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使用基因组规模模型探究合成二元微生物组内的种间代谢相互作用。

Probing interspecies metabolic interactions within a synthetic binary microbiome using genome-scale modeling.

作者信息

Badr Kiumars, He Q Peter, Wang Jin

机构信息

Department of Chemical Engineering, Auburn University, Auburn, AL 36849, USA.

出版信息

Microbiome Res Rep. 2024 May 27;3(3):31. doi: 10.20517/mrr.2023.70. eCollection 2024.

Abstract

Metabolic interactions within a microbial community play a key role in determining the structure, function, and composition of the community. However, due to the complexity and intractability of natural microbiomes, limited knowledge is available on interspecies interactions within a community. In this work, using a binary synthetic microbiome, a methanotroph-photoautotroph (M-P) coculture, as the model system, we examined different genome-scale metabolic modeling (GEM) approaches to gain a better understanding of the metabolic interactions within the coculture, how they contribute to the enhanced growth observed in the coculture, and how they evolve over time. Using batch growth data of the model M-P coculture, we compared three GEM approaches for microbial communities. Two of the methods are existing approaches: SteadyCom, a steady state GEM, and dynamic flux balance analysis (DFBA) Lab, a dynamic GEM. We also proposed an improved dynamic GEM approach, DynamiCom, for the M-P coculture. SteadyCom can predict the metabolic interactions within the coculture but not their dynamic evolutions; DFBA Lab can predict the dynamics of the coculture but cannot identify interspecies interactions. DynamiCom was able to identify the cross-fed metabolite within the coculture, as well as predict the evolution of the interspecies interactions over time. A new dynamic GEM approach, DynamiCom, was developed for a model M-P coculture. Constrained by the predictions from a validated kinetic model, DynamiCom consistently predicted the top metabolites being exchanged in the M-P coculture, as well as the establishment of the mutualistic N-exchange between the methanotroph and cyanobacteria. The interspecies interactions and their dynamic evolution predicted by DynamiCom are supported by ample evidence in the literature on methanotroph, cyanobacteria, and other cyanobacteria-heterotroph cocultures.

摘要

微生物群落内的代谢相互作用在决定群落的结构、功能和组成方面起着关键作用。然而,由于天然微生物群的复杂性和难以处理性,关于群落内物种间相互作用的知识有限。在这项工作中,我们使用二元合成微生物群,即甲烷营养菌 - 光合自养菌(M - P)共培养物作为模型系统,研究了不同的基因组规模代谢建模(GEM)方法,以更好地理解共培养物中的代谢相互作用、它们如何促进共培养物中观察到的生长增强以及它们如何随时间演变。利用模型M - P共培养物的分批生长数据,我们比较了三种用于微生物群落的GEM方法。其中两种方法是现有方法:稳态GEM的SteadyCom和动态GEM的动态通量平衡分析(DFBA)Lab。我们还为M - P共培养物提出了一种改进的动态GEM方法DynamiCom。SteadyCom可以预测共培养物中的代谢相互作用,但不能预测其动态演变;DFBA Lab可以预测共培养物的动态,但不能识别物种间相互作用。DynamiCom能够识别共培养物中的交叉喂养代谢物,并预测物种间相互作用随时间的演变。一种新的动态GEM方法DynamiCom被开发用于模型M - P共培养物。受经过验证的动力学模型预测的约束,DynamiCom始终预测M - P共培养物中交换的主要代谢物,以及甲烷营养菌和蓝细菌之间互利氮交换的建立。DynamiCom预测的物种间相互作用及其动态演变得到了关于甲烷营养菌、蓝细菌和其他蓝细菌 - 异养菌共培养物的文献中的充分证据支持。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b0ea/11480724/c3ca206d09ae/mrr-3-3-31.fig.1.jpg

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