首页> 美国卫生研究院文献>The Journal of Neuroscience >Spinal Efference Copy Signaling and Gaze Stabilization during Locomotion in Juvenile Xenopus Frogs
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Spinal Efference Copy Signaling and Gaze Stabilization during Locomotion in Juvenile Xenopus Frogs

机译:幼年非洲爪蟾蛙运动过程中的脊髓Effect信号和注视稳定。

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摘要

In swimming Xenopus laevis tadpoles, gaze stabilization is achieved by efference copies of spinal locomotory CPG output that produce rhythmic extraocular motor activity appropriate for minimizing motion-derived visual disturbances. During metamorphosis, Xenopus switches its locomotory mechanism from larval tail-based undulatory movements to bilaterally synchronous hindlimb kick propulsion in the adult. The change in locomotory mode leads to body motion dynamics that no longer require conjugate left–right eye rotations for effective retinal image stabilization. Using in vivo kinematic analyses, in vitro electrophysiological recordings and specific CNS lesions, we have investigated spino-extraocular motor coupling in the juvenile frog and the underlying neural pathways to understand how gaze control processes are altered in accordance with the animal's change in body plan and locomotor strategy. Recordings of extraocular and limb motor nerves during spontaneous “fictive” swimming in isolated CNS preparations revealed that there is indeed a corresponding change in spinal efference copy control of extraocular motor output. In contrast to fictive larval swimming where alternating bursts occur in bilateral antagonistic horizontal extraocular nerves, during adult fictive limb-kicking, these motor nerves are synchronously active in accordance with the production of convergent eye movements during the linear head accelerations resulting from forward propulsion. Correspondingly, the neural pathways mediating spino-extraocular coupling have switched from contralateral to strictly ipsilateral ascending influences that ensure a coactivation of bilateral extraocular motoneurons with synchronous left–right limb extensions. Thus, adaptive developmental plasticity during metamorphosis enables spinal CPG-driven extraocular motor activity to match the changing requirements for eye movement control during self-motion.
机译:在非洲爪蟾(Xenopus laevis)swimming游泳中,凝视稳定是通过脊柱运动CPG输出的有效复制来实现的,该输出产生有节奏的眼外运动活动,适合于最大程度地减少由运动引起的视觉障碍。在变态过程中,非洲爪蟾将其运动机制从成虫的幼虫尾部波动转变为成年人的双侧同步后肢踢动推进。运动模式的改变导致身体运动动力学,不再需要共轭的左右眼旋转来有效地视网膜图像稳定。使用体内运动学分析,体外电生理记录和特定的中枢神经系统病变,我们研究了幼蛙中的棘突-眼外运动耦合以及潜在的神经通路,以了解视线控制过程如何根据动物身体计划的变化而改变。运动策略。在孤立的中枢神经系统制剂中自发“虚拟”游泳过程中眼外和肢体运动神经的记录显示,确实存在着对眼外运动输出的脊髓有效复制控制的相应改变。与在双侧对立水平眼外神经交替爆发的虚拟幼虫游泳相反,在成人虚拟肢体踢动期间,这些运动神经根据向前推进导致的线性头部加速过程中会聚的眼球运动而同步活跃。相应地,介导棘突-眼外耦合的神经通路已从对侧上升到严格的同侧上升影响,从而确保双眼眼运动神经元与左右肢体同步伸展共同激活。因此,在变态过程中的适应性发育可塑性使脊柱CPG驱动的眼外运动活动能够适应自我运动过程中对眼球运动控制不断变化的需求。

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