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Presynaptic inhibition preferentially reduces the NMDA receptor-mediated component of transmission in rat midbrain dopamine neurons

机译:突触前抑制优先降低NMDA受体介导的大鼠中脑多巴胺神经元传递的成分

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摘要

class="enumerated" style="list-style-type:decimal">We used patch pipettes to record whole-cell currents from single dopamine neurons in slices of rat midbrain. Pharmacological methods were used to isolate EPSCs evoked by focal electrical stimulation.Baclofen was significantly more potent for inhibiting NMDA receptor-mediated EPSCs (IC50=0.24 μM) compared with inhibition of EPSCs mediated by AMPA receptors (IC50=1.72 μM). The increased potency of baclofen for inhibiting the NMDA component persisted in superfusate that contained zero Mg2+ and when postsynaptic K+ conductances were reduced by Cs+ and QX-314. Effects of baclofen on EPSCs were blocked by the GABAB receptor antagonist CGP-35348.Adenosine was 20 fold more potent for reducing the NMDA component of transmission (IC50=31 μM) compared with inhibition of AMPA receptor-mediated EPSCs (IC50=654 μM). Effects of adenosine on EPSCs were blocked by the A1 receptor antagonist DPCPX.Both baclofen and adenosine significantly increased the ratio of EPSCs in paired-pulse studies, suggesting presynaptic sites of action. Although adenosine (1 mM) did not reduce currents evoked by exogenous NMDA (10 μM), baclofen (1 μM) reduced NMDA currents by 29%. Neither baclofen nor adenosine altered currents evoked by exogenous AMPA (1 μM).We conclude that adenosine acts at presynaptic A1 receptors to cause a preferential reduction in the NMDA component of synaptic transmission. In contrast, baclofen preferentially reduces NMDA EPSCs by acting at both pre- and postsynaptic GABAB receptors. By regulating NMDA receptor function, A1 and GABAB receptors may play important roles in regulating the excitability of dopamine neurons.
机译:class =“ enumerated” style =“ list-style-type:decimal”> <!-list-behavior =枚举前缀-word = mark-type = decimal max-label-size = 0-> 我们使用移液管记录大鼠中脑切片中单个多巴胺神经元的全细胞电流。用药理学方法分离了局灶性电刺激诱发的EPSC。 与AMPA受体介导的EPSC抑制作用相比(IC50 = 1.72μm)。巴氯芬抑制NMDA成分的能力增强持续存在于Mg 2 + 为零的超融合液中,而当Cs + + 电导时>和QX-314。 GABAB受体拮抗剂CGP-35348阻断了巴氯芬对EPSC的作用。 腺苷与AMPA受体介导的抑制作用相比,对降低NMDA传播组分(IC50 =31μm)的作用强20倍。 EPSC(IC50 = 654 M)。腺苷对EPSC的作用被A1受体拮抗剂DPCPX阻断。 在配对脉冲研究中,巴氯芬和腺苷都显着增加了EPSC的比例,表明突触前的作用部位。尽管腺苷(1μmM)不能降低外源NMDA(10μm)引起的电流,但巴氯芬(1μmM)可以降低NMDA电流29%。巴氯芬和腺苷都不能改变外源性AMPA(1μM)引起的电流。 我们得出结论,腺苷作用于突触前A1受体,导致突触传递的NMDA成分优先降低。相反,巴氯芬通过同时作用于突触前和突触后GABA B受体,优先降低NMDA EPSC。通过调节NMDA受体的功能,A1和GABAB受体可能在调节多巴胺神经元的兴奋性中起重要作用。

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