首页> 美国卫生研究院文献>Journal of Neurophysiology >Corticospinal-specific HCN expression in mouse motor cortex: Ih-dependent synaptic integration as a candidate microcircuit mechanism involved in motor control
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Corticospinal-specific HCN expression in mouse motor cortex: Ih-dependent synaptic integration as a candidate microcircuit mechanism involved in motor control

机译:小鼠运动皮质中皮质脊髓特异性HCN表达:Ih依赖突触整合作为参与运动控制的候选微电路机制

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摘要

Motor cortex is a key brain center involved in motor control in rodents and other mammals, but specific intracortical mechanisms at the microcircuit level are largely unknown. Neuronal expression of hyperpolarization-activated current (Ih) is cell class specific throughout the nervous system, but in neocortex, where pyramidal neurons are classified in various ways, a systematic pattern of expression has not been identified. We tested whether Ih is differentially expressed among projection classes of pyramidal neurons in mouse motor cortex. Ih expression was high in corticospinal neurons and low in corticostriatal and corticocortical neurons, a pattern mirrored by mRNA levels for HCN1 and Trip8b subunits. Optical mapping experiments showed that Ih attenuated glutamatergic responses evoked across the apical and basal dendritic arbors of corticospinal but not corticostriatal neurons. Due to Ih, corticospinal neurons resonated, with a broad peak at ∼4 Hz, and were selectively modulated by α-adrenergic stimulation. Ih reduced the summation of short trains of artificial excitatory postsynaptic potentials (EPSPs) injected at the soma, and similar effects were observed for short trains of actual EPSPs evoked from layer 2/3 neurons. Ih narrowed the coincidence detection window for EPSPs arriving from separate layer 2/3 inputs, indicating that the dampening effect of Ih extended to spatially disperse inputs. To test the role of corticospinal Ih in transforming EPSPs into action potentials, we transfected layer 2/3 pyramidal neurons with channelrhodopsin-2 and used rapid photostimulation across multiple sites to synaptically drive spiking activity in postsynaptic neurons. Blocking Ih increased layer 2/3-driven spiking in corticospinal but not corticostriatal neurons. Our results imply that Ih-dependent synaptic integration in corticospinal neurons constitutes an intracortical control mechanism, regulating the efficacy with which local activity in motor cortex is transferred to downstream circuits in the spinal cord. We speculate that modulation of Ih in corticospinal neurons could provide a microcircuit-level mechanism involved in translating action planning into action execution.
机译:运动皮层是啮齿动物和其他哺乳动物运动控制中涉及的关键大脑中枢,但是在微电路水平上的特定皮层内机制尚不清楚。超极化激活电流(Ih)的神经元表达在整个神经系统中是特定于细胞类别的,但是在新皮质中,锥体神经元以各种方式分类,尚未确定系统的表达模式。我们测试了Ih是否在小鼠运动皮质的锥体神经元的投射类之间差异表达。 Ih表达在皮质脊髓神经元中高,而在皮质口神经元和皮质皮质神经元中低,这是HCN1和Trip8b亚基的mRNA水平所反映的模式。光学作图实验表明,Ih减弱了皮质脊髓神经元的顶和基端树突状树突引起的谷氨酸能反应,但皮质皮质神经元没有。由于Ih,皮质脊髓神经元发生共振,在〜4 Hz处有一个宽峰,并受到α-肾上腺素能刺激的选择性调节。减少了在体细胞中注射的短时人工兴奋性突触后电位(EPSPs)的总和,对于短时从2/3层神经元诱发的实际EPSPs,也观察到了类似的效果。 Ih缩小了来自单独的第2/3层输入的EPSP的重合检测窗口,表明Ih的阻尼作用扩展到了空间分散的输入。为了测试皮质脊髓Ih在将EPSPs转化为动作电位中的作用,我们用Channelrhodopsin-2转染了2/3层锥体神经元,并在多个位点使用了快速光刺激来突触地驱动突触后神经元的突触活性。阻断1h会增加皮质脊髓神经元中2/3层驱动的突触,但皮质皮质神经元则不会。我们的结果表明,皮质脊髓神经元中Ih依赖性突触整合构成了皮质内控制机制,调节了运动皮层中的局部活性转移到脊髓下游回路的功效。我们推测,皮质脊髓神经元中Ih的调节可以提供将动作计划转化为动作执行的微电路级机制。

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