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猕猴脊髓中传入反馈的突触前抑制不会随周围约10Hz振荡周期而调节。

Pre-Synaptic Inhibition of Afferent Feedback in the Macaque Spinal Cord Does Not Modulate with Cycles of Peripheral Oscillations Around 10 Hz.

作者信息

Galán Ferran, Baker Stuart N

机构信息

Movement Laboratory, Institute of Neuroscience, Newcastle University Newcastle Upon Tyne, UK.

出版信息

Front Neural Circuits. 2015 Nov 18;9:76. doi: 10.3389/fncir.2015.00076. eCollection 2015.

Abstract

Spinal interneurons are partially phase-locked to physiological tremor around 10 Hz. The phase of spinal interneuron activity is approximately opposite to descending drive to motoneurons, leading to partial phase cancellation and tremor reduction. Pre-synaptic inhibition of afferent feedback modulates during voluntary movements, but it is not known whether it tracks more rapid fluctuations in motor output such as during tremor. In this study, dorsal root potentials (DRPs) were recorded from the C8 and T1 roots in two macaque monkeys following intra-spinal micro-stimulation (random inter-stimulus interval 1.5-2.5 s, 30-100 μA), whilst the animals performed an index finger flexion task which elicited peripheral oscillations around 10 Hz. Forty one responses were identified with latency < 5 ms; these were narrow (mean width 0.59 ms), and likely resulted from antidromic activation of afferents following stimulation near terminals. Significant modulation during task performance occurred in 16/41 responses, reflecting terminal excitability changes generated by pre-synaptic inhibition (Wall's excitability test). Stimuli falling during large-amplitude 8-12 Hz oscillations in finger acceleration were extracted, and sub-averages of DRPs constructed for stimuli delivered at different oscillation phases. Although some apparent phase-dependent modulation was seen, this was not above the level expected by chance. We conclude that, although terminal excitability reflecting pre-synaptic inhibition of afferents modulates over the timescale of a voluntary movement, it does not follow more rapid changes in motor output. This suggests that pre-synaptic inhibition is not part of the spinal systems for tremor reduction described previously, and that it plays a role in overall-but not moment-by-moment-regulation of feedback gain.

摘要

脊髓中间神经元部分锁相于10Hz左右的生理性震颤。脊髓中间神经元活动的相位与运动神经元的下行驱动大致相反,导致部分相位抵消和震颤减轻。在自主运动过程中,传入反馈的突触前抑制会发生调制,但尚不清楚它是否跟踪运动输出中更快的波动,如在震颤期间。在本研究中,在两只猕猴的C8和T1神经根记录背根电位(DRP),同时脊髓内进行微刺激(随机刺激间隔1.5 - 2.5秒,30 - 100μA),而动物执行食指屈曲任务,该任务引发约10Hz的外周振荡。识别出41个潜伏期<5ms的反应;这些反应较窄(平均宽度0.59ms),可能是由于刺激靠近终末后传入纤维的逆向激活所致。在任务执行期间,16/41的反应出现了显著调制,反映了突触前抑制产生的终末兴奋性变化(沃尔兴奋性测试)。提取手指加速度在8 - 12Hz大振幅振荡期间出现的刺激,并构建在不同振荡相位给予刺激的DRP子平均值。尽管观察到一些明显的相位依赖性调制,但这并未超过偶然预期的水平。我们得出结论,尽管反映传入纤维突触前抑制的终末兴奋性在自主运动的时间尺度上发生调制,但它并不跟随运动输出更快的变化。这表明突触前抑制不是先前描述的脊髓震颤减轻系统的一部分,并且它在反馈增益的整体调节而非逐时调节中起作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8541/4649044/00f370dc65f4/fncir-09-00076-g0001.jpg

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