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托吡酯对海人藻酸诱导的钙电流的调节作用与通道磷酸化水平呈负相关。

Topiramate modulation of kainate-induced calcium currents is inversely related to channel phosphorylation level.

作者信息

Angehagen Mikael, Ben-Menachem Elinor, Shank Richard, Rönnbäck Lars, Hansson Elisabeth

机构信息

Institute of Clinical Neuroscience, Göteborg University, Göteborg, Sweden.

出版信息

J Neurochem. 2004 Jan;88(2):320-5. doi: 10.1046/j.1471-4159.2003.02186.x.

Abstract

Topiramate (TPM) is a structurally novel broad-spectrum anticonvulsant known to modulate the activity of several ligand- and voltage-gated ion channels in neurons. These include an inhibitory effect on the AMPA and kainate subtypes of glutamate receptors, mixed modulatory effects (usually positive) on some types of GABAA receptors, negative modulatory effects on some types of voltage-gated Na+ and Ca2+ channels, and a positive modulatory effect on at least one type of K+ channel. The nature of these effects at the molecular level has not been established, but two previous studies have implicated the phosphorylation state of these receptor/channel complexes as an influencing factor in the activity of TPM. Here, we report that the ability of TPM to inhibit a kainate-induced accumulation of free Ca2+ in cultured neurons from rat cerebral cortex is inversely related to the level of cAMP-dependent protein kinase (cAPK) mediated phosphorylation of kainate-activated receptors/channels. Specifically, when cell cultures were pre-treated with forskolin or dibutyryl cAMP, indirect activators of cAPK, the activity of TPM was abolished, whereas when the cells were pre-treated with H89, an inhibitor of cAPK, the relative activity of TPM was enhanced. The results of this study support the hypothesis that TPM binds to phosphorylation sites on AMPA and kainate receptors, but only in the dephosphorylated state and thereby exerts an allosteric modulatory effect on channel conductance.

摘要

托吡酯(TPM)是一种结构新颖的广谱抗惊厥药,已知可调节神经元中几种配体门控和电压门控离子通道的活性。这些作用包括对谷氨酸受体的AMPA和海人藻酸酯亚型具有抑制作用,对某些类型的GABAA受体具有混合调节作用(通常为正向),对某些类型的电压门控Na+和Ca2+通道具有负向调节作用,以及对至少一种类型的K+通道具有正向调节作用。这些作用在分子水平上的本质尚未明确,但之前的两项研究表明,这些受体/通道复合物的磷酸化状态是影响TPM活性的一个因素。在此,我们报告TPM抑制海人藻酸诱导的大鼠大脑皮质培养神经元中游离Ca2+积累的能力与cAMP依赖性蛋白激酶(cAPK)介导的海人藻酸激活的受体/通道磷酸化水平呈负相关。具体而言,当细胞培养物用福斯可林或二丁酰cAMP(cAPK的间接激活剂)预处理时,TPM的活性被消除,而当细胞用cAPK抑制剂H89预处理时,TPM的相对活性增强。本研究结果支持以下假说:TPM与AMPA和海人藻酸受体上的磷酸化位点结合,但仅在去磷酸化状态下结合,从而对通道电导发挥变构调节作用。

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