耦合细胞周期振荡器的同步特性

Wei Zhang, Xiufen Zou
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引用次数: 2

摘要

基于文献[1]中提出的能够出现持续极限环振荡的非洲爪蟾胚胎细胞周期模型,我们首先构建了这些振荡因子通过一个共同的复杂蛋白偶联的多细胞系统,该蛋白在细胞周期振荡因子的核心调控中起重要作用,然后在这个偶联的多细胞系统中表现出同步特征。通过分岔分析和数值模拟,给出了单个振子中敏感参数的同步间隔和耦合振子中耦合参数的同步间隔。然后,我们分析了这些参数对同步时间、周期和幅度的影响,发现了有趣的现象,如活化CDK1激活Plk1的Hill函数中存在两个激活系数的同步间隔,不同的同步间隔对同步时间、周期和幅度的影响不同。更有趣的是,我们发现耦合系统可以在稳定状态和稳定周期轨道之间切换。这些结果表明,活化的cyclin-CDK1激活Plk1的反应过程对耦合系统的同步能力有非常重要的影响。本研究不仅为全面认识非洲爪蟾胚胎细胞周期机制迈出了重要的一步,而且可以为进一步的生物学实验提供指导。
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Synchronization feature of coupled cell-cycle oscillators
Based on the model of the Xenopus embryonic cell cycle proposed in literature [1], which can exhibit sustained limit cycle oscillations, we first build a multi-cell system of these oscillators that are coupled through a common complex protein that plays an important role in the core regulation of cell-cycle oscillators, and then show synchronization features in this coupled multi-cell system. Through bifurcation analysis and numerical simulations, we give synchronization intervals of the sensitive parameters in the individual oscillator and the coupling parameters in the coupled oscillators. Then, we analyze the effects of these parameters on synchronization time, period and amplitude, and find interesting phenomena, e.g., there are two synchronization intervals of activation coefficient in the Hill function of the activated CDK1 that activates the Plk1, and different synchronization intervals have distinct influences on synchronization time, period and amplitude. More interestingly, we find that the coupled system can switch between a stable state and a stable periodic orbit. These results suggest that the reaction process that the activated cyclin-CDK1 activates the Plk1 has very important influence on the synchronization ability of the coupled system. Our work not only can be viewed as an important step toward the comprehensive understanding for mechanisms of Xenopus embryonic cell cycle and but also can provide the guide for further biological experiments.
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