Höfer Thomas, Venance Laurent, Giaume Christian
Theoretische Biophysik, Institut für Biologie, Humboldt-Universität Berlin, 10115 Berlin, Germany.
J Neurosci. 2002 Jun 15;22(12):4850-9. doi: 10.1523/JNEUROSCI.22-12-04850.2002.
Intercellular Ca2+ waves in astrocytes are thought to serve as a pathway of long-range signaling. The waves can propagate by the diffusion of molecules through gap junctions and across the extracellular space. In rat striatal astrocytes, the gap-junctional route was shown to be dominant. To analyze the interplay of the processes involved in wave propagation, a mathematical model of this system has been developed. The kinetic description of Ca2+ signaling within a single cell accounts for inositol 1,4,5-trisphosphate (IP3) generation, including its activation by cytoplasmic Ca2+, IP3-induced Ca2+ liberation from intracellular stores and various other Ca2+ transports, and cytoplasmic diffusion of IP3 and Ca2+. When cells are coupled by gap junction channels in a two-dimensional array, IP3 generation in one cell triggers Ca2+ waves propagating across some tens of cells. The spatial range of wave propagation is limited, yet depends sensitively on the Ca2+-mediated regeneration of the IP3 signal. Accordingly, the term "limited regenerative signaling" is proposed. The gap-junctional permeability for IP3 is the crucial permissive factor for wave propagation, and heterogeneity of gap-junctional coupling yields preferential pathways of wave propagation. Processes involved in both signal initiation (activation of IP3 production caused by receptor agonist) and regeneration (activation of IP3 production by Ca2+, loading of the Ca2+ stores) are found to exert the main control on the wave range. The refractory period of signaling strongly depends on the refilling kinetics of the Ca2+ stores. Thus the model identifies multiple steps that may be involved in the regulation of this intercellular signaling pathway.
星形胶质细胞中的细胞间钙离子波被认为是一种长距离信号传导途径。这些波可以通过分子通过缝隙连接并在细胞外空间扩散来传播。在大鼠纹状体星形胶质细胞中,缝隙连接途径被证明是主要的。为了分析波传播过程中各过程之间的相互作用,已经建立了该系统的数学模型。单个细胞内钙离子信号的动力学描述考虑了肌醇1,4,5-三磷酸(IP3)的产生,包括其被细胞质钙离子激活、IP3诱导的细胞内钙库释放钙离子以及各种其他钙离子转运,以及IP3和钙离子在细胞质中的扩散。当细胞通过二维阵列中的缝隙连接通道耦合时,一个细胞中的IP3产生会触发钙离子波在数十个细胞中传播。波传播的空间范围是有限的,但敏感地依赖于IP3信号的钙离子介导的再生。因此,提出了“有限再生信号传导”这一术语。IP3的缝隙连接通透性是波传播的关键允许因素,缝隙连接耦合的异质性产生了波传播的优先途径。发现信号起始(受体激动剂引起的IP3产生激活)和再生(钙离子激活IP3产生、钙库加载钙离子)过程都对波的范围起主要控制作用。信号传导的不应期强烈依赖于钙库的再填充动力学。因此,该模型确定了可能参与这种细胞间信号传导途径调节的多个步骤。