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Combining metabolic pathway analysis with evolutionary game theory. Explaining the occurrence of low-yield pathways by an analytic optimization approach

机译:将代谢途径分析与进化博弈论相结合。通过解析优化方法解释低收益途径的发生

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Elementary-mode analysis is a powerful method for detecting all potential pathways in a metabolic network and computing the associated molar yields. Metabolic pathways can be interpreted as different strategies of organisms. Thus, methods from Evolutionary Game Theory can be employed. In Flux Balance Analysis (FBA), it is usually assumed that molar yields of relevant products (such as biomass or ATP) have been maximized during evolution. This has been questioned on game-theoretical grounds. In particular, in situations that can be characterized as a Prisoner's Dilemma, maximization of flux is not in line with maximization of yield. Under other conditions (that is, for other parameter values of maximal velocities), a Harmony game can result, where the above two maximization criteria give the same result. Here, we analyse the optimal situations under varying conditions. In particular, we consider the case where the cell can allocate a certain amount of protein on several enzymes in a varying distribution and model this by a linear programming problem in which not only the rates but also the maximal velocities are variable. It turns out that in the case of low or moderate synthesis costs for the enzymes of the high-yield pathway, maximizing pathway flux is in line with maximizing molar yield while in the case of high costs, it is not. This may explain the observation that many cells such as striated muscle cells, tumour cells, activated lymphocytes and several yeasts do not reallocate protein away from glycolytic enzymes towards TCA cycle and respiratory chain enzymes, in spite of the higher efficiency of respiration. This provides a straightforward explanation of the Warburg effect in tumour cells.
机译:元素模式分析是检测代谢网络中所有潜在途径并计算相关摩尔产量的有效方法。代谢途径可以解释为生物体的不同策略。因此,可以采用进化博弈论的方法。在通量平衡分析(FBA)中,通常假设在进化过程中相关产品(例如生物质或ATP)的摩尔产量已达到最大。这已经从博弈论的角度受到质疑。特别是在可以描述为囚徒困境的情况下,通量的最大化与收益率的最大化并不一致。在其他条件下(即,对于最大速度的其他参数值),可以得出和谐游戏,其中上述两个最大化标准给出相同的结果。在这里,我们分析了在不同条件下的最佳情况。特别地,我们考虑细胞可以在几种酶上以一定的分布分配一定数量的蛋白质的情况,并通过线性规划问题对此进行建模,在线性规划问题中,速率和最大速度都是可变的。结果表明,在高产率途径的酶的合成成本较低或中等的情况下,最大化途径通量与最大化摩尔产率相符合,而在高成本情况下则并非如此。这可能解释了以下观察结果:尽管呼吸效率更高,但许多细胞(如横纹肌细胞,肿瘤细胞,活化的淋巴细胞和几种酵母菌)并未将蛋白质从糖酵解酶重新分配给TCA循环和呼吸链酶。这提供了沃堡对肿瘤细胞作用的直接解释。

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