Institute of Theoretical Biology, Humboldt-University Berlin, Invalidenstr. 43, D-10115 Berlin, Germany.
J Exp Bot. 2012 Mar;63(6):2259-74. doi: 10.1093/jxb/ers018.
Cyanobacteria are phototrophic microorganisms of global importance and have recently attracted increasing attention due to their capability to convert sunlight and atmospheric CO(2) directly into organic compounds, including carbon-based biofuels. The utilization of cyanobacteria as a biological chassis to generate third-generation biofuels would greatly benefit from an increased understanding of cyanobacterial metabolism and its interplay with other cellular processes. In this respect, metabolic modelling has been proposed as a way to overcome the traditional trial and error methodology that is often employed to introduce novel pathways. In particular, flux balance analysis and related methods have proved to be powerful tools to investigate the organization of large-scale metabolic networks-with the prospect of predicting modifications that are likely to increase the yield of a desired product and thereby to streamline the experimental progress and avoid futile avenues. This contribution seeks to describe the utilization of metabolic modelling as a research tool to understand the metabolism and phototrophic growth of cyanobacteria. The focus of the contribution is on a mathematical description of the metabolic network of Synechocystis sp. PCC 6803 and its analysis using constraint-based methods. A particular challenge is to integrate the description of the metabolic network with other cellular processes, such as the circadian clock, the photosynthetic light reactions, carbon concentration mechanism, and transcriptional regulation-aiming at a predictive model of a cyanobacterium in silico.
蓝藻是具有全球重要性的光合微生物,由于其将阳光和大气中的 CO(2) 直接转化为有机化合物的能力,包括碳基生物燃料,最近引起了越来越多的关注。利用蓝藻作为生物底盘来生成第三代生物燃料,将大大得益于对蓝藻代谢及其与其他细胞过程相互作用的深入了解。在这方面,代谢建模已被提议作为一种克服传统试错方法的手段,这种方法通常用于引入新途径。特别是通量平衡分析和相关方法已被证明是研究大规模代谢网络组织的有力工具——有望预测可能提高所需产物产量的修饰,从而简化实验进展并避免徒劳无益的途径。本贡献旨在描述代谢建模作为一种研究工具,用于理解蓝藻的代谢和光合生长。本贡献的重点是用数学方法描述 Synechocystis sp. PCC 6803 的代谢网络,并使用基于约束的方法对其进行分析。一个特别的挑战是将代谢网络的描述与其他细胞过程(如生物钟、光合作用的光反应、碳浓度机制和转录调控)集成在一起——旨在对蓝藻进行计算机模拟的预测模型。