Institute for Biology, Theoretical Biology (ITB), Humboldt-University of Berlin, Berlin, Germany.
Department of Adaptive Biotechnologies, Global Change Research Institute of the Czech Academy of Sciences, Brno, Czechia.
PLoS Comput Biol. 2024 Aug 5;20(8):e1012280. doi: 10.1371/journal.pcbi.1012280. eCollection 2024 Aug.
The metabolism of phototrophic cyanobacteria is an integral part of global biogeochemical cycles, and the capability of cyanobacteria to assimilate atmospheric CO2 into organic carbon has manifold potential applications for a sustainable biotechnology. To elucidate the properties of cyanobacterial metabolism and growth, computational reconstructions of genome-scale metabolic networks play an increasingly important role. Here, we present an updated reconstruction of the metabolic network of the cyanobacterium Synechocystis sp. PCC 6803 and its quantitative evaluation using flux balance analysis (FBA). To overcome limitations of conventional FBA, and to allow for the integration of experimental analyses, we develop a novel approach to describe light absorption and light utilization within the framework of FBA. Our approach incorporates photoinhibition and a variable quantum yield into the constraint-based description of light-limited phototrophic growth. We show that the resulting model is capable of predicting quantitative properties of cyanobacterial growth, including photosynthetic oxygen evolution and the ATP/NADPH ratio required for growth and cellular maintenance. Our approach retains the computational and conceptual simplicity of FBA and is readily applicable to other phototrophic microorganisms.
光能自养型蓝藻的代谢是全球生物地球化学循环的一个组成部分,而蓝藻将大气 CO2 同化为有机碳的能力在可持续生物技术方面具有多种潜在应用。为了阐明蓝藻代谢和生长的特性,基于基因组规模的代谢网络的计算重建发挥着越来越重要的作用。在这里,我们呈现了对Synechocystis sp. PCC 6803 的代谢网络的一个更新的重建,并使用通量平衡分析(FBA)对其进行了定量评估。为了克服传统 FBA 的局限性,并允许整合实验分析,我们在 FBA 的框架内开发了一种新的方法来描述光吸收和光利用。我们的方法将光抑制和可变量子产率纳入到光限制型光养生长的约束描述中。我们表明,所得到的模型能够预测蓝藻生长的定量特性,包括光合氧气释放以及生长和细胞维持所需的 ATP/NADPH 比。我们的方法保留了 FBA 的计算和概念简单性,并且易于应用于其他光能微生物。