Department of Mathematical Sciences, Chalmers University of Technology, Gothenburg, Sweden.
Department of Mathematical Sciences, University of Gothenburg, Gothenburg, Sweden.
PLoS One. 2022 Oct 13;17(10):e0276112. doi: 10.1371/journal.pone.0276112. eCollection 2022.
Flux balance analysis (FBA) is a powerful tool to study genome-scale models of the cellular metabolism, based on finding the optimal flux distributions over the network. While the objective function is crucial for the outcome, its choice, even though motivated by evolutionary arguments, has not been directly connected to related measures. Here, we used an available multi-scale mathematical model of yeast replicative ageing, integrating cellular metabolism, nutrient sensing and damage accumulation, to systematically test the effect of commonly used objective functions on features of replicative ageing in budding yeast, such as the number of cell divisions and the corresponding time between divisions. The simulations confirmed that assuming maximal growth is essential for reaching realistic lifespans. The usage of the parsimonious solution or the additional maximisation of a growth-independent energy cost can improve lifespan predictions, explained by either increased respiratory activity using resources otherwise allocated to cellular growth or by enhancing antioxidative activity, specifically in early life. Our work provides a new perspective on choosing the objective function in FBA by connecting it to replicative ageing.
通量平衡分析(FBA)是一种强大的工具,可基于网络上的最优通量分布来研究细胞代谢的基因组规模模型。虽然目标函数对于结果至关重要,但即使其选择受到进化论点的启发,但尚未直接与相关措施联系起来。在这里,我们使用了可用的酵母复制衰老的多尺度数学模型,该模型整合了细胞代谢,营养感应和损伤积累,以系统地测试常用目标函数对出芽酵母复制衰老特征的影响,例如细胞分裂的数量和相应的分裂时间之间。模拟结果证实,假设最大生长对于达到现实的寿命至关重要。使用节省的解决方案或额外最大化与生长无关的能量成本的使用可以改善寿命预测,这可以通过将原本分配给细胞生长的资源用于增加呼吸作用来解释,或者通过增强抗氧化活性来解释,特别是在早期。我们的工作通过将其与复制衰老联系起来,为在 FBA 中选择目标函数提供了新的视角。