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Published on: February 27, 2011
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.
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.
Abstract:
The human intestinal microbiota starts to form immediately after birth and is important for the health of the host. During the first days, facultatively anaerobic bacterial species generally dominate, such as Enterobacteriaceae. These are succeeded by strictly anaerobic species, particularly Bifidobacterium species. An early transition to Bifidobacterium species is associated with health benefits; for example, Bifidobacterium species repress growth of pathogenic competitors and modulate the immune response. Succession to Bifidobacterium is thought to be due to consumption of intracolonic oxygen present in newborns by facultative anaerobes, including Enterobacteriaceae. To study if oxygen depletion suffices for the transition to Bifidobacterium species, here we introduced a multiscale mathematical model that considers metabolism, spatial bacterial population dynamics, and cross-feeding. Using publicly available metabolic network data from the AGORA collection, the model simulates ab initio the competition of strictly and facultatively anaerobic species in a gut-like environment under the influence of lactose and oxygen. The model predicts that individual differences in intracolonic oxygen in newborn infants can explain the observed individual variation in succession to anaerobic species, in particular Bifidobacterium species. Bifidobacterium species became dominant in the model by their use of the bifid shunt, which allows Bifidobacterium to switch to suboptimal yield metabolism with fast growth at high lactose concentrations, as predicted here using flux balance analysis. The computational model thus allows us to test the internal plausibility of hypotheses for bacterial colonization and succession in the infant colon. IMPORTANCE The composition of the infant microbiota has a great impact on infant health, but its controlling factors are still incompletely understood. The frequently dominant anaerobic Bifidobacterium species benefit health, e.g., they can keep harmful competitors under control and modulate the intestinal immune response. Controlling factors could include nutritional composition and intestinal mucus composition, as well as environmental factors, such as antibiotics. We introduce a modeling framework of a metabolically realistic intestinal microbial ecology in which hypothetical scenarios can be tested and compared. We present simulations that suggest that greater levels of intraintestinal oxygenation more strongly delay the dominance of Bifidobacterium species, explaining the observed variety of microbial composition and demonstrating the use of the model for hypothesis generation. The framework allowed us to test a variety of controlling factors, including intestinal mixing and transit time. Future versions will also include detailed modeling of oligosaccharide and mucin metabolism.
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