Structural Identity of Galactooligosaccharide Molecules Selectively Utilized by Single Cultures of Probiotic Bacterial Strains

被引:40
作者
Boger, Markus [1 ]
van Leeuwen, Sander S. [1 ,2 ]
van Bueren, Alicia Lammerts [1 ]
Dijkhuizen, Lubbert [1 ,3 ]
机构
[1] Univ Groningen, Groningen Biomol Sci & Biotechnol Inst GBB, Microbiol, Nijenborgh 7, NL-9747 AG Groningen, Netherlands
[2] Univ Groningen, Univ Med Ctr Groningen, Dept Lab Med, NL-9713 GZ Groningen, Netherlands
[3] CarbExplore Res BV, Zernikepk 12, NL-9747 AA Groningen, Netherlands
关键词
galactooligosaccharides; glycosidic linkages; bifidobacteria; lactic acid bacteria; synbiotics; catabolic pathways; GALACTO-OLIGOSACCHARIDES; GUT MICROBIOME; METABOLISM; PREBIOTICS; LACTOBACILLI; PROTEIN;
D O I
10.1021/acs.jafc.9b05968
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
Various beta-galactosidase enzymes catalyze the trans-glycosylation reaction with lactose. The resulting galactooligosaccharide (GOS) mixtures are widely used in infant nutrition to stimulate growth of beneficial gut bacteria. GOS consists mainly of compounds with a degree of polymerization (DP) varying from 2-8 and with diverse glycosidic linkages. In recent years, we have elucidated in detail the composition of several commercial GOS mixtures in terms of DP and the structural identity of the individual compounds. In this work, 13 (single) probiotic strains of gut bacteria, belonging to 11 different species, were grown to stationary phase with a Vivinal GOS-derived sample purified to remove lactose and monosaccharides (pGOS). Growth among the probiotic strains varied strongly between 30 and 100% of OD600nm relative to positive controls with glucose. By identifying the components of the pGOS mixture that remain after growth, we showed that strains varied in their consumption of specific GOS compounds. All strains commonly used most of the GOS DP2 pool. Lactobacillus salivarius W57 also utilized the DP3 branched compound beta-D-Galp-(1 -> 4)-[beta-D-Galp-(1 -> 2)]-D-G1c. Bifidobacterial strains tended to use GOS with higher DP and branching than lactobacilli; Bifidobacterium breve DSM 20091, Lactobacillus acidophilus W37, and Bifidobacterium infantis DSM 20088 were exceptional in using 38, 36, and 35 compounds, respectively, out of the 40 different structures identified in pGOS. We correlated these bacterial GOS consumption profiles with their genomic information and were able to relate metabolic activity with the presence of genome-encoded transporters and carbohydrate-active enzymes. These detailed insights may support the design of synbiotic combinations pairing probiotic bacterial strains with GOS compounds that specifically stimulate their growth. Such synbiotic combinations may be of interest in food/feed and/or pharmacy/medicine applications.
引用
收藏
页码:13969 / 13977
页数:9
相关论文
共 40 条
[1]   Transcriptional analysis of oligosaccharide utilization by Bifidobacterium lactis Bl-04 [J].
Andersen, Joakim M. ;
Barrangou, Rodolphe ;
Abou Hachem, Maher ;
Lahtinen, Sampo J. ;
Goh, Yong Jun ;
Svensson, Birte ;
Klaenhammer, Todd R. .
BMC GENOMICS, 2013, 14
[2]   Transcriptional and functional analysis of galactooligosaccharide uptake by lacS in Lactobacillus acidophilus [J].
Andersen, Joakim M. ;
Barrangou, Rodolphe ;
Abou Hachem, Maher ;
Lahtinen, Sampo ;
Goh, Yong Jun ;
Svensson, Birte ;
Klaenhammer, Todd R. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2011, 108 (43) :17785-17790
[3]  
[Anonymous], 2015, METABONOMICS GUT MIC
[4]   The RAST server: Rapid annotations using subsystems technology [J].
Aziz, Ramy K. ;
Bartels, Daniela ;
Best, Aaron A. ;
DeJongh, Matthew ;
Disz, Terrence ;
Edwards, Robert A. ;
Formsma, Kevin ;
Gerdes, Svetlana ;
Glass, Elizabeth M. ;
Kubal, Michael ;
Meyer, Folker ;
Olsen, Gary J. ;
Olson, Robert ;
Osterman, Andrei L. ;
Overbeek, Ross A. ;
McNeil, Leslie K. ;
Paarmann, Daniel ;
Paczian, Tobias ;
Parrello, Bruce ;
Pusch, Gordon D. ;
Reich, Claudia ;
Stevens, Rick ;
Vassieva, Olga ;
Vonstein, Veronika ;
Wilke, Andreas ;
Zagnitko, Olga .
BMC GENOMICS, 2008, 9 (1)
[5]  
Bäckhed F, 2015, CELL HOST MICROBE, V17, P690, DOI [10.1016/j.chom.2015.04.004, 10.1016/j.chom.2015.05.012]
[6]   Towards a more comprehensive concept for prebiotics [J].
Bindels, Laure B. ;
Delzenne, Nathalie M. ;
Cani, Patrice D. ;
Walter, Jens .
NATURE REVIEWS GASTROENTEROLOGY & HEPATOLOGY, 2015, 12 (05) :303-310
[7]   Human milk oligosaccharides: Every baby needs a sugar mama [J].
Bode, Lars .
GLYCOBIOLOGY, 2012, 22 (09) :1147-1162
[8]   Structural and functional characterization of a family GH53 β-1,4-galactanase from Bacteroides thetaiotaomicron that facilitates degradation of prebiotic galactooligosaccharides [J].
Boger, Markus ;
Hekelaar, Johan ;
van Leeuwen, Sander S. ;
Dijkhuizen, Lubbert ;
van Bueren, Alicia Lammerts .
JOURNAL OF STRUCTURAL BIOLOGY, 2019, 205 (01) :1-10
[9]   Cross-Feeding among Probiotic Bacterial Strains on Prebiotic Inulin Involves the Extracellular exo-Inulinase of Lactobacillus paracasei Strain W20 [J].
Boger, Markus C. L. ;
van Bueren, Alicia Lammerts ;
Dijkhuizen, Lubbert .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2018, 84 (21)
[10]   IMPROVED CULTURE FLASK FOR OBLIGATE ANAEROBES [J].
DANIELS, L ;
ZEIKUS, JG .
APPLIED MICROBIOLOGY, 1975, 29 (05) :710-711