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OptCom: A Multi-Level Optimization Framework for the Metabolic Modeling and Analysis of Microbial Communities

机译:OptCom:用于微生物群落代谢建模和分析的多层优化框架

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摘要

Microorganisms rarely live isolated in their natural environments but rather function in consolidated and socializing communities. Despite the growing availability of high-throughput sequencing and metagenomic data, we still know very little about the metabolic contributions of individual microbial players within an ecological niche and the extent and directionality of interactions among them. This calls for development of efficient modeling frameworks to shed light on less understood aspects of metabolism in microbial communities. Here, we introduce OptCom, a comprehensive flux balance analysis framework for microbial communities, which relies on a multi-level and multi-objective optimization formulation to properly describe trade-offs between individual vs. community level fitness criteria. In contrast to earlier approaches that rely on a single objective function, here, we consider species-level fitness criteria for the inner problems while relying on community-level objective maximization for the outer problem. OptCom is general enough to capture any type of interactions (positive, negative or combinations thereof) and is capable of accommodating any number of microbial species (or guilds) involved. We applied OptCom to quantify the syntrophic association in a well-characterized two-species microbial system, assess the level of sub-optimal growth in phototrophic microbial mats, and elucidate the extent and direction of inter-species metabolite and electron transfer in a model microbial community. We also used OptCom to examine addition of a new member to an existing community. Our study demonstrates the importance of trade-offs between species- and community-level fitness driving forces and lays the foundation for metabolic-driven analysis of various types of interactions in multi-species microbial systems using genome-scale metabolic models.
机译:微生物很少生活在自然环境中,而是在巩固和社会化的社区中发挥作用。尽管高通量测序和宏基因组学数据的可用性越来越高,但我们仍然对微生物生态位内单个微生物参与者的代谢贡献以及它们之间相互作用的程度和方向了解甚少。这就要求开发有效的建模框架,以阐明微生物群落中新陈代谢少见的方面。在这里,我们介绍OptCom,这是一个针对微生物群落的全面通量平衡分析框架,该框架依赖于多层次和多目标的优化公式来正确描述个体水平与群落水平适合度标准之间的取舍。与依靠单一目标函数的早期方法相反,在这里,我们考虑内部问题的物种级别适应性标准,同时依靠外部问题的社区级别目标最大化。 OptCom具有足够的通用性,可以捕获任何类型的相互作用(正,负或它们的组合),并且能够容纳任何数量的涉及的微生物(或行会)。我们应用OptCom来量化特征明确的两种物种微生物系统中的同养关系,评估光养微生物垫的次佳生长水平,并阐明模型微生物中种间代谢物和电子转移的程度和方向社区。我们还使用OptCom来研究将新成员添加到现有社区中的情况。我们的研究证明了在物种和社区水平的适应性驱动力之间进行权衡的重要性,并为使用基因组规模的代谢模型对多物种微生物系统中各种类型相互作用的代谢驱动分析奠定了基础。

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