Suppr超能文献

文昌鱼中单个鉴定的网状脊髓神经元的脊髓运动传入。

Spinal locomotor inputs to individually identified reticulospinal neurons in the lamprey.

机构信息

Dept. of Biological Sciences, 530 N. 15th St., Marquette Univ., Milwaukee, WI 53233, USA.

出版信息

J Neurophysiol. 2011 Nov;106(5):2346-57. doi: 10.1152/jn.01100.2010. Epub 2011 Aug 10.

Abstract

Locomotor feedback signals from the spinal cord to descending brain stem neurons were examined in the lamprey using the uniquely identifiable reticulospinal neurons, the Müller and Mauthner cells. The same identified reticulospinal neurons were recorded in several preparations, under reduced conditions, to address whether an identified reticulospinal neuron shows similar locomotor-related oscillation timing from animal to animal and whether these timing signals can differ significantly from other identified reticulospinal neurons. Intracellular recordings of membrane potential in identified neurons were made in an isolated brain stem-spinal cord preparation with a high-divalent cation solution on the brain stem to suppress indirect neural pathways and with D-glutamate perfusion to the spinal cord to induce fictive swimming. Under these conditions, the identified reticulospinal neurons show significant clustering of the timings of the peaks and troughs of their locomotor-related oscillations. Whereas most identified neurons oscillated in phase with locomotor bursting in ipsilateral ventral roots of the rostral spinal cord, the B1 Müller cell, which has an ipsilateral descending axon, and the Mauthner cell, which has a contralateral descending axon, both had oscillation peaks that were out of phase with the ipsilateral ventral roots. The differences in oscillation timing appear to be due to differences in synaptic input sources as shown by cross-correlations of fast synaptic activity in pairs of Müller cells. Since the main source of the locomotor input under these experimental conditions is ascending neurons in the spinal cord, these experiments suggest that individual reticulospinal neurons can receive locomotor signals from different subsets of these ascending neurons. This result may indicate that the locomotor feedback signals from the spinal locomotor networks are matched in some way to the motor output functions of the individual reticulospinal neurons, which include command signals for turning and for compensatory movements.

摘要

利用具有独特可识别性的网状脊髓神经元(Müller 细胞和 Mauthner 细胞),我们在七鳃鳗中研究了来自脊髓的运动反馈信号向下行脑干神经元的传递。在几个减少条件的准备中记录相同的已识别网状脊髓神经元,以解决一个已识别的网状脊髓神经元是否从动物到动物显示出类似的与运动相关的振荡定时,以及这些定时信号是否可以与其他已识别的网状脊髓神经元有显著差异。在具有高二价阳离子溶液的孤立脑干-脊髓制备物中,通过记录已识别神经元的膜电位,在脑干部位抑制间接神经通路,并向脊髓灌注 D-谷氨酸以诱导虚拟游泳。在这些条件下,已识别的网状脊髓神经元显示出其运动相关振荡的峰值和谷值定时的显著聚类。虽然大多数已识别神经元与头侧脊髓腹根的运动爆发相位振荡,但具有同侧下行轴突的 B1 Müller 细胞和具有对侧下行轴突的 Mauthner 细胞的振荡峰值与同侧腹根不同步。振荡定时的差异似乎是由于突触输入源的差异所致,如通过对 Müller 细胞对的快速突触活动进行互相关来显示。由于在这些实验条件下运动输入的主要来源是脊髓中的上升神经元,因此这些实验表明,单个网状脊髓神经元可以从这些上升神经元的不同子集接收运动信号。这一结果可能表明,来自脊髓运动网络的运动反馈信号在某种程度上与单个网状脊髓神经元的运动输出功能相匹配,其中包括转向和补偿运动的指令信号。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验