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Dynamic control of spinal locomotion circuits

机译:脊柱运动电路的动态控制

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We show that an ongoing locomotor pattern can be modulated by application of discrete electrical stimuli to the spinal cord at specific phases of the locomotor cycle. Data is presented from a series of experiments on in vitro lamprey spinal cords, which were used as an animal model for severe spinal cord injury. For any given stimulus, the effects on frequency, length, and symmetry of locomotor output show a strong dependence on the phase at which stimulation is applied. The most significant changes are seen when stimulation occurs during motor bursting: stimuli applied to the ipsilateral spinal hemicord increase the burst length, while stimuli applied to the contralateral spinal hemicord decrease the burst length. Simulations using experimentally-measured phase-dependent responses indicate that by monitoring the state of the neural system, it should be possible to apply stimuli at the appropriate times to modulate the lamprey "gait" on a cycle-by-cycle basis. Eventually, this approach could lead to development of a neuroprosthetic device for restoring locomotion after paralysis.
机译:我们表明,可以通过在运动循环的特定相位在脊髓上施加离散的电刺激来调节持续的运动模式。数据由一系列关于体外Lamprey脊髓的实验提出,其用作严重脊髓损伤的动物模型。对于任何给定的刺激,运动输出对频率,长度和对称的影响显示出对应用刺激的阶段的强依赖性。当在电动机破裂期间发生刺激时,可以看到最显着的变化:施加到同侧脊髓半角的刺激增加突发长度,而施加到对侧脊柱半层的刺激会降低爆裂长度。使用实验测量的相位依赖性反应的模拟表明,通过监测神经系统的状态,应该可以在适当的时间应用刺激以在逐个循环的基础上调节LAMPHEY“步态”。最终,这种方法可能导致瘫痪后恢复运动的神经高原装置。

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