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NMDA receptors in layer 4 spiny stellate cells of the mouse barrel cortex contain the NR2C subunit

机译:小鼠桶皮层的第4层多刺星状细胞中的NmDa受体含有NR2C亚基

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摘要

In layer 4 of the somatosensory cortex, the glutamatergic synapses that interconnect spiny stellate (SpS) neurons, which are the major targets of thalamocortical input, differ from most other neocortical excitatory synapses in that they have an extremely large NMDA receptor (NMDAR)-mediated component that is relatively insensitive to voltage-dependent Mg2+ blockade. We now report that this unique feature of the NMDA response reflects the distinctive subunit composition of the underlying receptors. We studied NMDAR-mediated miniature EPSCs (mEPSCs) and NMDA channel currents in tangential brain slices of mouse barrel cortex, which exclusively contain layer 4. NMDAR-mediated mEPSCs in SpS neurons were prominent at negative membrane potentials, and NMDA channels in outside-out patches excised from the somata of the same neurons had relatively low conductance and reduced susceptibility to Mg2+ block. These are characteristic features of heteromeric NMDAR assemblies that contain the NR2C subunit. Some patches also contained NMDA channels with higher conductance and a greater sensitivity to Mg2+. In the neocortex of transgenic mice in which a beta-galactosidase (lacZ) indicator gene was controlled by the NR2C promoter, the lacZ indicator was densely expressed in layer 4. In current-clamp recordings, blockade of NMDARs caused hyperpolarization and an increase in apparent input resistance. Our data demonstrate that the SpS neurons of layer 4 functionally express NR2C subunits; this is the likely explanation for their ability to generate large NMDAR-mediated EPSPs that are effective at resting potential, without previous depolarization.
机译:在体感皮层的第4层中,互连棘状星状(SpS)神经元(即丘脑皮质输入的主要靶标)的谷氨酸能突触与大多数其他新皮层兴奋性突触不同,因为它们具有极大的NMDA受体(NMDAR)介导的对电压依赖性Mg2 +封锁相对不敏感的组件。我们现在报告,NMDA反应的这一独特特征反映了基础受体的独特亚基组成。我们研究了仅包含第4层的小鼠桶状皮质切向脑切片中NMDAR介导的微型EPSC(mEPSCs)和NMDA通道电流。SpS神经元中NMDAR介导的mEPSC在膜负电位上突出,而NMDA通道在外而外从同一神经元的躯体上切除的贴片具有相对较低的电导率,并降低了对Mg2 +阻滞的敏感性。这些是包含NR2C亚基的异聚NMDAR组件的特征。一些补丁还包含具有更高电导率和对Mg2 +的更高敏感性的NMDA通道。在由NR2C启动子控制β-半乳糖苷酶(lacZ)指示剂基因的转基因小鼠的新皮层中,lacZ指示剂在第4层中密集表达。在电流钳记录中,NMDAR的阻滞导致超极化和表观增加。输入电阻。我们的数据表明,第4层的SpS神经元在功能上表达NR2C亚基。这可能是它们产生大型NMDAR介导的EPSP的能力的可能解释,该EPSP可以有效地抑制静息电位,而无需事先去极化。

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