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Environmental versatility promotes modularity in genome-scale metabolic networks

机译:环境的多功能性促进了基因组规模代谢网络的模块化

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摘要

BackgroundThe ubiquity of modules in biological networks may result from an evolutionary benefit of a modular organization. For instance, modularity may increase the rate of adaptive evolution, because modules can be easily combined into new arrangements that may benefit their carrier. Conversely, modularity may emerge as a by-product of some trait. We here ask whether this last scenario may play a role in genome-scale metabolic networks that need to sustain life in one or more chemical environments. For such networks, we define a network module as a maximal set of reactions that are fully coupled, i.e., whose fluxes can only vary in fixed proportions. This definition overcomes limitations of purely graph based analyses of metabolism by exploiting the functional links between reactions. We call a metabolic network viable in a given chemical environment if it can synthesize all of an organism's biomass compounds from nutrients in this environment. An organism's metabolism is highly versatile if it can sustain life in many different chemical environments. We here ask whether versatility affects the modularity of metabolic networks.
机译:背景技术生物网络中模块的普遍存在可能是由于模块化组织的进化优势所致。例如,模块化可以增加自适应演进的速率,因为模块可以容易地组合成可能有益于其载体的新布置。相反,模块化可能是某些特性的副产品。我们在这里问这最后一种情况是否可能在需要维持一个或多个化学环境中生命的基因组规模的代谢网络中起作用。对于此类网络,我们将网络模块定义为完全耦合的最大反应集,即,其通量只能以固定比例变化。通过利用反应之间的功能联系,该定义克服了纯粹基于图谱的代谢分析的局限性。如果代谢网络可以从环境中的养分中合成生物体的所有生物质化合物,那么我们称之为在特定化学环境中可行的代谢网络。如果有机体可以在许多不同的化学环境中维持生命,那么其新陈代谢具有很高的通用性。我们在这里询问多功能性是否会影响代谢网络的模块性。

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