School of Computing, Engineering and Digital Technologies, Teesside University, Middlesbrough, United Kingdom; Department of Biology, University of Padova, Padova, Italy.
Centre for Biomedicine, Hull York Medical School, Hull, United Kingdom.
Metab Eng. 2023 Mar;76:120-132. doi: 10.1016/j.ymben.2023.01.008. Epub 2023 Jan 28.
Multi-strain probiotics are widely regarded as effective products for improving gut microbiota stability and host health, providing advantages over single-strain probiotics. However, in general, it is unclear to what extent different strains would cooperate or compete for resources, and how the establishment of a common biofilm microenvironment could influence their interactions. In this work, we develop an integrative experimental and computational approach to comprehensively assess the metabolic functionality and interactions of probiotics across growth conditions. Our approach combines co-culture assays with genome-scale modelling of metabolism and multivariate data analysis, thus exploiting complementary data- and knowledge-driven systems biology techniques. To show the advantages of the proposed approach, we apply it to the study of the interactions between two widely used probiotic strains of Lactobacillus reuteri and Saccharomyces boulardii, characterising their production potential for compounds that can be beneficial to human health. Our results show that these strains can establish a mixed cooperative-antagonistic interaction best explained by competition for shared resources, with an increased individual exchange but an often decreased net production of amino acids and short-chain fatty acids. Overall, our work provides a strategy that can be used to explore microbial metabolic fingerprints of biotechnological interest, capable of capturing multifaceted equilibria even in simple microbial consortia.
多菌株益生菌被广泛认为是改善肠道微生物稳定性和宿主健康的有效产品,优于单菌株益生菌。然而,一般来说,不同菌株在资源方面是合作还是竞争,以及共同生物膜微环境的建立如何影响它们的相互作用,尚不清楚。在这项工作中,我们开发了一种综合的实验和计算方法,全面评估益生菌在不同生长条件下的代谢功能和相互作用。我们的方法将共培养测定与代谢的基因组规模建模和多元数据分析相结合,从而利用了互补的数据和知识驱动的系统生物学技术。为了展示所提出方法的优势,我们将其应用于研究两种广泛使用的益生菌乳杆菌和酿酒酵母之间的相互作用,表征它们对有益于人类健康的化合物的生产潜力。我们的结果表明,这些菌株可以建立一种混合的合作-拮抗相互作用,这可以最好地解释为对共享资源的竞争,个体交换增加,但氨基酸和短链脂肪酸的净产量通常降低。总的来说,我们的工作提供了一种可以用来探索具有生物技术意义的微生物代谢特征的策略,即使在简单的微生物群落中,也能够捕捉到多方面的平衡。