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Spinal interneuron circuits reduce approximately 10-Hz movement discontinuities by phase cancellation

机译:脊髓中间神经元电路通过相抵消减少了大约10 Hz的运动不连续性

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摘要

Tremor imposes an important limit to the accuracy of fine movements in healthy individuals and can be a disabling feature of neurological disease. Voluntary slow finger movements are not smooth but are characterized by large discontinuities (i.e., steps) in the tremor frequency range (approximately 10 Hz). Previous studies have shown that these discontinuities are coherent with activity in the primary motor cortex (M1), but that other brain areas are probably also involved. We investigated the contribution of three important subcortical areas in two macaque monkeys trained to perform slow finger movements. Local field potential and single-unit activity were recorded from the deep cerebellar nuclei (DCN), medial pontomedullary reticular formation, and the intermediate zone of the spinal cord (SC). Coherence between LFP and acceleration was significant at 6 to 13 Hz for all areas, confirming the highly distributed nature of the central network responsible for this activity. The coherence phase at 6 to 13 Hz for DCN and pontomedullary reticular formation was similar to our previous results in M1. By contrast, for SC the phase differed from M1 by approximately π rad. Examination of single-unit discharge confirmed that this was a genuine difference in neural spiking and could not be explained by different properties of the local field potential. Convergence of antiphase oscillations from the SC with cortical and subcortical descending inputs will lead to cancellation of approximately 10 Hz oscillations at the motoneuronal level. This could appreciably limit drive to muscle at this frequency, thereby reducing tremor and improving movement precision.
机译:震颤对健康个体的精细动作的准确性施加了重要限制,并且可能成为神经系统疾病的致残特征。自愿的手指缓慢移动并不平稳,但其特征是震颤频率范围(约10 Hz)中的不连续性大(即步长)。先前的研究表明,这些不连续性与初级运动皮层(M1)的活动是一致的,但是其他大脑区域也可能参与其中。我们调查了两只猕猴经过缓慢手指运动训练后三个皮质下重要区域的贡献。从小脑深核(DCN),桥脑小脑内侧网状结构和脊髓中间区域(SC)记录局部电场潜能和单单位活性。在所有区域,LFP和加速度之间的连贯性在6到13 Hz时都很显着,这确认了负责此活动的中央网络的高度分布式性质。 DCN和桥状网状网状结构在6到13 Hz的相干相位类似于我们先前在M1中的结果。相反,对于SC,相位与M1相差大约πrad。单位放电的检查证实,这是神经突增的真正差异,无法用局部场电势的不同特性来解释。来自SC的反相振荡与皮质和皮质下下降输入的收敛将导致在单动神经元水平上消除大约10 Hz的振荡。这可能会明显限制该频率下对肌肉的驱动,从而减少震颤并提高运动精度。

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