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Asymmetric Operation of the Locomotor Central Pattern Generator in the Neonatal Mouse Spinal Cord

机译:新生小鼠脊髓运动中心模式发生器的不对称操作

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摘要

The rhythmic voltage oscillations in motor neurons (MNs) during locomotor movements reflect the operation of the pre-MN central pattern generator (CPG) network. Recordings from MNs can thus be used as a method to deduct the organization of CPGs. Here, we use continuous conductance measurements and decomposition methods to quantitatively assess the weighting and phase tuning of synaptic inputs to different flexor and extensor MNs during locomotor-like activity in the isolated neonatal mice lumbar spinal cord preparation. Whole cell recordings were obtained from 22 flexor and 18 extensor MNs in rostral and caudal lumbar segments. In all flexor and the large majority of extensor MNs the extracted excitatory and inhibitory synaptic conductances alternate but with a predominance of inhibitory conductances, most pronounced in extensors. These conductance changes are consistent with a “push–pull” operation of locomotor CPG. The extracted excitatory and inhibitory synaptic conductances varied between 2 and 56% of the mean total conductance. Analysis of the phase tuning of the extracted synaptic conductances in flexor and extensor MNs in the rostral lumbar cord showed that the flexor-phase–related synaptic conductance changes have sharper locomotor-phase tuning than the extensor-phase–related conductances, suggesting a modular organization of premotor CPG networks consisting of reciprocally coupled, but differently composed, flexor and extensor CPG networks. There was a clear difference between phase tuning in rostral and caudal MNs, suggesting a distinct operation of CPG networks in different lumbar segments. The highly asymmetric features were preserved throughout all ranges of locomotor frequencies investigated and with different combinations of locomotor-inducing drugs. The asymmetric nature of CPG operation and phase tuning of the conductance profiles provide important clues to the organization of the rodent locomotor CPG and are compatible with a multilayered and distributed structure of the network.
机译:运动过程中运动神经元(MN)的节律性电压振荡反映了MN前中央模式发生器(CPG)网络的运行情况。因此,来自MN的记录可用作推断CPG组织的方法。在这里,我们使用连续的电导测量和分解方法来定量评估在孤立的新生小鼠腰脊髓制备中的运动样活动期间突触输入到不同屈肌和伸肌MN的权重和相位调整。从22个屈肌和18个伸肌MN的前额和尾椎腰段获得全细胞记录。在所有屈肌和绝大多数伸肌MN中,提取的兴奋性和抑制性突触电导交替出现,但以抑制性电导为主,在伸肌中最为明显。这些电导变化与运动型CPG的“推拉”操作一致。提取的兴奋性和抑制性突触电导在平均总电导的2%到56%之间变化。对延髓屈伸神经元中提取的突触电导进行相位调整的分析表明,与屈伸期相关电导相比,屈伸期相关的突触电导变化具有更强的运动相位调整,表明模块性组织运动前CPG网络的组成,该网络由相互耦合但组成不同的屈肌和伸肌CPG网络组成。在鼻状和尾状MNs的相位调整之间存在明显的差异,表明CPG网络在不同的腰段中的独特操作。在研究的运动频率的所有范围内以及运动诱导药物的不同组合下,高度不对称的特征得以保留。 CPG操作的非对称性质和电导曲线的相位调整为啮齿动物运动CPG的组织提供了重要线索,并且与网络的多层和分布式结构兼容。

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    Endo, Toshiaki; Kiehn, Ole;

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  • 年度 2008
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