Comparative analysis of prebiotic effects of four oligosaccharides using in vitro gut model: digestibility, microbiome, and metabolome changes

被引:9
|
作者
Cheon, Seongwon [1 ]
Kim, Geonhee [1 ]
Bae, Jae-Han [1 ]
Lee, Dong Hyeon [1 ]
Seong, Hyunbin [1 ]
Kim, Da Hye [1 ]
Han, Jung-Sook [2 ]
Lim, Su-Youn [2 ]
Han, Nam Soo [1 ]
机构
[1] Chungbuk Natl Univ, Brain Korea Ctr Biohlth Ind 21, Dept Food Sci & Biotechnol, Cheongju 28644, South Korea
[2] Samyang Corp, Samyang Corp Food Biotech R&D Ctr, 295 Pangyo Ro, Seongnam Si 13488, Gyeonggi Do, South Korea
关键词
fructooligosaccharide; maltooligosaccharide; metabolome; microbiome; prebiotic; resistant maltodextrin; BIFIDOBACTERIA; FERMENTATION; DIGESTION; INULIN; ABSORPTION; PROBIOTICS; FOOD;
D O I
10.1093/femsec/fiad002
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Fructooligosaccharides (FOS), Ad-fructooligosaccharides (Ad-FOS), resistant maltodextrin (RMD), and maltooligosaccharides (MOS) are commercially available prebiotic oligosaccharides. In this study, the effects of prebiotics on the human gut microbial ecosystem were evaluated using an in vitro gut model. FOS and Ad-FOS showed tolerance to digestion, whereas RMD and MOS showed moderate digestion by digestive enzymes. In in vitro fecal fermentation, Bifidobacterium spp. increased in the following order: FOS, Ad-FOS, MOS, and RMD, whereas Bacteroides spp. increased in RMD medium. Bacteroides xylanisolvens exhibited cross-feeding by enabling the growth of other beneficial bacteria during co-culture in RMD medium. In metabolome analysis, total short-chain fatty acids (SCFAs) were highly produced in the following order: RMD, FOS, MOS, and Ad-FOS; acetate in the order of FOS, MOS/RMD, and Ad-FOS; butyrate in the order of RMD, MOS, FOS, and Ad-FOS; and propionate only in RMD. In addition, the conversion of betaine to trimethylamine was rarely affected in the following order: MOS, RMD, FOS, and Ad-FOS. Lastly, the four oligosaccharides inhibited the adhesion of pathogenic Escherichia coli to human epithelial cells to a similar extent. The comparative analysis results obtained in this study will provide comprehensive information of these substances to manufacturers and customers. The oligosaccharides, FOS, Ad-FOS, RMD, and MOS, exhibited prebiotic effects, but their action patterns and efficacy vary owing to their different digestibility, fermentability, and cross-feeding interactions in complex microbiome ecosystems.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Gut microbiome and plasma metabolome changes in rats after oral gavage of nanoparticles: sensitive indicators of possible adverse health effects
    Robert Landsiedel
    Daniela Hahn
    Rainer Ossig
    Sabrina Ritz
    Lydia Sauer
    Roland Buesen
    Sascha Rehm
    Wendel Wohlleben
    Sibylle Groeters
    Volker Strauss
    Saskia Sperber
    Haleluya Wami
    Ulrich Dobrindt
    Karola Prior
    Dag Harmsen
    Bennard van Ravenzwaay
    Juergen Schnekenburger
    Particle and Fibre Toxicology, 19
  • [32] DIVERSE DIETARY LIPIDS HAVE DIFFERENTIAL EFFECTS ON THE GUT MICROBIOME AND METABOLOME, AND INTESTINAL AND LIVER INJURY IN A MOUSE MODEL OF ALD
    Kirpich, I.
    Feng, W.
    Wang, Y.
    Liu, Y.
    Barve, S.
    Zhang, X.
    McClain, C.
    ALCOHOLISM-CLINICAL AND EXPERIMENTAL RESEARCH, 2014, 38 : 173A - 173A
  • [33] Potential prebiotic activity of Tenebrio molitor insect flour using an optimized in vitro gut microbiota model
    de Carvalho, Nelson Mota
    Teixeira, Francisco
    Silva, Sara
    Madureira, Ana Raquel
    Pintado, Manuela Estevez
    FOOD & FUNCTION, 2019, 10 (07) : 3909 - 3922
  • [34] Prebiotic effects of arabinoxylan oligosaccharides on juvenile Siberian sturgeon (Acipenser baerii) with emphasis on the modulation of the gut microbiota using 454 pyrosequencing
    Geraylou, Zahra
    Souffreau, Caroline
    Rurangwa, Eugene
    Maes, Gregory E.
    Spanier, Katina I.
    Courtin, Christophe M.
    Delcour, Jan A.
    Buyse, Johan
    Ollevier, Frans
    FEMS MICROBIOLOGY ECOLOGY, 2013, 86 (02) : 357 - 371
  • [35] How does microbiome change with chemotherapy? Using an in vivo model of uterine cancer to assess changes in gut microbiome
    de Haydu, C.
    Ramakrishnan, V.
    Ban, Y.
    Zhang, L.
    Schlumbrecht, M. P.
    Roy, S.
    Ramakrishnan, S.
    GYNECOLOGIC ONCOLOGY, 2019, 154 : 69 - 70
  • [36] Effect of Bergamot and Laoxianghuang Polysaccharides on Gut Microbiota Derived from Patients with Hyperlipidemia: An Integrative Analysis of Microbiome and Metabolome during In Vitro Fermentation
    Zheng, Yang
    Wang, Yi
    Luo, Donghui
    Lin, Lianzhu
    Lu, Xingyu
    Gao, Jie
    Xiao, Chuqiao
    Zhao, Mouming
    FOODS, 2022, 11 (14)
  • [37] Comparative effects of exopolysaccharides from lactic acid bacteria and fructo-oligosaccharides on infant gut microbiota tested in an in vitro colonic model with immobilized cells
    Cinquin, Cecile
    Le Blay, Gwenaelle
    Fliss, Ismail
    Lacroix, Christophe
    FEMS MICROBIOLOGY ECOLOGY, 2006, 57 (02) : 226 - 238
  • [38] Effects of Orange Juice Formulation on Prebiotic Functionality Using an In Vitro Colonic Model System
    Costabile, Adele
    Walton, Gemma E.
    Tzortzis, George
    Vulevic, Jelena
    Charalampopoulos, Dimitris
    Gibson, Glenn R.
    PLOS ONE, 2015, 10 (03):
  • [39] Galacto-Oligosaccharides Have Prebiotic Activity in a Dynamic In Vitro Colon Model Using a 13C-Labeling Technique
    Maathuis, Annet J. H.
    van den Heuvel, Ellen C.
    Schoterman, Margriet H. C.
    Venema, Koen
    JOURNAL OF NUTRITION, 2012, 142 (07): : 1205 - 1212
  • [40] Integrated analysis of effect of daisaikoto, a traditional Japanese medicine, on the metabolome and gut microbiome in a mouse model of nonalcoholic fatty liver disease
    Ishizawa, Shiori
    Nishi, Akinori
    Kaifuchi, Noriko
    Shimobori, Chika
    Nahata, Miwa
    Yamada, Chihiro
    Iizuka, Seiichi
    Ohbuchi, Katsuya
    Nishiyama, Mitsue
    Fujitsuka, Naoki
    Kono, Toru
    Yamamoto, Masahiro
    GENE, 2022, 846