首页> 美国卫生研究院文献>The Journal of Neuroscience >Bilateral control of hindlimb scratching in the spinal turtle: contralateral spinal circuitry contributes to the normal ipsilateral motor pattern of fictive rostral scratching
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Bilateral control of hindlimb scratching in the spinal turtle: contralateral spinal circuitry contributes to the normal ipsilateral motor pattern of fictive rostral scratching

机译:双边控制脊柱龟后肢的scratch抓:对侧脊柱回路有助于虚构的鼻翼ing抓的正常同侧运动模式

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摘要

In a spinal turtle, unilateral stimulation in the rostral scratch receptive field elicited rhythmic fictive rostral scratching in ipsilateral hindlimb motor neurons; contralateral hip motor activity was also rhythmic and out-of-phase with ipsilateral hip motor activity. When left and right rostral scratch receptive fields were stimulated simultaneously, bilateral rhythmic fictive rostral scratching was produced; left hindlimb scratching was out-of-phase with right hindlimb scratching. Thus, spinal circuits coordinate interlimb phase during bilateral fictive scratching. We examined the contributions of contralateral spinal circuitry to the normal pattern of right hindlimb fictive rostral scratching by removing the left halves of the D7 segment and the hindlimb enlargement (D8-S2 segments). After left- hemicord removal, stimulation in the right rostral scratch receptive field usually elicited a variation of rostral scratching with rhythmic right hip flexor activity and no right hip extensor activity; thus, right hip flexor rhythm generation does not require left hindlimb enlargement circuitry. Normal right hindlimb rostral scratching with rhythmic alternation between hip flexor and extensor activities was rarely observed; thus, contralateral spinal circuitry contributes to the production of normal ipsilateral fictive rostral scratching. After left-hemicord removal, stimulation in the left rostral scratch receptive field elicited rhythmic right hip extensor activity; thus, contralateral spinal circuitry can generate a hip extensor rhythm during ipsilateral rostral scratch receptive field stimulation. Our observations and those of Berkowitz and Stein (1994a,b) support the concept that an ipsilateral hindlimb's normal rostral scratch motor pattern is generated by a modular central pattern generator that is bilaterally distributed in the spinal cord.
机译:在脊柱海龟中,单侧刺激玫瑰色划痕感受野引起了同侧后肢运动神经元的节律性虚拟玫瑰色划痕。对侧髋关节运动活动与同侧髋关节运动活动也有节奏性和异相性。当同时刺激左右眼部划痕感受野时,会产生双侧节律性虚构的划痕。左后肢挠性与右后肢挠性不同。因此,在双侧虚构性刮擦过程中,脊柱回路协调了中间相。我们通过去除D7段的左半部分和后肢增大(D8-S2段),检查了对侧脊柱电路对右后肢虚拟带状记号挠曲的正常模式的贡献。去除左半球后,在右侧的鼻部划痕接受区刺激通常会引起具有挠性的右髋屈肌活动而无右髋伸肌活动的鼻部划伤变化。因此,右髋屈肌节律的产生不需要左后肢扩大电路。很少观察到正常的右后肢鼻翼抓挠,髋屈肌和伸肌活动之间有节律的交替。因此,对侧脊柱回路有助于正常同侧虚构的鼻部划痕的产生。去除左半身后,在左侧延髓上侧划伤感受野的刺激引起了节奏性的右髋伸肌活动。因此,对侧脊柱回路可以在同侧的鼻状划痕接受野刺激过程中产生髋伸节律。我们的观察结果以及Berkowitz和Stein(1994a,b)的观察结果都支持这样的概念,即同侧后肢的正常鼻侧划痕运动模式是由模块化的中央模式发生器产生的,该模块在脊髓中双向分布。

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