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Glutamatergic mechanisms for speed control and network operation in the rodent locomotor CpG.在啮齿动物运动 CpG 中,控制速度和网络运作的谷氨酸能机制。
Front Neural Circuits. 2010 Aug 6;4. doi: 10.3389/fncir.2010.00019. eCollection 2010.
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Metabotropic glutamate receptors 1 and 5 differentially regulate bulbar dopaminergic cell function.代谢型谷氨酸受体 1 和 5 对延髓多巴胺能细胞功能的调节作用存在差异。
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Intraspinally mediated state-dependent enhancement of motoneurone excitability during fictive scratch in the adult decerebrate cat.在成年去大脑猫的模拟抓挠过程中,脊髓内介导的运动神经元兴奋性的状态依赖性增强。
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Activation of groups of excitatory neurons in the mammalian spinal cord or hindbrain evokes locomotion.哺乳动物脊髓或后脑中兴奋性神经元群的激活会引起运动。
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Metabotropic glutamate receptors in median preoptic neurons modulate neuronal excitability and glutamatergic and GABAergic inputs from the subfornical organ.中脑视前神经元中的代谢型谷氨酸受体调节神经元兴奋性以及来自穹隆下器官的谷氨酸能和 GABA 能输入。
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A cluster of cholinergic premotor interneurons modulates mouse locomotor activity.一群胆碱能运动前神经元调节小鼠的运动活动。
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Mechanisms of modulation of AMPA-induced Na+-activated K+ current by mGluR1.代谢型谷氨酸受体 1 调制 AMPA 诱导的 Na+-激活的 K+电流的机制。
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I 型代谢型谷氨酸受体的激活调节小鼠与运动相关的运动神经元的输出。

Activation of group I metabotropic glutamate receptors modulates locomotor-related motoneuron output in mice.

机构信息

School of Biology, University of St. Andrews, St. Andrews, Fife, United Kingdom.

出版信息

J Neurophysiol. 2011 May;105(5):2108-20. doi: 10.1152/jn.01037.2010. Epub 2011 Feb 23.

DOI:10.1152/jn.01037.2010
PMID:21346211
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3094177/
Abstract

Fast glutamatergic transmission via ionotropic receptors is critical for the generation of locomotion by spinal motor networks. In addition, glutamate can act via metabotropic glutamate receptors (mGluRs) to modulate the timing of ongoing locomotor activity. In the present study, we investigated whether mGluRs also modulate the intensity of motor output generated by spinal motor networks. Application of the group I mGluR agonist (S)-3,5-dihydroxyphenylglycine (DHPG) reduced the amplitude and increased the frequency of locomotor-related motoneuron output recorded from the lumbar ventral roots of isolated mouse spinal cord preparations. Whole cell patch-clamp recordings of spinal motoneurons revealed multiple mechanisms by which group I mGluRs modulate motoneuron output. Although DHPG depolarized the resting membrane potential and reduced the voltage threshold for action potential generation, the activation of group I mGluRs had a net inhibitory effect on motoneuron output that appeared to reflect the modulation of fast, inactivating Na(+) currents and action potential parameters. In addition, group I mGluR activation decreased the amplitude of locomotor-related excitatory input to motoneurons. Analyses of miniature excitatory postsynaptic currents indicated that mGluRs modulate synaptic drive to motoneurons via both pre- and postsynaptic mechanisms. These data highlight group I mGluRs as a potentially important source of neuromodulation within the spinal cord that, in addition to modulating components of the central pattern generator for locomotion, can modulate the intensity of motoneuron output during motor behavior. Given that group I mGluR activation reduces motoneuron excitability, mGluRs may provide negative feedback control of motoneuron output, particularly during high levels of glutamatergic stimulation.

摘要

快速的离子型谷氨酸能传递对于脊髓运动网络产生运动至关重要。此外,谷氨酸可以通过代谢型谷氨酸受体(mGluRs)来调节持续运动活动的时间。在本研究中,我们研究了 mGluRs 是否也调节脊髓运动网络产生的运动输出强度。应用 I 组 mGluR 激动剂 (S)-3,5-二羟苯甘氨酸 (DHPG) 降低了从分离的小鼠脊髓制备物的腰腹根记录的运动神经元相关运动神经元输出的幅度并增加了频率。脊髓运动神经元的全细胞膜片钳记录揭示了 I 组 mGluRs 调节运动神经元输出的多种机制。虽然 DHPG 使静息膜电位去极化并降低动作电位产生的电压阈值,但 I 组 mGluR 的激活对运动神经元输出具有净抑制作用,这似乎反映了快速失活的 Na(+)电流和动作电位参数的调制。此外,I 组 mGluR 激活降低了运动神经元的运动相关兴奋性输入的幅度。对微小兴奋性突触后电流的分析表明,mGluRs 通过前突触和后突触机制调节运动神经元的突触驱动。这些数据突出了 I 组 mGluRs 作为脊髓内潜在重要的神经调制来源,除了调节运动的中枢模式发生器的组成部分外,还可以调节运动行为期间运动神经元输出的强度。鉴于 I 组 mGluR 激活降低了运动神经元的兴奋性,mGluRs 可能对运动神经元输出提供负反馈控制,特别是在高水平谷氨酸刺激期间。