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Multi-omic Data Integration Elucidates Synechococcus Adaptation Mechanisms to Fluctuations in Light Intensity and Salinity

机译:多组学数据集成阐明了球菌对光强度和盐度波动的适应机制。

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Synechococcus sp. PCC 7002 is a fast-growing cyanobacterium which flourishes in freshwater and marine environments, owing to its ability to tolerate high light intensity and a wide range of salinities. Harnessing the properties of cyanobacteria and understanding their metabolic efficiency has become an imperative goal in recent years owing to their potential to serve as biocatalysts for the production of renewable biofuels. To improve characterisation of metabolic networks, genomescale models of metabolism can be integrated with multi-omic data to provide a more accurate representation of metabolic capability and refine phenotypic predictions. In this work, a heuristic pipeline is constructed for analysing a genome-scale metabolic model of Synechococcus sp. PCC 7002, which utilises flux balance analysis across multiple layers to observe flux response between conditions across four key pathways. Across various conditions, the detection of significant patterns and mechanisms to cope with fluctuations in light intensity and salinity provides insights into the maintenance of metabolic efficiency.
机译:粘球菌PCC 7002是一种快速生长的蓝细菌,由于其能够耐受高光强度和广泛的盐度而在淡水和海洋环境中蓬勃发展。近年来,利用蓝细菌的特性并了解其代谢效率已成为当务之急,因为它们具有用作生产可再生生物燃料的生物催化剂的潜力。为了改善代谢网络的表征,可以将代谢的基因组规模模型与多组学数据进行集成,以提供更准确的代谢能力表示并完善表型预测。在这项工作中,构建了启发式管道,用于分析Synechococcus sp。的基因组规模代谢模型。 PCC 7002,利用多层的通量平衡分析来观察四个关键路径之间条件之间的通量响应。在各种条件下,通过检测重要模式和机制来应对光强度和盐度的波动,可以洞悉维持代谢效率的方法。

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