首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Hierarchical connectivity and connection-specific dynamics in the corticospinal-corticostriatal microcircuit in mouse motor cortex
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Hierarchical connectivity and connection-specific dynamics in the corticospinal-corticostriatal microcircuit in mouse motor cortex

机译:小鼠运动皮层的皮质脊髓皮质皮质口微电路中的层次连通性和特定于连接的动力学

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The generation of purposive movement by mammals involves coordinated activity in the corticospinal and corticostriatal systems, which are involved in different aspects of motor control. In the motor cortex, corticospinal and corticostriatal neurons are closely intermingled, raising the question of whether and how information flows intracortically within and across these two channels. To explore this, we developed an optogenetic technique based on retrograde transfection of neurons with deletion-mutant rabies virus encoding channelrhodopsin-2, and used this in conjunction with retrograde anatomical labeling to stimulate and record from identified projection neurons in mouse motor cortex. We also used paired recordings to measure unitary connections. Both corticospinal and callosally projecting corticostriatal neurons in layer 5B formed within-class (recurrent) connections, with higher connection probability among corticostriatal than among corticospinal neurons. In contrast, across-class connectivity was extraordinarily asymmetric, essentially unidirectional from corticostriatal to corticospinal. Corticostriatal neurons in layer 5A and corticocortical neurons (callosal projection neurons similar to corticostriatal neurons) similarly received a paucity of corticospinal input. Connections involving presynaptic corticostriatal neurons had greater synaptic depression, and those involving postsynaptic corticospinal neurons had faster decaying EPSPs. Consequently, the three connections displayed a diversity of dynamic properties reflecting the different combinations of presynaptic and postsynaptic projection neurons. Collectively, these findings delineate a four-way specialized excitatory microcircuit formed by corticospinal and corticostriatal neurons. The "rectifying" corticostriatal-to-corticospinal connectivity implies a hierarchical organization and functional compartmentalization of corticospinal activity via unidirectional signaling from higher-order (corticostriatal) to lower-order (corticospinal) output neurons.
机译:哺乳动物产生有目的的运动涉及皮质脊髓和皮质口角系统中的协调活动,这涉及运动控制的不同方面。在运动皮层中,皮层脊髓神经和皮层皮质神经元紧密地混合在一起,提出了一个问题,即信息是否以及如何在这两个通道之内和之间通过皮质内流动。为了探索这一点,我们开发了一种光遗传学技术,该技术基于对神经元进行逆向转染,编码缺失的狂犬病病毒编码Channelrhodopsin-2,并将其与逆行解剖标记结合使用,以刺激和记录小鼠运动皮层中确定的投射神经元。我们还使用配对的录音来测量单一连接。皮质脊髓和cor突投射的皮质口神经元在第5B层中均形成类内(复发)连接,皮质口神经之间的连接概率高于皮质脊髓神经元之间。相反,跨类连接是非对称的,从皮质骨到皮质骨基本上是单向的。类似地,第5A层中的皮层神经元和皮层神经元(类似于皮层神经元的call投射神经元)也很少收到皮层脊髓输入。涉及突触前皮层皮质神经元的连接具有更大的突触抑制,而涉及突触后皮层皮质神经元的连接具有更快的EPSP衰减。因此,这三个连接显示出动态特性的多样性,反映了突触前和突触后投射神经元的不同组合。总的来说,这些发现勾勒出了由皮质脊髓神经和皮质口神经神经元形成的四向专用兴奋性微电路。 “矫正”皮质口角到皮质脊髓的连通性意味着通过从高阶(皮质顶角)到低阶(皮质脊髓)输出神经元的单向信号传导,皮质脊髓活动的层次化组织和功能区室化。

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