School of Electrical Engineering and Automation, Tianjin University, Tianjin 300072, People's Republic of China.
Chaos. 2013 Sep;23(3):033121. doi: 10.1063/1.4817607.
The combined effects of the information transmission delay and the ratio of the electrical and chemical synapses on the synchronization transitions in the hybrid modular neuronal network are investigated in this paper. Numerical results show that the synchronization of neuron activities can be either promoted or destroyed as the information transmission delay increases, irrespective of the probability of electrical synapses in the hybrid-synaptic network. Interestingly, when the number of the electrical synapses exceeds a certain level, further increasing its proportion can obviously enhance the spatiotemporal synchronization transitions. Moreover, the coupling strength has a significant effect on the synchronization transition. The dominated type of the synapse always has a more profound effect on the emergency of the synchronous behaviors. Furthermore, the results of the modular neuronal network structures demonstrate that excessive partitioning of the modular network may result in the dramatic detriment of neuronal synchronization. Considering that information transmission delays are inevitable in intra- and inter-neuronal networks communication, the obtained results may have important implications for the exploration of the synchronization mechanism underlying several neural system diseases such as Parkinson's Disease.
本文研究了信息传递延迟以及电突触和化学突触比例对混合模块化神经元网络中的同步转变的综合影响。数值结果表明,无论混合突触网络中电突触的概率如何,随着信息传递延迟的增加,神经元活动的同步性都可以被促进或破坏。有趣的是,当电突触的数量超过一定水平时,进一步增加其比例可以明显增强时空同步转变。此外,耦合强度对同步转变有显著影响。占主导地位的突触类型对同步行为的出现总是有更深远的影响。此外,模块化神经元网络结构的结果表明,模块化网络的过度划分可能导致神经元同步的显著损害。考虑到信息传递延迟在神经元内和神经元间网络通信中是不可避免的,所得到的结果可能对探索帕金森病等几种神经系统疾病的同步机制具有重要意义。