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In Vitro and Animal Studies

In vitro human colonic fermentation of indigestible fraction isolated from lunch menus: impact on the gut metabolites and antioxidant capacity

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Pages 718-728 | Received 02 Sep 2017, Accepted 09 Dec 2017, Published online: 26 Dec 2017

References

  • AOAC. 1990. Official methods of analysis. 15th ed. Washington (DC): Association of Official Agricultural Chemists.
  • Bäckhed F. 2013. Meat-metabolizing bacteria in atherosclerosis. Nat Med. 19:533–534.
  • Barnes S, Benton HP, Casazza K, Cooper SJ, Cui X, Du X, Engler J, Kabarowski JH, Li S, Pathmasiri W, et al. 2016. Training in metabolomics research. II. Processing and statistical analysis of metabolomics data, metabolite identification, pathway analysis, applications of metabolomics and its future. J Mass Spectrom. 51:535–548.
  • Benzie IF, Strain J. 1996. The ferric reducing ability of plasma (FRAP) as a measure of “antioxidant power”: the FRAP assay. Anal Biochem. 239:70–76.
  • Bergamo P, Luongo D, Miyamoto J, Cocca E, Kishino S, Ogawa J, Tanabe S, Rossi M. 2014. Immunomodulatory activity of a gut microbial metabolite of dietary linoleic acid, 10-hydroxy-cis-12-octadecenoic acid, associated with improved antioxidant/detoxifying defences. J Funct Foods. 11:192–202.
  • Boulangé CL, Neves AL, Chilloux J, Nicholson JK, Dumas M-E. 2016. Impact of the gut microbiota on inflammation, obesity, and metabolic disease. Genome Med. 8:1.
  • Byrne C, Chambers E, Morrison D, Frost G. 2015. The role of short chain fatty acids in appetite regulation and energy homeostasis. Int J Obes. 39:1331–1338.
  • Campos‐Vega R, Reynoso‐Camacho R, Pedraza‐Aboytes G, Acosta‐Gallegos J, Guzman‐Maldonado S, Paredes‐Lopez O, Oomah B, Loarca‐Piña G. 2009. Chemical composition and in vitro polysaccharide fermentation of different beans (Phaseolus vulgaris L.). J Food Sci. 74:T59–T65.
  • Chung WSF, Walker AW, Louis P, Parkhill J, Vermeiren J, Bosscher D, Duncan SH, Flint HJ. 2016. Modulation of the human gut microbiota by dietary fibres occurs at the species level. BMC Biol. 14:1.
  • Davila A-M, Blachier F, Gotteland M, Andriamihaja M, Benetti P-H, Sanz Y, Tomé D. 2013. Intestinal luminal nitrogen metabolism: role of the gut microbiota and consequences for the host. Pharmacol Res. 68:95–107.
  • De Filippis F, Pellegrini N, Vannini L, Jeffery IB, La Storia A, Laghi L, Serrazanetti DI, Di Cagno R, Ferrocino I, Lazzi C, et al. 2015. High-level adherence to a Mediterranean diet beneficially impacts the gut microbiota and associated metabolome. Gut. 65:1812–1821.
  • De Preter V, Machiels K, Joossens M, Arijs I, Matthys C, Vermeire S, Rutgeerts P, Verbeke K. 2014. Faecal metabolite profiling identifies medium-chain fatty acids as discriminating compounds in IBD. Gut. 64:447–458.
  • Del Pino-García R, González-SanJosé ML, Rivero-Pérez MD, García-Lomillo J, Muñiz P. 2016. Total antioxidant capacity of new natural powdered seasonings after gastrointestinal and colonic digestion. Food Chem. 211: 707–714.
  • Dueñas M, Sarmento T, Aguilera Y, Benitez V, Mollá E, Esteban RM, Martín-Cabrejas MA. 2016. Impact of cooking and germination on phenolic composition and dietary fibre fractions in dark beans (Phaseolus vulgaris L.) and lentils (Lens culinaris L.). LWT-Food Sci Technol. 66:72–78.
  • Flint HJ, Duncan SH, Scott KP, Louis P. 2015. Links between diet, gut microbiota composition and gut metabolism. Proc Nutr Soc. 74:13–22.
  • Flores-Silva PC, Bello-Pérez LA, Rodriguez-Ambriz SL, Osorio-Diaz P. 2017. In vitro colonic fermentation and glycemic response of high fiber gluten-free snacks in rats. J Funct Foods. 28:59–63.
  • Grundy MM-L, Edwards CH, Mackie AR, Gidley MJ, Butterworth PJ, Ellis PR. 2016. Re-evaluation of the mechanisms of dietary fibre and implications for macronutrient bioaccessibility, digestion and postprandial metabolism. Br J Nutr. 116:816–833.
  • Hartzfeld PW, Forkner R, Hunter MD, Hagerman AE. 2002. Determination of hydrolyzable tannins (gallotannins and ellagitannins) after reaction with potassium iodate. J Agric Food Chem. 50:1785–1790.
  • Hervert-Hernández D, García OP, Rosado JL, Goñi I. 2011. The contribution of fruits and vegetables to dietary intake of polyphenols and antioxidant capacity in a Mexican rural diet: importance of fruit and vegetable variety. Food Res Int. 44:1182–1189.
  • Jakobek L. 2015. Interactions of polyphenols with carbohydrates, lipids and proteins. Food Chem. 175:556–567.
  • Kettle H, Louis P, Holtrop G, Duncan SH, Flint HJ. 2015. Modelling the emergent dynamics and major metabolites of the human colonic microbiota. Environ Microbiol. 17:1615–1630.
  • Kovatcheva-Datchary P, Nilsson A, Akrami R, Lee YS, De Vadder F, Arora T, Hallen A, Martens E, Björck I, Bäckhed F. 2015. Dietary fiber-induced improvement in glucose metabolism is associated with increased abundance of prevotella. Cell Metab. 22:971–982.
  • Leone V, Chang EB, Devkota S. 2013. Diet, microbes, and host genetics: the perfect storm in inflammatory bowel diseases. Gastroenterology. 48:315–321.
  • Liberato MV, Nascimento AS, Ayers SD, Lin JZ, Cvoro A, Silveira RL, Martínez L, Souza PC, Saidemberg D, Deng T, et al. 2012. Medium chain fatty acids are selective peroxisome proliferator activated receptor (PPAR) γ activators and pan-PPAR partial agonists. PLoS One. 7:e36297.
  • López-Olmedo N, Carriquiry AL, Rodríguez-Ramírez S, Ramírez-Silva I, Espinosa-Montero J, Hernández-Barrera L, Campirano F, Martínez-Tapia B, Rivera JA. 2016. Usual intake of added sugars and saturated fats is high while dietary fiber is low in the Mexican population. J Nutr. 146:1856S–1865S.
  • Louis P, Hold GL, Flint HJ. 2014. The gut microbiota, bacterial metabolites and colorectal cancer. Nat Rev Microbiol. 12:661–672.
  • Marín L, Miguélez EM, Villar CJ, Lombó F. 2015. Bioavailability of dietary polyphenols and gut microbiota metabolism: antimicrobial properties. Biomed Res Int. 2015:905215.
  • Montreau F. 1972. Sur le dosage des composés phénoliques totaux dans les vins par la methode Folin-Ciocalteu. Connaiss Vigne Vin. 24:397–404.
  • Nicholson JK, Holmes E, Kinross J, Burcelin R, Gibson G, Jia W, Pettersson S. 2012. Host–gut microbiota metabolic interactions. Science. 336:1262–1267.
  • Nicholson JK, Holmes E, Wilson ID. 2005. Gut microorganisms, mammalian metabolism and personalized health care. Nat Rev Microbiol. 3:431–438.
  • Noguer M, Cerezo AB, Moyá ML, Troncoso AM, García-Parrilla MC. 2014. Synergism effect between phenolic metabolites and endogenous antioxidants in terms of antioxidant activity. Adv Chem Eng Sci. 4:258.
  • Norton J, Espinosa YG, Watson R, Spyropoulos F, Norton I. 2015. Functional food microstructures for macronutrient release and delivery. Food Funct. 6:663–678.
  • Organ CL, Otsuka H, Bhushan S, Wang Z, Bradley J, Trivedi R, Polhemus DJ, Tang WH, Wu Y, Hazen SL, Lefer DJ. 2016. Choline diet and its gut microbe-derived metabolite, trimethylamine N-oxide, exacerbate pressure overload-induced heart failure. Circ Heart Fail. 9:e002314.
  • Pérez-Jiménez J, Arranz S, Saura-Calixto F. 2009. Proanthocyanidin content in foods is largely underestimated in the literature data: an approach to quantification of the missing proanthocyanidins. Food Res Int. 42:1381–1388.
  • Pérez-Jiménez J, Saura-Calixto F. 2015. Macromolecular antioxidants or non-extractable polyphenols in fruit and vegetables: intake in four European countries. Food Res Int. 74:315–323.
  • Poesen R, Windey K, Neven E, Kuypers D, De Preter V, Augustijns P, D’Haese P, Evenepoel P, Verbeke K, Meijers B. 2014. The influence of chronic kidney disease on the gut microbial metabolism. Nephrol Dial Transplant 28(2):120.
  • Popkin BM, Adair LS, Ng SW. 2012. Global nutrition transition and the pandemic of obesity in developing countries. Nutr Rev. 70:3–21.
  • Prior RL, Wu X, Schaich K. 2005. Standardized methods for the determination of antioxidant capacity and phenolics in foods and dietary supplements. J Agric Food Chem. 53:4290–4302.
  • Reed JD, McDowell RT, Van Soest PJ, Horvath PR. 1982. Condensed tannins: a factor limiting the use of cassava forage. J Sci Food Agric. 33:213–220.
  • Saura-Calixto F, García-Alonso A, Goni I, Bravo L. 2000. In vitro determination of the indigestible fraction in foods: an alternative to dietary fiber analysis. J Agric Food Chem. 48:3342–3347.
  • Serrano J, Puupponen‐Pimiä R, Dauer A, Aura AM, Saura‐Calixto F. 2009. Tannins: current knowledge of food sources, intake, bioavailability and biological effects. Mol Nutr Food Res. 53:S310–S329.
  • Seth A. 2016. Metabolic syndrome and obesity in childhood and adolescence. Indian J Med Res. 143:120.
  • Tabernero M, Venema K, Maathuis AJ, Saura-Calixto FD. 2011. Metabolite production during in vitro colonic fermentation of dietary fiber: analysis and comparison of two European diets. J Agric Food Chem. 59:8968–8975.
  • Trøseid M, Ueland T, Hov J, Svardal A, Gregersen I, Dahl C, Aakhus S, Gude E, Bjørndal B, Halvorsen B, et al. 2015. Microbiota-dependent metabolite trimethylamine-N-oxide is associated with disease severity and survival of patients with chronic heart failure. J Intern Med. 277:717–726.
  • Valdés L, Cuervo A, Salazar N, Ruas-Madiedo P, Gueimonde M, González S. 2015. The relationship between phenolic compounds from diet and microbiota: impact on human health. Food Funct. 6:2424–2439.
  • Vandeputte D, Falony G, Vieira-Silva S, Tito RY, Joossens M, Raes J. 2015. Stool consistency is strongly associated with gut microbiota richness and composition, enterotypes and bacterial growth rates. Gut. 65:57–62.
  • Walton C, Fowler DP, Turner C, Jia W, Whitehead RN, Griffiths L, Dawson C, Waring RH, Ramsden DB, Cole JA, et al. 2013. Analysis of volatile organic compounds of bacterial origin in chronic gastrointestinal diseases. Inflamm Bowel Dis. 19:2069–2078.
  • Weir TL, Manter DK, Sheflin AM, Barnett BA, Heuberger AL, Ryan EP. 2013. Stool microbiome and metabolome differences between colorectal cancer patients and healthy adults. PLoS One. 8:e70803.
  • Zamora-Gasga VM, Loarca-Piña G, Vázquez-Landaverde PA, Ortiz-Basurto RI, Tovar J, Sáyago-Ayerdi SG. 2015. In vitro colonic fermentation of food ingredients isolated from Agave tequilana Weber var. azul applied on granola bars. LWT-Food Sci Technol. 60:766–772.
  • Zamora-Gasga VM, Montalvo-González E, Loarca-Piña GF, Chacón-López AM, Tovar J, Sáyago-Ayerdi SG. 2017. Dietary patterns, nutritional profile, and body mass index in Mexican schoolchildren: a cross-sectional study. Arch Latinoamericanos Nutr. 67:6–14.
  • Zhang L, Wang Y, Li D, Ho C-T, Li J, Wan X. 2016. The absorption, distribution, metabolism and excretion of procyanidins. Food Funct. 7:1273–1281.

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