首页> 美国卫生研究院文献>The Journal of Neuroscience >NMDA-Dependent Modulation of Hippocampal Kainate Receptors by Calcineurin and Ca2+/Calmodulin-Dependent Protein Kinase
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NMDA-Dependent Modulation of Hippocampal Kainate Receptors by Calcineurin and Ca2+/Calmodulin-Dependent Protein Kinase

机译:钙调神经磷酸酶和钙离子/钙调蛋白依赖性蛋白激酶对海马海藻酸受体的NMDA依赖性调节。

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摘要

Neurotransmitter receptor function can be influenced by the phosphorylation state of the receptor or of associated proteins. Here we show that kainate receptors expressed in cultured hippocampal neurons can be modulated by Ca2+/calmodulin-dependent phosphatase (calcineurin) and Ca2+/calmodulin-dependent kinase (CaMK). Ca2+ influx through NMDA receptor or voltage-sensitive calcium channels resulted in a transient depression of the kainate receptor current. This calcium-induced depression of the kainate receptor current depended on the activation of the phosphatase calcineurin. The amplitude of the kainate receptor currents returned to the baseline level in ∼9 sec (τ = 3.6 sec), and the recovery of the current amplitude depended on CaMK activity. The effect on kainate receptor currents was dependent on the frequency of NMDA receptor activation. Although low-frequency (0.1 Hz) NMDA application induced depression followed by recovery of the kainate receptor currents, higher frequency (1 Hz) NMDA applications induced a more prolonged depression. Kainate receptors have been shown to modulate synaptic transmission by both presynaptic and postsynaptic mechanisms. Our results suggest that synaptic activity mediated by NMDA receptors, or other routes of Ca2+ influx, may, in turn, modulate the function of kainate receptors.
机译:神经递质受体的功能可能受受体或相关蛋白的磷酸化状态影响。在这里,我们显示了在培养的海马神经元中表达的海藻酸酯受体可被Ca 2 + /钙调蛋白依赖性磷酸酶(钙调神经磷酸酶)和Ca 2 + /钙调蛋白依赖性激酶( CaMK)。 Ca 2 + 通过NMDA受体或电压敏感的钙通道流入,导致海藻酸盐受体电流瞬时下降。钙诱导的海因酸酯受体电流的降低取决于磷酸酶钙调磷酸酶的活化。海藻酸盐受体电流的振幅在约9秒(τ= 3.6秒)内恢复到基线水平,电流振幅的恢复取决于CaMK活性。对海藻酸盐受体电流的影响取决于NMDA受体激活的频率。尽管低频(0.1 Hz)NMDA应用引起抑郁症,然后恢复海藻酸盐受体电流,但更高频率(1 Hz)NMDA应用诱导抑郁症更长时间。已显示出海藻酸盐受体通过突触前和突触后机制调节突触传递。我们的研究结果表明,NMDA受体介导的突触活性或Ca 2 + 内流的其他途径可能反过来调节了红藻氨酸受体的功能。

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