Literature DB >> 25066634

Phenolic metabolites and substantial microbiome changes in pig feces by ingesting grape seed proanthocyanidins.

Ying Yng Choy1, Paola Quifer-Rada, Dirk M Holstege, Steven A Frese, Christopher C Calvert, David A Mills, Rosa M Lamuela-Raventos, Andrew L Waterhouse.   

Abstract

Proanthocyanidin (PAC) consumption has been linked to better colonic health, but PACs are poorly absorbed, making them a target for colonic metabolism. The resulting metabolites are low molecular weight and could potentially be absorbed. To understand the effects of dietary PACs it would be important to resolve the metabolic issue and link these changes to microbial population changes in a suitable model for human digestion. Here, six crossbred female pigs were fed a diet containing 1% (w/w) of MegaNatural® Gold grape seed extract (GSE) daily for 6 days. Fecal samples were analyzed by normal phase LC coupled to fluorescence detection and LC-MS/ToF. DNA was extracted from pig fecal samples and the V3/V4 region of the 16S rRNA gene was sequenced using an Illumina MiSeq. Intact parent PACs (dimer-pentamer) were observed in the feces on days 3 and 6 at similar high levels (∼400 mg kg(-1) total) during ingestion of GSE but were absent 48 h post-feeding. The major phenolic metabolites were 4-hydroxyphenylvaleric acid and 3-hydroxybenzoic acid which increased by ∼30 and 3 mg kg(-1) respectively. The GSE diet also caused an ecological shift in the microbiome, dramatically increasing Lachnospiraceae, Clostridales, Lactobacillus and Ruminococcacceae. The relationship between dietary PACs and colon health may be attributable to the altered bacterial populations or phenolic compounds in the colon.

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Year:  2014        PMID: 25066634      PMCID: PMC4744461          DOI: 10.1039/c4fo00325j

Source DB:  PubMed          Journal:  Food Funct        ISSN: 2042-6496            Impact factor:   5.396


  42 in total

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7.  Bioavailability of intact proanthocyanidins in the rat colon after ingestion of grape seed extract.

Authors:  Ying Yng Choy; Grayson K Jaggers; Patricia I Oteiza; Andrew L Waterhouse
Journal:  J Agric Food Chem       Date:  2012-12-17       Impact factor: 5.279

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2.  A high-fat high-sucrose diet affects the long-term metabolic fate of grape proanthocyanidins in rats.

Authors:  Eunice Molinar-Toribio; Elisabet Fuguet; Sara Ramos-Romero; Núria Taltavull; Lucía Méndez; M Rosa Nogués; Isabel Medina; Josep Lluís Torres; Jara Pérez-Jiménez
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Review 4.  Dietary phytonutrients and animal health: regulation of immune function during gastrointestinal infections.

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Review 6.  Medicinal Plants and Their Impact on the Gut Microbiome in Mental Health: A Systematic Review.

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Review 9.  Gut Microbiota Dysbiosis in Obesity-Linked Metabolic Diseases and Prebiotic Potential of Polyphenol-Rich Extracts.

Authors:  Fernando F Anhê; Thibault V Varin; Mélanie Le Barz; Yves Desjardins; Emile Levy; Denis Roy; André Marette
Journal:  Curr Obes Rep       Date:  2015-12

10.  Structure-function analysis of purified proanthocyanidins reveals a role for polymer size in suppressing inflammatory responses.

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