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Metabolic modeling of C. sorokiniana diauxic heterotrophic growth

机译:C. sorokiniana辅助异养生长的代谢建模

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Microalgae are promising microorganisms for the production of numerous molecules of interest, such as pigments, proteins or triglycerides that can be turned into biofuels. Heterotrophic growth on wastes represents an interesting approach to achieve higher biomass concentrations, while reducing cost and improving the environmental footprint. Wastes generally consist of a mixt of diverse molecules. It is crucial to understand microalgal metabolism in such conditions, where switching between substrates might occur. Metabolic modeling has proven to be an efficient tool for understanding metabolism and guiding the optimization of biomass or target molecule production. Here, we focused on the metabolism of Chlorella sorokiniana growing heterotrophically on acetate and butyrate. The metabolism was represented by 163 metabolic reactions. The DRUM modeling framework, with a mildly relaxed quasi-steady-state assumption, was used to account for possible intracellular accumulation during switching between substrates. Six experiments were used to calibrate the model and eight experiments for the validation. The model efficiently predicted the experimental data, including the transient behavior. To the best of our knowledge, this is the first study to describe the dynamic metabolic fluxes of microalgae during heterotrophic and diauxic growth. It shows that an accurate model of metabolism can now be constructed, even in dynamic conditions, with the presence of several carbon substrates. It also opens new perspectives for the heterotrophic use of microalgae, especially for biofuel production from wastes.
机译:微藻是有前途的微生物,用于生产许多感兴趣的分子,例如可以变成生物燃料的颜料,蛋白质或甘油三酯。废物的异养生长是实现更高生物量浓度的有趣方法,同时降低成本并改善环境足迹。废物通常由多种分子的混合物组成。在这种条件下了解微藻代谢是至关重要的,其中可能发生基板之间的切换。代谢建模已被证明是理解新陈代谢和指导生物质或靶分子产生的优化的有效工具。在这里,我们专注于小摄影球菌生长在乙酸盐和丁酸盐上生长过的新陈代谢。新陈代谢由163个代谢反应表示。具有温和性放松的准稳态假设的鼓建模框架用于在基板之间切换期间可能的细胞内积聚。使用六个实验来校准模型和八个实验进行验证。该模型有效地预测了实验数据,包括瞬态行为。据我们所知,这是第一项研究在异养和杂营养生长期间描述微藻动态代谢势次的研究。结果表明,即使在动态条件下,现在可以在存在几种碳基材的情况下构建精确的代谢模型。它还开启了杂营养使用微藻的新视角,特别是对于废物的生物燃料生产。

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