Hamilton Institute, National University of Ireland Maynooth, Co. Kildare, Ireland.
PLoS One. 2013 Sep 16;8(9):e73456. doi: 10.1371/journal.pone.0073456. eCollection 2013.
Parkinsonian and essential tremor can often be effectively treated by deep brain stimulation. We propose a novel explanation for the mechanism by which this technique ameliorates tremor: a reduction of the delay in the relevant motor control loops via preferential antidromic blockade of slow axons. The antidromic blockade is preferential because the pulses more rapidly clear fast axons, and the distribution of axonal diameters, and therefore velocities, in the involved tracts, is sufficiently long-tailed to make this effect quite significant. The preferential blockade of slow axons, combined with gain adaptation, results in a reduction of the mean delay in the motor control loop, which serves to stabilize the feedback system, thus ameliorating tremor. This theory, without any tuning, accounts for several previously perplexing phenomena, and makes a variety of novel predictions.
帕金森病和特发性震颤通常可以通过脑深部刺激有效地治疗。我们提出了一种新的解释,说明该技术改善震颤的机制:通过优先逆行阻断慢轴突来减少相关运动控制回路的延迟。逆行阻断是优先的,因为脉冲更快地清除快轴突,并且涉及的轨迹中的轴突直径分布,因此速度,足够长尾以使这种效果非常显著。慢轴突的优先阻断,加上增益适应,导致运动控制回路的平均延迟减少,这有助于稳定反馈系统,从而改善震颤。该理论无需任何调整即可解释几种以前令人困惑的现象,并做出各种新颖的预测。