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From steady-state to synchronized yeast glycolytic oscillations II: model validation.

机译:从稳态到同步酵母糖酵解振荡II:模型验证。

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摘要

In an accompanying paper [du Preez et[NON-BREAKING SPACE]al., (2012) FEBS J279, 2810-2822], we adapt an existing kinetic model for steady-state yeast glycolysis to simulate limit-cycle oscillations. Here we validate the model by testing its capacity to simulate a wide range of experiments on dynamics of yeast glycolysis. In addition to its description of the oscillations of glycolytic intermediates in intact cells and the rapid synchronization observed when mixing out-of-phase oscillatory cell populations (see accompanying paper), the model was able to predict the Hopf bifurcation diagram with glucose as the bifurcation parameter (and one of the bifurcation points with cyanide as the bifurcation parameter), the glucose- and acetaldehyde-driven forced oscillations, glucose and acetaldehyde quenching, and cell-free extract oscillations (including complex oscillations and mixed-mode oscillations). Thus, the model was compliant, at least qualitatively, with the majority of available experimental data for glycolytic oscillations in yeast. To our knowledge, this is the first time that a model for yeast glycolysis has been tested against such a wide variety of independent data sets. Database The mathematical models described here have been submitted to the JWS Online Cellular Systems Modelling Database and can be accessed at http://jjj.biochem.sun.ac.za/database/dupreez/index.html.
机译:在随附的论文中[du Preez等人,[NON-BREAKING SPACE] al。,(2012)FEBS J279,2810-2822],我们采用了稳态酵母糖酵解的现有动力学模型来模拟极限循环振荡。在这里,我们通过测试其模拟酵母糖酵解动力学实验的能力来验证模型。除了描述完整细胞中糖酵解中间体的振荡以及混合异相振荡细胞群时观察到的快速同步(参见随附文件)外,该模型还能够预测以葡萄糖为分叉的Hopf分叉图参数(以及以氰化物为分叉参数的分叉点之一),葡萄糖和乙醛驱动的强迫振荡,葡萄糖和乙醛猝灭以及无细胞提取物振荡(包括复数振荡和混合模式振荡)。因此,该模型至少在质量上与酵母中糖酵解振荡的大多数可用实验数据相符。据我们所知,这是首次针对如此众多的独立数据集测试了酵母糖酵解模型。数据库此处描述的数学模型已提交到JWS在线蜂窝系统建模数据库,可以从http://jjj.biochem.sun.ac.za/database/dupreez/index.html进行访问。

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