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Microbial Metabolism Shifts Towards an Adverse Profile with Supplementary Iron in the TIM-2 In vitro Model of the
Guus A M Kortman1, Bas E Dutilh2, Annet J H Maathuis3
1Department of Laboratory Medicine - Translational Metabolic Laboratory, Radboud Institute for Molecular Life Sciences, Radboud University Medical Center Nijmegen, Netherlands.
Abstract:
Oral iron administration in African children can increase the risk for infections. However, it remains unclear to what extent supplementary iron affects the intestinal microbiome. We here explored the impact of iron preparations on microbial growth and metabolism in the well-controlled TNO's in vitro model of the large intestine (TIM-2). The model was inoculated with a human microbiota, without supplementary iron, or with 50 or 250 μmol/L ferrous sulfate, 50 or 250 μmol/L ferric citrate, or 50 μmol/L hemin. High resolution responses of the microbiota were examined by 16S rDNA pyrosequencing, microarray analysis, and metagenomic sequencing. The metabolome was assessed by fatty acid quantification, gas chromatography-mass spectrometry (GC-MS), and (1)H-NMR spectroscopy. Cultured intestinal epithelial Caco-2 cells were used to assess fecal water toxicity. Microbiome analysis showed, among others, that supplementary iron induced decreased levels of Bifidobacteriaceae and Lactobacillaceae, while it caused higher levels of Roseburia and Prevotella. Metagenomic analyses showed an enrichment of microbial motility-chemotaxis systems, while the metabolome markedly changed from a saccharolytic to a proteolytic profile in response to iron. Branched chain fatty acids and ammonia levels increased significantly, in particular with ferrous sulfate. Importantly, the metabolite-containing effluent from iron-rich conditions showed increased cytotoxicity to Caco-2 cells. Our explorations indicate that in the absence of host influences, iron induces a more hostile environment characterized by a reduction of microbes that are generally beneficial, and increased levels of bacterial metabolites that can impair the barrier function of a cultured intestinal epithelial monolayer.
Insights
Oral iron supplements can alter the gut microbiome, reducing beneficial bacteria and increasing harmful metabolites. This can lead to increased intestinal toxicity, even without host factors, impacting gut health.
Area of Science:
- Microbiology
- Gastroenterology
- Nutritional Science
Background:
- Oral iron is crucial but linked to infections in African children.
- The impact of supplementary iron on the intestinal microbiome is not fully understood.
Purpose of the Study:
- To investigate the effects of different iron preparations on the human intestinal microbiome and its metabolites in vitro.
- To assess the potential cytotoxicity of iron-induced changes in the gut environment.
Main Methods:
- Utilized the TNO's in vitro large intestine model (TIM-2) with human microbiota.
- Administered ferrous sulfate, ferric citrate, or hemin at varying concentrations.
- Analyzed microbial composition (16S rDNA, metagenomics), metabolome (GC-MS, NMR), and Caco-2 cell cytotoxicity.
Main Results:
- Iron supplementation decreased beneficial Bifidobacteriaceae and Lactobacillaceae while increasing Roseburia and Prevotella.
- Shift from saccharolytic to proteolytic metabolism observed, with increased branched-chain fatty acids and ammonia.
- Effluent from iron-treated conditions demonstrated increased cytotoxicity to intestinal epithelial cells.
Conclusions:
- In vitro, iron alters the intestinal microbiome towards a less beneficial profile.
- Iron-induced metabolic changes create a more hostile gut environment, potentially impairing barrier function.
- Findings highlight the need for careful consideration of oral iron supplementation's impact on gut health.
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