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Modeling Diurnal Rhythms With an Array of Phase Dynamic Oscillators

机译:使用相位动态振荡器阵列建模昼夜节律

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Behavior of living organisms is strongly modulated by light especially by the day and night cycle giving rise to a cyclic pattern of activities. Such a pattern helps the organism to coordinate their activities and maintain a balance between what could be performed during the 'day' and what could be relegated to 'night'. This cyclic pattern, called the 'Circadian Rhythm', is a biological phenomenon observed in a large number of organisms ranging from unicellular bacteria to human beings and is present in data collected at various levels viz. transcriptome, proteome etc. In this paper, our goal is to analyze transcriptome data from Cyanothece, a photosynthetic cyanobacteria, for the purpose of discovering genes whose expressions are rhythmic, especially those for which these rhythms have a 24 hours cycle. Subsequently we propose a model with a network of three phase oscillators for each one of the twenty four hours cycle. Each of the three phase oscillators is chosen to maintain a phase difference of 120 degrees between each other. All the oscillators are connected to an internal clock that is designed to maintain a phase activity close to a master clock derived using KaiC proteins. In Cyanobacteria it is believed that the KaiC proteins provide the internal rhythm. The model parameters, viz. connection strengths between the master clock and peripheral oscillators and the parameters computing the linear combinations of the oscillator phase variables, are optimized to provide a close match to the observed gene expressions even when the frequency of the internal clock and the natural frequencies of the oscillators vary within a certain range. As a final step, the oscillator network model has been used to isolate genes, and hence the associated subprocesses, whose expression cycles are robust with respect to variations in the oscillator frequencies.
机译:生物体的行为被光线强烈调节,特别是当天和夜周期产生循环活动。这种模式有助于机会协调他们的活动,并在“日”期间可以在可以在“日”之间进行平衡,并且可以降级到“夜”。这种称为“昼夜节律”的循环模式是在大量从单细胞对人类的大量生物中观察到的生物现象,并且存在于在各种级别的数据上收集的数据。转录组,蛋白质组等,我们的目标是分析来自Cyanothece的转录组数据,是一种光合青霉菌,其目的是发现表达是节律的基因,尤其是这些节奏具有24小时循环的基因。随后,我们提出了一种模型,其中三个振荡器网络为二十四小时周期中的每一个。选择三个相位振荡器中的每一个以在彼此之间保持120度的相位差。所有振荡器都连接到内部时钟,该内部时钟旨在维持靠近使用KAIC蛋白衍生的主时钟的相活性。在蓝藻中,据信喀曲蛋白提供内部节律。模型参数,viz。主时钟和外周振荡器和计算所述振荡器的相位变量的线性组合的参数之间的连接强度被优化,以提供一个接近的匹配,以观察到的基因表达,即使内部时钟的频率与振荡器的固有频率变化在一定范围内。作为最后的步骤,振荡器网络模型已被用于隔离基因,因此,相关的子过程,其表达周期对于振荡器频率的变化是鲁棒的。

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