释放的影响可能是由于 NO 介导的调制(磷酸化)在突触前释放区的电压依赖性 Ca2+通道,这些通道对于诱发的量子释放是必需的,并且在 EPP 产生期间开放。