English

Inferring microbial interactions with their environment from genomic and metagenomic data

Quantitative Methods 2023-11-09 v2

Abstract

Microbial communities assemble through a complex set of interactions between microbes and their environment, and the resulting metabolic impact on the host ecosystem can be profound. Microbial activity is known to impact human health, plant growth, water quality, and soil carbon storage which has lead to the development of many approaches and products meant to manipulate the microbiome. In order to understand, predict, and improve microbial community engineering, genome-scale modeling techniques have been developed to translate genomic data into inferred microbial dynamics. However, these techniques rely heavily on simulation to draw conclusions which may vary with unknown parameters or initial conditions, rather than more robust qualitative analysis. To better understand microbial community dynamics using genome-scale modeling, we provide a tool to investigate the network of interactions between microbes and environmental metabolites over time. Using our previously developed algorithm for simulating microbial communities from genome-scale metabolic models (GSMs), we infer the set of microbe-metabolite interactions within a microbial community in a particular environment. Because these interactions depend on the available environmental metabolites, we refer to the networks that we infer as \emph{metabolically contextualized}, and so name our tool MetConSIN: \underline{Met}abolically \underline{Con}textualized \underline{S}pecies \underline{I}nteraction \underline{N}etworks.

Keywords

Cite

@article{arxiv.2307.02624,
  title  = {Inferring microbial interactions with their environment from genomic and metagenomic data},
  author = {James D. Brunner and Laverne A. Gallegos-Graves and Marie E. Kroeger},
  journal= {arXiv preprint arXiv:2307.02624},
  year   = {2023}
}

Comments

27 pages, 10 figure, 4 tables

R2 v1 2026-06-28T11:23:09.610Z