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七鳃鳗中网状脊髓神经元对侧向转弯的反应。

Responses of reticulospinal neurons in the lamprey to lateral turns.

作者信息

Karayannidou A, Zelenin P V, Orlovsky G N, Deliagina T G

机构信息

The Nobel Institute for Neurophysiology, Department of Neuroscience, Karolinska Institute, SE-17177 Stockholm, Sweden.

出版信息

J Neurophysiol. 2007 Jan;97(1):512-21. doi: 10.1152/jn.00912.2006. Epub 2006 Nov 1.

Abstract

When swimming, the lamprey maintains a definite orientation of its body in the vertical planes, in relation to the gravity vector, as the result of postural vestibular reflexes. Do the vestibular-driven mechanisms also play a role in the control of the direction of swimming in the horizontal (yaw) plane, in which the gravity cannot be used as a reference direction? In the present study, we addressed this question by recording responses to lateral turns in reticulospinal (RS) neurons mediating vestibulospinal reflexes. In intact lampreys, the activity of axons of RS neurons was recorded in the spinal cord by implanted electrodes. Vestibular stimulation was performed by periodical turns of the animal in the yaw plane (60 degrees peak to peak). It was found that the majority of responding RS neurons were activated by the contralateral turn. By removing one labyrinth, we found that yaw responses in RS neurons were driven mainly by input from the contralateral labyrinth. We suggest that these neurons, when activated by the contralateral turn, will elicit the ipsilateral turn and thus will compensate for perturbations of the rectilinear swimming caused by external factors. It is also known that unilateral eye illumination elicits a contralateral turn in the yaw plane (negative phototaxis). We found that a portion of RS neurons were activated by the contralateral eye illumination. By eliciting an ipsilateral turn, these neurons could mediate the negative phototaxis.

摘要

七鳃鳗在游泳时,由于姿势性前庭反射,其身体在垂直平面内相对于重力矢量保持一定的方向。那么,在前庭驱动机制中,重力无法作为参考方向的水平(偏航)平面内游泳方向的控制中,这些机制是否也发挥作用呢?在本研究中,我们通过记录介导前庭脊髓反射的网状脊髓(RS)神经元对侧向转弯的反应来解决这个问题。在完整的七鳃鳗中,通过植入电极在脊髓中记录RS神经元轴突的活动。通过在偏航平面内定期转动动物(峰峰值为60度)来进行前庭刺激。结果发现,大多数有反应的RS神经元在对侧转弯时被激活。通过移除一侧迷路,我们发现RS神经元的偏航反应主要由对侧迷路的输入驱动。我们认为,这些神经元在被对侧转弯激活时,会引发同侧转弯,从而补偿外部因素引起的直线游泳的扰动。还已知单侧眼睛光照会在偏航平面内引发对侧转弯(负趋光性)。我们发现一部分RS神经元在对侧眼睛光照时被激活。通过引发同侧转弯,这些神经元可以介导负趋光性。

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