Related Experiment Video
Updated: Mar 14, 2026

An In Vitro Batch-culture Model to Estimate the Effects of Interventional Regimens on Human Fecal Microbiota
Published on: July 31, 2019
Dynamic Gastrointestinal Simulation Reveals that Short-Term Mango Purée Feeding Modulates (Poly)phenol Metabolism,
Salud Cáceres-Jiménez1, Natalia Molinero2, Carolina Cueva2
1Departamento de Bromatología y Tecnología de los Alimentos, Campus Rabanales, Ed. Darwin-anexo Universidad de Córdoba, 14071 Córdoba, Spain.
Abstract:
This study evaluated the impact of gastrointestinal digestion and colonic fermentation on mango (poly)phenols and their influence on gut microbiota using the dynamic gastrointestinal simulator simgi®. The system was fed with 10 g/day of mango purée for five days, providing 89.5 μmol of phenolic compounds, and inoculated with fecal microbiota from three healthy donors. Samples from the stomach, small intestine, and colon (ascending, transverse and descending) were analysed by UHPLC-HRMS to identify parent compounds and metabolites. Microbial communities were profiled by 16S rRNA gene sequencing, while metabolic activity was assessed through short-chain fatty acid (SCFA) and ammonium (NH₄+) determination. Mango (poly)phenols underwent extensive microbial metabolism, primarily in the colon, generating benzoic, phenylpropanoic, cinnamic acids and hydroxybenzenes, along with a reduction in galloyl derivatives. A progressive and significant increase in the total (poly)phenol content was observed during the feeding period, specifically in the colonic fermentation phase, rising from 66 μmol at the stabilization stage to 174 μmol after 96 h of feeding. Short-term mango feeding modulated microbiota composition, increasing the relative abundance of beneficial taxa such as Bifidobacterium spp., across colonic compartments. Regarding metabolic activity, a marked increase in butyric acid production was observed in the ascending colon, rising from 6 mM to 47 mM. In parallel, a significant reduction in ammonium concentration was detected across all colonic compartments during the feeding period, decreasing from 275 to 51 mg/L by the end of the experiment. Overall, these findings confirm that mango (poly)phenols promoted bioactive metabolites and supported a healthier gut environment.
Insights
Mango polyphenols significantly boost gut health by increasing beneficial bacteria and producing beneficial compounds like butyric acid during digestion and fermentation. This study highlights mango
Area of Science:
- * Nutritional Science
- * Microbiology
- * Gastroenterology
Background:
- * Dietary polyphenols are extensively metabolized by gut microbiota.
- * Mangoes are rich in (poly)phenols, but their in vivo fate and effects on gut microbiota are not fully understood.
- * Understanding these interactions is crucial for leveraging mangoes' health benefits.
Purpose of the Study:
- * To evaluate the impact of mango (poly)phenols on gut microbiota composition and metabolic activity.
- * To investigate the transformation of mango (poly)phenols during gastrointestinal digestion and colonic fermentation.
- * To assess the influence of mango consumption on short-chain fatty acid (SCFA) production and ammonium levels.
Main Methods:
- * Dynamic gastrointestinal simulator (simgi®) simulating digestion and fermentation.
- * Mango purée feeding with fecal microbiota from healthy donors.
- * UHPLC-HRMS for (poly)phenol analysis, 16S rRNA sequencing for microbial profiling, and SCFA/ammonium determination.
Main Results:
- * Mango (poly)phenols were extensively metabolized in the colon, yielding beneficial compounds like benzoic and cinnamic acids.
- * Total polyphenol content increased significantly during colonic fermentation.
- * Mango feeding increased beneficial bacteria (e.g., Bifidobacterium spp.), butyric acid production, and reduced ammonium levels.
Conclusions:
- * Mango (poly)phenols undergo significant microbial transformation, generating bioactive metabolites.
- * Mango consumption positively modulates gut microbiota composition and enhances metabolic activity.
- * Mangoes promote a healthier gut environment through polyphenol metabolism and beneficial microbial shifts.
Related Concept Videos
Regulation of the Digestive System
The effectors in this regulation system are glands and smooth muscles. Activation of...
Gastrointestinal Motility Disorders
What is Monogastric Digestion?
Imaging Studies III: Gastrointestinal Motility Studies and Virtual Colonoscopy
Radionuclide Testing
Radionuclide testing is a sophisticated medical technique for assessing gastrointestinal motility. It focuses on gastric emptying and colonic transit time. Radioactive markers track the movement of food through the digestive system, providing insights into gastrointestinal disorders.
In gastric emptying studies, a meal's liquid and...
Physiology of the Gastrointestinal System II: Digestion and Absorption
Digestion begins in the mouth, where food undergoes mechanical breakdown by chewing and combines with saliva. Salivary amylase, an enzyme in saliva, starts the breakdown of starches into maltose. The food then travels down the esophagus to the stomach.
In the stomach, a...

