Department of Mechanics, Tianjin University, Tianjin, 300354, PR China.
Department of Mechanics, Tianjin University, Tianjin, 300354, PR China.
Biosystems. 2020 Dec;198:104233. doi: 10.1016/j.biosystems.2020.104233. Epub 2020 Aug 26.
Intercellular calcium signaling allows cells to communicate with each other and to interact with adjacent cells. Gap junction is the most common and important way for cellular communication. Recently, mathematical models have been widely used to gain a precise and quantitative understanding of the dynamics of intracellular calcium ions (Ca). In this paper, we establish a mathematical model considering the gap junction permeable to Ca and to IP for describing the calcium oscillations in coupled astrocytes. Store-operated calcium entry (SOCE) is viewed as the main process which controls the non-excitable cells, hence, we focus on the effect of store-operated calcium channel (SOCC) and receptor-operated calcium channel (ROCC) on the intercellular synchronization, respectively. By employing bifurcation analysis on this model, the dynamic behaviors of the coupled system with different physiological state cells is obtained with changes in the maximum capacity of the SOCC and the ROCC. The synchronization boundaries for different conditions are gained in the two parameters space of the channel parameters and the coupling strength. The results suggest that the variation of the maximum flow for different calcium channels determines the stable oscillations of the coupled system, as well as for the frequency and amplitude of oscillations. The SOCC has an expected effect on the change of the oscillatory interval while the ROCC demonstrated the influence on the amplitude modulation. Furthermore, the coupling strength and channel parameters could induce 1:1 locking of intercellular Ca oscillations and the synchronization region like Arnol'd tongue is found.
细胞间钙信号允许细胞相互通信,并与相邻细胞相互作用。缝隙连接是细胞间通讯最常见和最重要的方式。最近,数学模型被广泛用于精确和定量地理解细胞内钙离子(Ca)的动力学。在本文中,我们建立了一个数学模型,考虑了缝隙连接对 Ca 和 IP 的通透性,以描述耦合星形胶质细胞中的钙振荡。储存操纵钙内流(SOCE)被视为控制非兴奋细胞的主要过程,因此,我们分别关注储存操纵钙通道(SOCC)和受体操纵钙通道(ROCC)对细胞间同步化的影响。通过对该模型进行分叉分析,获得了具有不同生理状态细胞的耦合系统的动态行为,其变化与 SOCC 和 ROCC 的最大容量有关。在通道参数和耦合强度的两个参数空间中,获得了不同条件下的同步边界。结果表明,不同钙通道的最大流量变化决定了耦合系统的稳定振荡,以及振荡的频率和幅度。SOCC 对振荡间隔的变化有预期的影响,而 ROCC 对幅度调制有影响。此外,耦合强度和通道参数可以诱导细胞间 Ca 振荡的 1:1 锁定,并且发现了类似于 Arnol'd 舌的同步区域。