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生物钟基因昼夜节律振荡数学模型中的分岔现象

Bifurcations in a mathematical model for circadian oscillations of clock genes.

作者信息

Tsumoto Kunichika, Yoshinaga Tetsuya, Iida Hitoshi, Kawakami Hiroshi, Aihara Kazuyuki

机构信息

Aihara Complexity Modelling Project, ERATO, Japan Science and Technology Agency (JST), 3-23-5 August House 2F Uehara, Shibuya-ku, Tokyo 151-0064, Japan.

出版信息

J Theor Biol. 2006 Mar 7;239(1):101-22. doi: 10.1016/j.jtbi.2005.07.017. Epub 2005 Sep 6.

Abstract

Circadian oscillations with a period of about 24h are observed in nearly all living organisms as conspicuous biological rhythms. In this paper, we investigate various kinds of bifurcation phenomena produced in a circadian oscillator model of Drosophila. In Drosophila, it is known that circadian oscillations in the levels of two proteins, PER and TIM, result from the negative feedback exerted by a PER-TIM complex on the expression of the per and tim genes that code for the two proteins. For studying circadian oscillations of proteins in Drosophila, a mathematical model has been proposed. The model cannot only account for regular circadian oscillations in environmental conditions such as constant darkness, but also give rise to more complex oscillatory phenomena including chaos and birhythmicity. By calculating bifurcations using Kawakami's method, we obtain detailed bifurcation diagrams related to stable and unstable invariant sets, and identify parameter regions in which the model generates complex oscillations as well as regular circadian oscillations. Moreover, we study bifurcations observed in the model incorporating the effect on a light-dark (LD) cycle and show that the waveform of the periodic variation in the light-induced parameter has a marked influence on the global bifurcation structure or the type of dynamic behavior resulting from the forcing term of the circadian oscillator by the LD cycles.

摘要

几乎在所有生物体中都能观察到周期约为24小时的昼夜节律振荡,这是一种显著的生物节律。在本文中,我们研究了果蝇昼夜节律振荡器模型中产生的各种分岔现象。在果蝇中,已知两种蛋白质PER和TIM水平的昼夜节律振荡是由PER-TIM复合物对编码这两种蛋白质的per和tim基因的表达施加的负反馈引起的。为了研究果蝇中蛋白质的昼夜节律振荡,人们提出了一个数学模型。该模型不仅可以解释在诸如持续黑暗等环境条件下的规则昼夜节律振荡,还能产生包括混沌和双节律性在内的更复杂的振荡现象。通过使用川上方法计算分岔,我们得到了与稳定和不稳定不变集相关的详细分岔图,并确定了模型产生复杂振荡以及规则昼夜节律振荡的参数区域。此外,我们研究了在纳入光暗(LD)周期影响的模型中观察到的分岔,并表明光诱导参数的周期性变化波形对由LD周期引起的昼夜节律振荡器强迫项所导致的全局分岔结构或动态行为类型有显著影响。

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