首页> 外文期刊>The Journal of Physiology >Dopamine D1 receptor activation regulates sodium channel-dependent EPSP amplification in rat prefrontal cortex pyramidal neurons.
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Dopamine D1 receptor activation regulates sodium channel-dependent EPSP amplification in rat prefrontal cortex pyramidal neurons.

机译:多巴胺D1受体激活调节大鼠前额叶皮层锥体神经元中钠通道依赖性的EPSP扩增。

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Dopamine (DA) effects on prefrontal cortex (PFC) neurons are essential for the cognitive functions mediated by this cortical area. However, the cellular mechanisms of DA neuromodulation in neocortex are not well understood. We characterized the effects of D1-type DA receptor (D1R) activation on the amplification (increase in duration and area) of excitatory postsynaptic potentials (EPSPs) at depolarized potentials, in layer 5 pyramidal neurons from rat PFC. Simulated EPSPs (sEPSPs) were elicited by current injection, to determine the effects of D1R activation independent of modulation of transmitter release or glutamate receptor currents. Application of the D1R agonist SKF81297 attenuated sEPSP amplification at depolarized potentials in a concentration-dependent manner. The SKF81297 effects were inhibited by the D1R antagonist SCH23390. The voltage-gated Na+ channel blocker tetrodotoxin (TTX) abolished the effects of SKF81297 on sEPSP amplification, suggesting that Na+ currents are necessary for the D1R effect. Furthermore, blockade of 4-AP- and TEA-sensitive K+ channels in the presence of TTX significantly increased EPSP amplification, arguing against the possibility that SKF81297 up-regulates currents that attenuate sEPSP amplification. SKF81297 application attenuated the subthreshold response to injection of depolarizing current ramps, in a manner consistent with a decrease in the persistent Na+ current. In addition, D1R activation decreased the effectiveness of temporal EPSP summation during 20 Hz sEPSP trains, selectively at depolarized membrane potentials. Therefore, the effects of D1R activation on Na+ channel-dependent EPSP amplification may regulate the impact of coincidence detection versus temporal integration mechanisms in PFC pyramidal neurons.
机译:多巴胺(DA)对前额叶皮层(PFC)神经元的作用对于此皮质区域介导的认知功能至关重要。然而,对新皮层中DA神经调节的细胞机制还没有很好的了解。我们表征了在大鼠PFC的第5层锥体神经元中,D1型DA受体(D1R)激活对去极化电位下的兴奋性突触后电位(EPSPs)的扩增(持续时间和面积增加)的影响。通过电流注入引发模拟的EPSP(sEPSPs),以确定D1R激活的影响,而与调节递质释放或谷氨酸受体电流无关。 D1R激动剂SKF81297的应用在去极化电位下以浓度依赖性方式减弱了sEPSP扩增。 D1R拮抗剂SCH23390抑制SKF81297的作用。电压门控的Na +通道阻断剂河豚毒素(TTX)消除了SKF81297对sEPSP扩增的影响,表明Na +电流对于D1R效应是必需的。此外,在存在TTX的情况下对4-AP-和TEA敏感的K +通道的阻滞显着增加了EPSP的放大,这与SKF81297上调减弱sEPSP放大的电流的可能性有关。 SKF81297的应用以与持久性Na +电流减少一致的方式减弱了对去极化电流斜坡注入的亚阈值响应。此外,D1R激活降低了在20 Hz sEPSP序列期间选择性地在去极化膜电势下瞬时EPSP求和的有效性。因此,D1R激活对Na +通道依赖性EPSP扩增的影响可能会调节巧合检测与PFC锥体神经元中时间整合机制的影响。

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