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微生物群落拥挤状况和代谢变异性的时空建模

Spatio-temporal modeling of the crowding conditions and metabolic variability in microbial communities.

作者信息

Angeles-Martinez Liliana, Hatzimanikatis Vassily

机构信息

Laboratory of Computational Systems Biotechnology, École Polytechnique Fédérale de Lausanne, EPFL, Lausanne, Switzerland.

出版信息

PLoS Comput Biol. 2021 Jul 22;17(7):e1009140. doi: 10.1371/journal.pcbi.1009140. eCollection 2021 Jul.

Abstract

The metabolic capabilities of the species and the local environment shape the microbial interactions in a community either through the exchange of metabolic products or the competition for the resources. Cells are often arranged in close proximity to each other, creating a crowded environment that unevenly reduce the diffusion of nutrients. Herein, we investigated how the crowding conditions and metabolic variability among cells shape the dynamics of microbial communities. For this, we developed CROMICS, a spatio-temporal framework that combines techniques such as individual-based modeling, scaled particle theory, and thermodynamic flux analysis to explicitly incorporate the cell metabolism and the impact of the presence of macromolecular components on the nutrients diffusion. This framework was used to study two archetypical microbial communities (i) Escherichia coli and Salmonella enterica that cooperate with each other by exchanging metabolites, and (ii) two E. coli with different production level of extracellular polymeric substances (EPS) that compete for the same nutrients. In the mutualistic community, our results demonstrate that crowding enhanced the fitness of cooperative mutants by reducing the leakage of metabolites from the region where they are produced, avoiding the resource competition with non-cooperative cells. Moreover, we also show that E. coli EPS-secreting mutants won the competition against the non-secreting cells by creating less dense structures (i.e. increasing the spacing among the cells) that allow mutants to expand and reach regions closer to the nutrient supply point. A modest enhancement of the relative fitness of EPS-secreting cells over the non-secreting ones were found when the crowding effect was taken into account in the simulations. The emergence of cell-cell interactions and the intracellular conflicts arising from the trade-off between growth and the secretion of metabolites or EPS could provide a local competitive advantage to one species, either by supplying more cross-feeding metabolites or by creating a less dense neighborhood.

摘要

该物种的代谢能力和当地环境通过代谢产物的交换或资源竞争来塑造群落中的微生物相互作用。细胞通常彼此紧密排列,形成一个拥挤的环境,不均匀地减少了营养物质的扩散。在此,我们研究了细胞间的拥挤条件和代谢变异性如何塑造微生物群落的动态。为此,我们开发了CROMICS,这是一个时空框架,它结合了基于个体的建模、标度粒子理论和热力学通量分析等技术,以明确纳入细胞代谢以及大分子成分的存在对营养物质扩散的影响。该框架用于研究两个典型的微生物群落:(i)通过交换代谢物相互协作的大肠杆菌和肠炎沙门氏菌,以及(ii)两种具有不同胞外聚合物(EPS)产生水平且竞争相同营养物质的大肠杆菌。在互利共生群落中,我们的结果表明,拥挤通过减少代谢物从其产生区域的泄漏,增强了合作突变体的适应性,避免了与非合作细胞的资源竞争。此外,我们还表明,分泌EPS的大肠杆菌突变体通过形成密度较小的结构(即增加细胞间间距)赢得了与非分泌细胞的竞争,这使得突变体能够扩展并到达更接近营养供应点的区域。在模拟中考虑拥挤效应时,发现分泌EPS的细胞相对于非分泌细胞的相对适应性有适度提高。细胞间相互作用的出现以及代谢物或EPS分泌与生长之间权衡产生的细胞内冲突,可能通过提供更多交叉喂养的代谢物或创造密度较小的邻域,为一个物种提供局部竞争优势。

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