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电鳗运动指令引发感觉采样增加的神经基础。

Neural substrate of an increase in sensory sampling triggered by a motor command in a gymnotid fish.

机构信息

Departmento de Fisiología, Facultad de Medicina, Universidad de la República, Montevideo, Uruguay.

出版信息

J Neurophysiol. 2010 Oct;104(4):2147-57. doi: 10.1152/jn.00076.2010. Epub 2010 Aug 18.

DOI:10.1152/jn.00076.2010
PMID:20719924
Abstract

Despite recent advances that have elucidated the effects of collateral of motor commands on sensory processing structures, the neural mechanisms underlying the modulation of active sensory systems by internal motor-derived signals remains poorly understood. This study deals with the neural basis of the modulation of the motor component of an active sensory system triggered by a central motor command in a gymnotid fish. In Gymnotus omarorum, activation of Mauthner cells, a pair of reticulospinal neurons responsible for the initiation of escape responses in most teleosts, evokes an abrupt and prolonged increase in the rate of the electric organ discharge (EOD), the output signal of the electrogenic component of the active electrosensory system. We show here that prepacemaker neural structures (PPs) that control the discharge of the command nucleus for EODs are key elements of this modulation. Retrograde labeling combined with injections of glutamate at structures that contain labeled neurons showed that PPs are composed of a bilateral group of dispersed brain stem neurons that extend from the diencephalon to the caudal medulla. Blockade of discrete PPs regions during the Mauthner cell-initiated electrosensory modulation indicate that the long duration of this modulation relied on activation of diencephalic PPs, whereas its peak amplitude depended on the recruitment of medullary PPs. Temporal correlation of motor and sensory consequences of Mauthner cell activation suggests that the Mauthner cell-initiated enhancement of electrosensory sampling is involved in the selection of escape trajectory.

摘要

尽管最近的进展已经阐明了运动指令的侧支对感觉处理结构的影响,但内部运动衍生信号对主动感觉系统的调制的神经机制仍知之甚少。本研究探讨了在电鳗中,由中枢运动指令触发的主动感觉系统的运动成分的调制的神经基础。在 Gymnotus omarorum 中,激活 Mauthner 细胞(一对负责引发大多数硬骨鱼逃避反应的网状脊髓神经元)会引起电器官放电(EOD)率的突然和持续增加,EOD 是主动电感觉系统的发电成分的输出信号。我们在这里表明,控制 EOD 命令核放电的预起搏神经结构(PPs)是这种调制的关键要素。逆行标记结合在包含标记神经元的结构中注射谷氨酸表明,PPs 由一组从间脑延伸到尾髓的分散脑干神经元组成。在 Mauthner 细胞引发的电感觉调制期间阻断离散的 PPs 区域表明,这种调制的长持续时间依赖于间脑 PPs 的激活,而其峰值幅度取决于髓质 PPs 的募集。Mauthner 细胞激活的运动和感觉后果的时间相关性表明,Mauthner 细胞引发的增强的电感觉采样涉及到逃避轨迹的选择。

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