Nowotny Thomas, Rabinovich Mikhail I
University of Sussex, Falmer, Brighton BN1 9QJ, UK.
Phys Rev Lett. 2007 Mar 23;98(12):128106. doi: 10.1103/PhysRevLett.98.128106. Epub 2007 Mar 22.
The relationship between spiking and bursting dynamics is a key question in neuroscience, particularly in understanding the origins of different neural coding strategies and the mechanisms of motor command generation and neural circuit coordination. Experiments indicate that spiking and bursting dynamics can be independent. We hypothesize that different mechanisms for spike and burst generation, intrinsic neuron dynamics for spiking and a modulational network instability for bursting, are the origin of this independence. We tested the hypothesis in a detailed dynamical analysis of a minimal inhibitory neural microcircuit (motif) of three reciprocally connected Hodgkin-Huxley neurons. We reduced this high-dimensional dynamical system to a rate model and showed that both systems have identical bifurcations from tonic spiking to burst generation, which, therefore, does not depend on the details of spiking activity.
脉冲发放与爆发式放电动力学之间的关系是神经科学中的一个关键问题,尤其是在理解不同神经编码策略的起源以及运动指令生成和神经回路协调的机制方面。实验表明,脉冲发放与爆发式放电动力学可能是相互独立的。我们推测,脉冲和爆发产生的不同机制,即脉冲发放的神经元内在动力学和爆发式放电的调制网络不稳定性,是这种独立性的根源。我们在对由三个相互连接的霍奇金-赫胥黎神经元组成的最小抑制性神经微电路(基序)进行详细的动力学分析中检验了这一假设。我们将这个高维动力学系统简化为一个速率模型,并表明两个系统从紧张性脉冲发放到爆发式放电的分岔是相同的,因此,这并不依赖于脉冲发放活动的细节。