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Detailing the optimality of photosynthesis in cyanobacteria through systems biology analysis

机译:通过系统生物学分析详述蓝细菌中光合作用的最佳状态

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摘要

Photosynthesis has recently gained considerable attention for its potential role in the development of renewable energy sources. Optimizing photosynthetic organisms for biomass or biofuel production will therefore require a systems understanding of photosynthetic processes. We reconstructed a high-quality genome-scale metabolic network for Synechocystis sp. PCC6803 that describes key photosynthetic processes in mechanistic detail. We performed an exhaustive in silico analysis of the reconstructed photosynthetic process under different light and inorganic carbon (Ci) conditions as well as under genetic perturbations. Our key results include the following. (i) We identified two main states of the photosynthetic apparatus: a Ci-limited state and a light-limited state. (ii) We discovered nine alternative electron flow pathways that assist the photosynthetic linear electron flow in optimizing the photosynthesis performance. (iii) A high degree of cooperativity between alternative pathways was found to be critical for optimal autotrophic metabolism. Although pathways with high photosynthetic yield exist for optimizing growth under suboptimal light conditions, pathways with low photosynthetic yield guarantee optimal growth under excessive light or Ci limitation. (iv) Photorespiration was found to be essential for the optimal photosynthetic process, clarifying its role in high-light acclimation. Finally, (v) an extremely high photosynthetic robustness drives the optimal autotrophic metabolism at the expense of metabolic versatility and robustness. The results and modeling approach presented here may promote a better understanding of the photosynthetic process. They can also guide bioengineering projects toward optimal biofuel production in photosynthetic organisms.
机译:光合作用由于其在可再生能源发展中的潜在作用,最近受到了广泛的关注。因此,优化用于生物质或生物燃料生产的光合生物将需要系统了解光合过程。我们为Synechocystis sp。重建了高质量的基因组规模的代谢网络。 PCC6803详细描述了关键的光合作用过程。我们在不同的光和无机碳(Ci)条件下以及在遗传扰动下对重建的光合作用过程进行了详尽的计算机模拟分析。我们的主要结果如下。 (i)我们确定了光合作用装置的两个主要状态:Ci限制状态和光限制状态。 (ii)我们发现了九种替代性电子流途径,这些途径可帮助光合线性电子流优化光合作用性能。 (iii)发现替代途径之间的高度协作性对于最佳自养代谢至关重要。尽管存在高光合产量的途径以优化在次优光照条件下的生长,但低光合产量的途径保证了在过量光照或Ci限制下的最佳生长。 (iv)发现光呼吸对于最佳的光合作用过程至关重要,这阐明了其在高光适应中的作用。最后,(v)极高的光合作用强度驱动了最佳的自养代谢,但以代谢的多功能性和强度为代价。本文介绍的结果和建模方法可以促进对光合作用过程的更好理解。他们还可以指导生物工程项目向光合生物中最佳生物燃料生产的方向发展。

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