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Large-scale network connectivity of Synechococcus elongatus PCC7942 metabolism

机译:延伸聚球菌PCC7942代谢的大规模网络连接

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From the topological perspective, the availability of genome-scale metabolic network models assists to the large-scale analysis of the metabolites connections, and thus, the evaluation of the cell metabolic capabilities to produce high added-value molecules. In this study, a comprehensive connectivity analysis of the published genome-scale metabolic model of Synechococcus elongatus PCC7942 (iSyf715) is presented, highlighting the most connected metabolites of this biological system. To get a suitable fit, the connectivity distribution of the metabolic model is evaluated using the cumulative distribution function (Pareto's law), verifying a power-law distribution in iSyf715 metabolic network (3=2.203). Additionally, through the comparison of the connectivity distributions in different microbial metabolic network models, the scale-free behavior of these metabolic networks is verified. The prediction of the metabolic network connectivity could supports the determination of the underlying functioning principles of certain cellular processes.
机译:从拓扑学的角度来看,基因组规模的代谢网络模型的可用性有助于对代谢物连接的大规模分析,从而有助于评估产生高附加值分子的细胞代谢能力。在这项研究中,提供了对已发表的长形突触球菌PCC7942(iSyf715)的基因组规模代谢模型的全面连通性分析,突出了该生物系统中最相关的代谢产物。为了获得合适的拟合,使用累积分布函数(帕累托定律)评估代谢模型的连通性分布,从而验证iSyf715代谢网络中的幂律分布(3 = 2.203)。此外,通过比较不同微生物代谢网络模型中的连通性分布,可以验证这些代谢网络的无标度行为。代谢网络连通性的预测可以支持确定某些细胞过程的基本功能原理。

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