A Multiscale Spatiotemporal Model Including a Switch from Aerobic to Anaerobic Metabolism Reproduces Succession in

David M Versluis1, Ruud Schoemaker2, Ellen Looijesteijn2

  • 1Leiden University, Institute of Biology, Leiden, The Netherlands.

Msystems
|September 1, 2022
PubMed

Insights

Infant gut microbiota succession is influenced by oxygen levels. Lower oxygen promotes beneficial Bifidobacterium species dominance, crucial for infant health and immune modulation.

Area of Science:

  • Microbiology
  • Computational Biology
  • Systems Biology

Background:

  • The human intestinal microbiota establishes early in life, impacting host health.
  • Facultative anaerobes like Enterobacteriaceae initially dominate, followed by strict anaerobes such as Bifidobacterium species.
  • Early Bifidobacterium colonization is linked to health benefits, including pathogen inhibition and immune modulation.

Purpose of the Study:

  • To investigate if oxygen depletion is sufficient to drive the transition to Bifidobacterium species dominance.
  • To develop a multiscale mathematical model simulating infant gut microbial ecology.
  • To explore the influence of environmental factors on infant microbiota succession.

Main Methods:

  • Developed a multiscale mathematical model incorporating metabolism, spatial dynamics, and cross-feeding.
  • Utilized AGORA metabolic network data for simulating species competition.
  • Employed flux balance analysis to predict metabolic strategies.

Main Results:

  • Model predicts that varying intracolonic oxygen levels explain individual differences in microbiota succession.
  • Higher oxygen levels delay the dominance of Bifidobacterium species.
  • Bifidobacterium species achieve dominance by utilizing the bifid shunt for rapid growth at high lactose concentrations.

Conclusions:

  • Intracolonic oxygen availability is a key factor in infant gut microbiota composition.
  • The computational model provides a framework for testing hypotheses on microbial colonization and succession.
  • Individual variations in oxygen levels can lead to diverse infant microbiota profiles, impacting health outcomes.

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