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具有延迟的异质抑制性脉冲网络的神经活动

Neural activity of heterogeneous inhibitory spiking networks with delay.

作者信息

Luccioli Stefano, Angulo-Garcia David, Torcini Alessandro

机构信息

CNR-Consiglio Nazionale delle Ricerche-Istituto dei Sistemi Complessi, via Madonna del Piano 10, 50019 Sesto Fiorentino, Italy.

Grupo de Modelado Computacional-Dinámica y Complejidad de Sistemas. Instituto de Matemáticas Aplicadas. Universidad de Cartagena. Carrera 6 # 36 - 100, Cartagena de Indias, Colombia.

出版信息

Phys Rev E. 2019 May;99(5-1):052412. doi: 10.1103/PhysRevE.99.052412.

Abstract

We study a network of spiking neurons with heterogeneous excitabilities connected via inhibitory delayed pulses. For globally coupled systems the increase of the inhibitory coupling reduces the number of firing neurons by following a winner-takes-all mechanism. For sufficiently large transmission delay we observe the emergence of collective oscillations in the system beyond a critical coupling value. Heterogeneity promotes neural inactivation and asynchronous dynamics and its effect can be counteracted by considering longer time delays. In sparse networks, inhibition has the counterintuitive effect of promoting neural reactivation of silent neurons for sufficiently large coupling. In this regime, current fluctuations are on one side responsible for neural firing of subthreshold neurons and on the other side for their desynchronization. Therefore, collective oscillations are present only in a limited range of coupling values, which remains finite in the thermodynamic limit. Out of this range the dynamics is asynchronous and for very large inhibition neurons display a bursting behavior alternating periods of silence with periods where they fire freely in absence of any inhibition.

摘要

我们研究了一个通过抑制性延迟脉冲连接的具有异质兴奋性的脉冲神经元网络。对于全局耦合系统,抑制性耦合的增加通过遵循胜者全得机制减少了放电神经元的数量。对于足够大的传输延迟,我们观察到系统中超过临界耦合值时会出现集体振荡。异质性促进神经失活和异步动力学,并且通过考虑更长的时间延迟可以抵消其影响。在稀疏网络中,对于足够大的耦合,抑制具有促进沉默神经元神经重新激活的反直觉效果。在这种情况下,电流波动一方面导致阈下神经元的神经放电,另一方面导致它们的去同步化。因此,集体振荡仅出现在有限的耦合值范围内,在热力学极限下该范围仍然是有限的。超出此范围,动力学是异步的,并且对于非常大的抑制,神经元表现出爆发行为,在沉默期和无任何抑制时自由放电的时期交替出现。

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