Oscillation Theory Department, Nizhny Novgorod State University, 23 Gagarin avenue, 603950 Nizhny Novgorod, Russia.
Chaos. 2011 Jun;21(2):023103. doi: 10.1063/1.3574031.
Bifurcation mechanisms underlying calcium oscillations in the network of astrocytes are investigated. Network model includes the dynamics of intracellular calcium concentration and intercellular diffusion of inositol 1,4,5-trisphosphate through gap junctions. Bifurcation analysis of underlying nonlinear dynamical system is presented. Parameter regions and principle bifurcation boundaries have been delineated and described. We show how variations of the diffusion rate can lead to generation of network calcium oscillations in originally nonoscillating cells. Different scenarios of regular activity and its transitions to chaotic dynamics have been obtained. Then, the bifurcations have been associated with statistical characteristics of calcium signals showing that different bifurcation scenarios yield qualitative changes in experimentally measurable quantities of the astrocyte activity, e.g., statistics of calcium spikes.
研究了星形胶质细胞网络中钙振荡的分岔机制。网络模型包括细胞内钙浓度的动力学和通过缝隙连接的肌醇 1,4,5-三磷酸的细胞间扩散。提出了基础非线性动力系统的分岔分析。已经描绘和描述了参数区域和主要分岔边界。我们展示了扩散率的变化如何导致原本非振荡细胞中网络钙振荡的产生。获得了规则活动及其向混沌动力学的转变的不同情况。然后,将分岔与钙信号的统计特征相关联,表明不同的分岔情况导致星形胶质细胞活动的实验可测量量的定性变化,例如钙峰的统计。