Department of Physics, Lanzhou University of Technology, Lanzhou, China.
PLoS One. 2013 Jul 29;8(7):e69251. doi: 10.1371/journal.pone.0069251. Print 2013.
Formation and selection of multiarmed spiral wave due to spontaneous symmetry breaking are investigated in a regular network of Hodgkin-Huxley neuron by changing the excitability and imposing spatial forcing currents on the neurons in the network. The arm number of the multiarmed spiral wave is dependent on the distribution of spatial forcing currents and excitability diversity in the network, and the selection criterion for supporting multiarmed spiral waves is discussed. A broken spiral segment is measured by a short polygonal line connected by three adjacent points (controlled nodes), and a double-spiral wave can be developed from the spiral segment. Multiarmed spiral wave is formed when a group of double-spiral waves rotate in the same direction in the network. In the numerical studies, a group of controlled nodes are selected and spatial forcing currents are imposed on these nodes, and our results show that l-arm stable spiral wave (l = 2, 3, 4,...8) can be induced to occupy the network completely. It is also confirmed that low excitability is critical to induce multiarmed spiral waves while high excitability is important to propagate the multiarmed spiral wave outside so that distinct multiarmed spiral wave can occupy the network completely. Our results confirm that symmetry breaking of target wave in the media accounts for emergence of multiarmed spiral wave, which can be developed from a group of spiral waves with single arm under appropriate condition, thus the potential formation mechanism of multiarmed spiral wave in the media is explained.
通过改变兴奋性并对网络中的神经元施加空间强迫电流,研究了 Hodgkin-Huxley 神经元规则网络中由于自发对称破缺而形成的多臂螺旋波的形成和选择。多臂螺旋波的臂数取决于网络中空间强迫电流的分布和兴奋性多样性,讨论了支持多臂螺旋波的选择标准。通过由三个相邻点(控制节点)连接的短多边形线测量断开的螺旋段,并且可以从螺旋段发展出双螺旋波。当网络中一组双螺旋波沿相同方向旋转时,会形成多臂螺旋波。在数值研究中,选择一组控制节点并在这些节点上施加空间强迫电流,我们的结果表明,可以诱导 l 臂稳定螺旋波(l=2,3,4,...8)完全占据网络。还证实,低兴奋性对于诱导多臂螺旋波很关键,而高兴奋性对于在外部传播多臂螺旋波很重要,以便多臂螺旋波能够完全占据网络。我们的结果证实,目标波在介质中的对称破缺导致了多臂螺旋波的出现,多臂螺旋波可以在适当的条件下从具有单臂的一组螺旋波发展而来,从而解释了介质中多臂螺旋波的潜在形成机制。