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首页> 外文期刊>BMC Systems Biology >Resource constrained flux balance analysis predicts selective pressure on the global structure of metabolic networks
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Resource constrained flux balance analysis predicts selective pressure on the global structure of metabolic networks

机译:资源受限的通量平衡分析预测对代谢网络整体结构的选择性压力

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A universal feature of metabolic networks is their hourglass or bow-tie structure on cellular level. This architecture reflects the conversion of multiple input nutrients into multiple biomass components via a small set of precursor metabolites. However, it is yet unclear to what extent this structural feature is the result of natural selection. We extend flux balance analysis to account for limited cellular resources. Using this model, optimal structure of metabolic networks can be calculated for different environmental conditions. We observe a significant structural reshaping of metabolic networks for a toy-network and E. coli core metabolism if we increase the share of invested resources for switching between different nutrient conditions. Here, hub nodes emerge and the optimal network structure becomes bow-tie-like as a consequence of limited cellular resource constraint. We confirm this theoretical finding by comparing the reconstructed metabolic networks of bacterial species with respect to their lifestyle. We show that bow-tie structure can give a system-level fitness advantage to organisms that live in highly competitive and fluctuating environments. Here, limitation of cellular resources can lead to an efficiency-flexibility tradeoff where it pays off for the organism to shorten catabolic pathways if they are frequently activated and deactivated. As a consequence, generalists that shuttle between diverse environmental conditions should have a more predominant bow-tie structure than specialists that visit just a few isomorphic habitats during their life cycle.
机译:代谢网络的普遍特征是它们在细胞水平上的沙漏或领结结构。这种结构反映了通过少量前体代谢物将多种输入营养物转化为多种生物质成分的过程。但是,尚不清楚该结构特征在多大程度上是自然选择的结果。我们扩展通量平衡分析以解决有限的蜂窝资源。使用该模型,可以针对不同的环境条件计算出最佳的代谢网络结构。如果我们增加了在不同养分条件之间切换所投入资源的份额,我们会观察到玩具网络和大肠杆菌核心代谢的代谢网络发生重大的结构重塑。在此,由于有限的蜂窝资源限制,出现了集线器节点,并且最佳网络结构变成了领结状。我们通过比较细菌物种相对其生活方式的重建代谢网络来证实这一理论发现。我们表明,领结结构可以为生活在竞争激烈且瞬息万变的环境中的生物提供系统级的健身优势。在这里,细胞资源的限制会导致效率-灵活性的折衷,如果微生物经常被激活和失活,它就会为有机体缩短分解代谢途径带来回报。结果,与在生命周期中仅探访少数同构生境的专家相比,在不同环境条件之间穿梭的通才应该具有更主要的领结结构。

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