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Oscillatory model of crassulacean acid metabolism with a dynamic hysteresis switch

机译:具有动态磁滞开关的头孢烷酸代谢的振荡模型

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The mechanism of endogenous circadian photosynthesis oscillations of plants performing crassulacean acid metabolism (CAM) is investigated in terms of a nonlinear theoretical model. Unlike previous CAM models containing a discrete element, we use throughout continuous time differential equations which more adequately reflect the CAM dynamics. By incorporating results from both a complementary and a continuous membrane model, a detailed description of the molecular malate transport in and out of the vacuole through the tonoplast membrane is achieved. Our analysis shows that the memebrane effectively acts as a hysteresis switch regulating the oscillations. It thus provides a molecular basis for the circadian clock. The model shows regular endogenous limit cycle oscillations that are stable for a wide range of temperatures, in a manner that complies well with experimental data. The circadian period length is explained simply in terms of the filling time of the vacuole. The results emphasize the central role of membrane dynamics for the generation of circadian oscillations and thus have general relevance for the explanation of biological clocks.
机译:根据非线性理论模型,研究了进行十字绣果酸代谢(CAM)的植物的内源性昼夜节律光合作用振荡机制。与以前的包含离散元素的CAM模型不同,我们在整个连续时间微分方程中使用了更充分反映CAM动态的方程。通过合并来自互补膜模型和连续膜模型的结果,可以实现对苹果酸通过液泡膜的进出液泡的详细描述。我们的分析表明,膜有效地充当了调节振荡的磁​​滞开关。因此,它为生物钟提供了分子基础。该模型显示出规律的内生极限循环振荡,该振荡对于各种温度范围都稳定,并且与实验数据吻合良好。昼夜节律周期的长度仅根据液泡的填充时间来解释。结果强调了膜动力学在生物钟振荡产生中的核心作用,因此与生物钟的解释具有普遍的相关性。

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