Human Milk Oligosaccharides Mediate the Crosstalk Between Intestinal Epithelial Caco-2 Cells and Lactobacillus Plantarum WCFS1 in an In Vitro Model with Intestinal Peristaltic Shear Force

被引:27
作者
Kong, Chunli [1 ,2 ]
Cheng, Lianghui [1 ,2 ]
Krenning, Guido [2 ,3 ]
Fledderus, Jolien [2 ,3 ]
de Haan, Bart J. [1 ,2 ]
Walvoort, Marthe T. C. [4 ]
de Vos, Paul [1 ,2 ]
机构
[1] Univ Groningen, Dept Pathol & Med Biol, Div Med Biol, Immunoendocrinol, Groningen, Netherlands
[2] Univ Med Ctr Groningen, Groningen, Netherlands
[3] Univ Groningen, Div Med Biol, Lab Cardiovasc Regenerat Med, Dept Pathol & Med Biol, Groningen, Netherlands
[4] Univ Groningen, Stratingh Inst Chem, Groningen, Netherlands
关键词
shear force; human milk oligosaccharides; Lactobacillus plantarum WCFS1; gut barrier function; intestinal epithelium; GLYCOCALYX; EXPRESSION;
D O I
10.1093/jn/nxaa162
中图分类号
R15 [营养卫生、食品卫生]; TS201 [基础科学];
学科分类号
100403 ;
摘要
Background: The intestinal epithelial cells, food molecules, and gut microbiota are continuously exposed to intestinal peristaltic shear force. Shear force may impact the crosstalk of human milk oligosaccharides (hMOs) with commensal bacteria and intestinal epithelial cells. Objectives: We investigated how hMOs combined with intestinal peristaltic shear force impact intestinal epithelial cells and crosstalk with a commensal bacterium. Methods: We applied the Ibidi system to mimic intestinal peristaltic shear force. Caco-2 cells were exposed to a shear force (5 dynes/cm(2)) for 3 d, and then stimulated with the hMOs, 2'-fucosyllactose (2'-FL), 3-FL, and lacto-N-triose II (LNT2). In separate experiments, Lactobacillus plantarum WCFS1 adhesion to Caco-2 cells was studied with the same hMOs and shear force. Effects were tested on gene expression of glycocalyx-related molecules (glypican 1 [GPC1], hyaluronan synthase 1 [HAS1], HAS2, HAS3, exostosin glycosyltransferase 1 [EXT1], EXT2), defensin beta-1 (DEFB1), and tight junction (tight junction protein 1 [TJP1], claudin 3 [CLDN3]) in Caco-2 cells. Protein expression of tight junctions was also quantified. Results: Shear force dramatically decreased gene expression of the main enzymes for making glycosaminoglycan side chains (HAS3 by 43.3% and EXT1 by 68.7%) (P <0.01), but did not affect GPC1 which is the gene responsible for the synthesis of glypican 1 which is a major protein backbone of glycocalyx. Expression of DEFB1, TJP1, and CLDN3 genes was decreased 60.0-94.9% by shear force (P <0.001). The presence of L. plantarum WCFS1 increased GPC1, HAS2, HAS3, and ZO-1 expression by 1.78- to 3.34-fold (P <0.05). Under shear force, all hMOs significantly stimulated DEFB1 and ZO-1, whereas only 3-FL and LNT2 enhanced L. plantarum WCFS1 adhesion by 1.85- to 1.90-fold (P <0.01). Conclusions: 3-FL and LNT2 support the crosstalk between the commensal bacterium L. plantarumWCFS1 and Caco2 intestinal epithelial cells, and shear force can increase the modulating effects of hMOs.
引用
收藏
页码:2077 / 2088
页数:12
相关论文
共 41 条
[1]   Non-digestible carbohydrates in infant formula as substitution for human milk oligosaccharide functions: Effects on microbiota and gut maturation [J].
Akkerman, Renate ;
Faas, Marijke M. ;
de Vos, Paul .
CRITICAL REVIEWS IN FOOD SCIENCE AND NUTRITION, 2019, 59 (09) :1486-1497
[2]   Glycoprofiling with micro-arrays of glycoconjugates and lectins [J].
Angeloni, S ;
Ridet, JL ;
Kusy, N ;
Gao, H ;
Crevoisier, F ;
Guinchard, S ;
Kochhar, S ;
Sigrist, H ;
Sprenger, N .
GLYCOBIOLOGY, 2005, 15 (01) :31-41
[3]   Mechanical force modulates global gene expression and β-catenin signaling in colon cancer cells [J].
Avvisato, Christopher L. ;
Yang, Xiang ;
Shah, Salim ;
Hoxter, Becky ;
Li, Weiqun ;
Gaynor, Richard ;
Pestell, Richard ;
Tozeren, Aydin ;
Byers, Stephen W. .
JOURNAL OF CELL SCIENCE, 2007, 120 (15) :2672-2682
[4]   Endothelial Glycocalyx-Mediated Nitric Oxide Production in Response to Selective AFM Pulling [J].
Bartosch, Anne Marie W. ;
Mathews, Rick ;
Tarbell, John M. .
BIOPHYSICAL JOURNAL, 2017, 113 (01) :101-108
[5]   The functional biology of human milk oligosaccharides [J].
Bode, Lars .
EARLY HUMAN DEVELOPMENT, 2015, 91 (11) :619-622
[6]   Structure-Function Relationships of Human Milk Oligosaccharides [J].
Bode, Lars ;
Jantscher-Krenn, Evelyn .
ADVANCES IN NUTRITION, 2012, 3 (03) :383S-391S
[7]   In vitro polymerization of heparan sulfate backbone by the EXT proteins [J].
Busse, M ;
Kusche-Gullberg, M .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (42) :41333-41337
[8]   Human Milk Oligosaccharides Differently Modulate Goblet Cells Under Homeostatic, Proinflammatory Conditions and ER Stress [J].
Cheng, Lianghui ;
Kong, Chunli ;
Walvoort, Marthe T. C. ;
Faas, Marijke M. ;
de Vos, Paul .
MOLECULAR NUTRITION & FOOD RESEARCH, 2020, 64 (05)
[9]   Dietary Human Milk Oligosaccharides but Not Prebiotic Oligosaccharides Increase Circulating Natural Killer Cell and Mesenteric Lymph Node Memory T Cell Populations in Noninfected and Rotavirus-Infected Neonatal Piglets [J].
Comstock, Sarah S. ;
Li, Min ;
Wang, Mei ;
Monaco, Marcia H. ;
Kuhlenschmidt, Theresa B. ;
Kuhlenschmidt, Mark S. ;
Donovan, Sharon M. .
JOURNAL OF NUTRITION, 2017, 147 (06) :1041-1047
[10]   A systematic investigation of the effect of the fluid shear stress on Caco-2 cells towards the optimization of epithelial organ-on-chip models [J].
Delon, Ludivine C. ;
Guo, Zhaobin ;
Oszmiana, Anna ;
Chien, Chia-Chi ;
Gibson, Rachel ;
Prestidge, Clive ;
Thierry, Benjamin .
BIOMATERIALS, 2019, 225