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第5层新皮质锥体神经元基因鉴定亚型的电生理特性:钙离子依赖性及去甲肾上腺素的差异调节

Electrophysiological properties of genetically identified subtypes of layer 5 neocortical pyramidal neurons: Ca²⁺ dependence and differential modulation by norepinephrine.

作者信息

Guan Dongxu, Armstrong William E, Foehring Robert C

机构信息

Department of Anatomy and Neurobiology, University of Tennessee Health Science Center, Memphis, Tennessee.

Department of Anatomy and Neurobiology, University of Tennessee Health Science Center, Memphis, Tennessee

出版信息

J Neurophysiol. 2015 Apr 1;113(7):2014-32. doi: 10.1152/jn.00524.2014. Epub 2015 Jan 7.

Abstract

We studied neocortical pyramidal neurons from two lines of bacterial artificial chromosome mice (etv1 and glt; Gene Expression Nervous System Atlas: GENSAT project), each of which expresses enhanced green fluorescent protein (EGFP) in a different subpopulation of layer 5 pyramidal neurons. In barrel cortex, etv1 and glt pyramidal cells were previously reported to differ in terms of their laminar distribution, morphology, thalamic inputs, cellular targets, and receptive field size. In this study, we measured the laminar distribution of etv1 and glt cells. On average, glt cells were located more deeply; however, the distributions of etv1 and glt cells extensively overlap in layer 5. To test whether these two cell types differed in electrophysiological properties that influence firing behavior, we prepared acute brain slices from 2-4-wk-old mice, where EGFP-positive cells in somatosensory cortex were identified under epifluorescence and then studied using whole cell current- or voltage-clamp recordings. We studied the details of action potential parameters and repetitive firing, characterized by the larger slow afterhyperpolarizations (AHPs) in etv1 neurons and larger medium AHPs (mAHPS) in glt cells, and compared currents underlying the mAHP and slow AHP (sAHP) in etv1 and glt neurons. Etv1 cells exhibited lower dV/dt for spike polarization and repolarization and reduced direct current (DC) gain (lower f-I slope) for repetitive firing than glt cells. Most importantly, we found that 1) differences in the expression of Ca(2+)-dependent K(+) conductances (small-conductance calcium-activated potassium channels and sAHP channels) determine major functional differences between etv1 and glt cells, and 2) there is differential modulation of etv1 and glt neurons by norepinephrine.

摘要

我们研究了来自两系细菌人工染色体小鼠(etv1和glt;基因表达神经系统图谱:GENSAT项目)的新皮层锥体神经元,每系小鼠在第5层锥体神经元的不同亚群中表达增强型绿色荧光蛋白(EGFP)。在桶状皮层中,先前报道etv1和glt锥体细胞在层状分布、形态、丘脑输入、细胞靶点和感受野大小方面存在差异。在本研究中,我们测量了etv1和glt细胞的层状分布。平均而言,glt细胞位置更深;然而,etv1和glt细胞在第5层的分布广泛重叠。为了测试这两种细胞类型在影响放电行为的电生理特性上是否存在差异,我们从2 - 4周龄小鼠制备急性脑片,在落射荧光下识别体感皮层中的EGFP阳性细胞,然后使用全细胞电流钳或电压钳记录进行研究。我们研究了动作电位参数和重复放电的细节,其特征是etv1神经元中较大的慢后超极化(AHP)和glt细胞中较大的中等AHP(mAHPs),并比较了etv1和glt神经元中mAHP和慢AHP(sAHP)的电流。与glt细胞相比,etv1细胞在动作电位极化和复极化时表现出较低的dV/dt,并且在重复放电时直流(DC)增益降低(f - I斜率较低)。最重要的是,我们发现:1)钙依赖性钾电导(小电导钙激活钾通道和sAHP通道)表达的差异决定了etv1和glt细胞之间的主要功能差异;2)去甲肾上腺素对etv1和glt神经元有不同的调节作用。

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