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van Uden, S.

Publications and source records attributed to van Uden, S..

2 recordsLinked to original sources

Gut3Gel as an in vitro model to investigate dietary modulation of the intestinal microbiota: An inulin supplementation case study

The intestinal microbiota plays a key role in human health, influencing digestion, immunity, and metabolism. While factors such as genetics and medications shape its composition, diet remains a primary driver of microbial modulation. Despite growing interest in using dietary interventions to beneficially alter the intestinal microbiota, assessing their effects in humans is challenging due to individual variability and the complexity of in vivo systems. This study explores Gut3Gel gradient colonic (G3GG) preclinical model as a tool to assess its representativeness on studying the effect of inulin supplementation on the intestinal microbiota of five healthy individuals compared to clinical evaluation studies. Significant inter-individual variability in baseline microbiota composition was observed, which strongly influenced microbiota response to inulin. While inulin supplementation led to a general decrease in alpha diversity, it significantly increased the abundance of health-associated genera such as Bifidobacterium and Lacticaseibacillus, along with enhanced microbial metabolic activity. Despite the intrinsic selectivity of G3GG for beneficial microbes, the model successfully captured inulins prebiotic effects and inter-individual differences, underscoring its relevance as a physiologically relevant high throughput tool for evaluating microbiota-targeting compounds and supporting personalized nutrition strategies.

microbiology↗

Gut3Gel: A High Throughput Mucus Model for Culturing Human Intestinal Microbiota

The human intestinal microbiota plays a crucial role in health and disease, yet recreating its complex interactions in vitro remains a significant challenge. Gut3Gel introduced herein as a novel in vitro mucus model, designed for culturing complex microbial communities without the need for anaerobic conditions. Intestinal microbiota samples from five donors were individually inoculated in Gut3Gel and cultured for 72 hours. Taxonomic composition assessment revealed that Gut3Gel sustains diverse microbial species and particularly promotes the growth of mucus-associated bacteria including Bifidobacterium, Lactobacillus, and Faecalibacterium. Microbial metabolic activity within Gut3Gel was confirmed by the increased production of acetate and butyrate, as well as of exopolysaccharides. Gut3Gel reproduces physiological features of intestinal mucus, providing a reproducible and scalable culturing platform. These features make Gut3Gel a promising tool for advancing microbiota research with potential applications in drug screening, microbiome mining, and high throughput testing of microbiome-modulating molecules.

microbiology↗