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Central Pattern Generators: Control of transitions between locomotor-like and paw shake-like rhythms in a model of a multistable central pattern generator

机译:中央模式发生器:在多稳态中央模式发生器模型中控制运动样节奏和脚掌样节奏之间的过渡

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摘要

The ability of the same neuronal circuit to control different motor functions is an actively debated concept. Previously, we showed in a model that a single multistable central pattern generator (CPG) could produce two different rhythmic motor patterns, slow and fast, corresponding to cat locomotion and paw shaking. A locomotor-like rhythm (~1 Hz) and a paw shake-like rhythm (~10 Hz) did coexist in our model, and, by applying a single pulse of current, we could switch the CPG from one regime to another (Bondy B, Klishko AN, Edwards DH, Prilutsky BI, Cymbalyuk G. In: Neuromechanical Modeling of Posture and Locomotion, 2016). Here we investigated the roles of slow intrinsic ionic currents in this multistability. The CPG is modeled as a half-center oscillator circuit comprising two reciprocally inhibitory neurons. Each neuron is equipped with two slow inward currents, a Na+ current (INaS) and a Ca2+ current (ICaS). ICaS inactivates much more slowly and at more hyperpolarized voltages than INaS. We demonstrate that INaS is the primary current driving the paw shake-like bursting. ICaS is crucial for the locomotor-like bursting, and it is inactivated during the paw shake-like activity. We investigate the sensitivity of the bursting regimes to perturbations, using a pulse of current to induce a switch from one regime to the other, and we demonstrate that the transition duration is dependent on pulse amplitude and application phase. We also investigate the modulatory roles of the strength of various currents on characteristics of these rhythms and show that their effects are regime specific. We conclude that a multistable CPG is physiologically plausible and derive testable predictions of the model.>NEW & NOTEWORTHY Little is known about how a single central pattern generator could produce multiple rhythms. We describe a novel mechanism for multistability of bursting regimes with strongly distinct periods. The proposed mechanism emphasizes the role of intrinsic cellular dynamics over synaptic dynamics in the production of multistability. We describe how the temporal characteristics of multiple rhythms could be controlled by neuromodulation and how single pulses of current could produce a switch between regimes in a functional fashion.
机译:相同的神经元回路控制不同运动功能的能力是一个备受争议的概念。以前,我们在模型中显示,单个多稳态中央模式发生器(CPG)可以产生两种不同的节奏运动模式,分别是慢速和快速,分别对应于猫的运动和爪子的晃动。在我们的模型中确实存在运动样的节奏(〜1 Hz)和爪子样的节奏(〜10 Hz),并且,通过施加单个电流脉冲,我们可以将CPG从一种状态切换到另一种状态(Bondy B,Klishko AN,Edwards DH,Prilutsky BI,Cymbalyuk G.在:《姿势和运动的神经力学建模》,2016年)。在这里,我们研究了慢内在离子电流在这种多重稳定性中的作用。 CPG被建模为一个包含两个相互抑制神经元的半中心振荡器电路。每个神经元都配备两个缓慢的内向电流,即Na + 电流(INaS)和Ca 2 + 电流(ICaS)。与InaS相比,ICaS的灭活速度要慢得多,并且在超极化电压下也是如此。我们证明了INaS是驱动爪子状突如爆裂的主要电流。 ICaS对于类似运动的爆发至关重要,在爪子般的活动中它会失活。我们使用电流脉冲来诱导从一种状态切换到另一种状态,来研究突发状态对扰动的敏感性,并且我们证明过渡持续时间取决于脉冲幅度和施加相位。我们还研究了各种电流强度对这些节律特征的调节作用,并表明它们的作用是特定于机制的。我们得出的结论是,多稳态CPG在生理上是合理的,并且可以得出该模型的可测试预测。> NEW&NOTEWORTHY 对单个中央模式发生器如何产生多种节奏的了解很少。我们描述了一种具有强烈不同时期的爆发机制的多重稳定性的新型机制。所提出的机制强调了在多重稳定性产生中固有的细胞动力学对突触动力学的作用。我们描述了如何通过神经调节来控制多个节律的时间特性,以及电流的单个脉冲如何以功能方式在方案之间产生切换。

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