Immune-modulatory effects and potential working mechanisms of orally applied nondigestible carbohydrates

被引:148
作者
Vos, A. P.
M'Rabet, L.
Stahl, B.
Boehm, G.
Garssen, J.
机构
[1] Num Res, Dept Biomed Res, NL-6704 PH Wageningen, Netherlands
[2] Univ Utrecht, Utrecht Inst Pharmaceut Sci, Utrecht, Netherlands
[3] Num Res, Friedrichsdorf, Germany
[4] Erasmus Univ, Sophia Childrens Hosp, Rotterdam, Netherlands
关键词
immune function; oligosaccharide; polysaccharide; prebiotic; microbiota; dietary supplementation;
D O I
10.1615/CritRevImmunol.v27.i2.10
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Orally applied nondigestible carbohydrates (NDC) have been associated with immune-modulating effects and other health benefits. The effects of prebiotic carbohydrates have recently received much attention, but other NDC have been reported to induce immune modulation as well. Many different effects have been shown on parameters of innate and specific immunity, mostly in animal experiments or in vitro. Data from clinical trials are limited, but promising studies have reported beneficial effects on mucosal and systemic immunity in humans. NDC are fermented to various degrees by the intestinal microbiota. Therefore, immune-modulatory properties have often been attributed to microbiota-dependent effects, especially in the case of prebiotic NDC. However, some NDC have been reported to bind to specific receptors on cells of the immune system, suggesting microbiota-independent, immune- modulatory effects play a role as well. This review aims to provide an overview of the published immune-modulatory effects in vitro and in vivo induced by NDC such as fructans, galactooligosaccharides, beta-glucans, pectins, and resistant starch. In addition, issues related to the underlying mechanisms are discussed: interaction between bacteria, their metabolites and the immune system, as well as direct effects of NDC via lectin receptors.
引用
收藏
页码:97 / 140
页数:44
相关论文
共 341 条
[71]   Modulation of delayed-type hypersensitivity and acquired cellular resistance by orally administered viable indigenous lactobacilli in Listeria monocytogenes infected Wistar rats [J].
de Waard, R ;
Garssen, J ;
Vos, JG ;
Claassen, E .
LETTERS IN APPLIED MICROBIOLOGY, 2002, 35 (03) :256-260
[72]  
Den Hond E, 1998, GASTROENTEROLOGY, V115, P584
[73]   Enzymatic synthesis of natural and 13C enriched linear poly-N-acetyllactosamines as ligands for galectin-1 [J].
Di Virgilio, S ;
Glushka, J ;
Moremen, K ;
Pierce, M .
GLYCOBIOLOGY, 1999, 9 (04) :353-364
[74]   THE FUNCTION OF HUMAN NK CELLS IS ENHANCED BY BETA-GLUCAN, A LIGAND OF CR3 (CD11B/CD18) [J].
DIRENZO, L ;
YEFENOF, E ;
KLEIN, E .
EUROPEAN JOURNAL OF IMMUNOLOGY, 1991, 21 (07) :1755-1758
[75]   The degree of methylation influences the degradation of pectin in the intestinal tract of rats and in vitro [J].
Dongowski, G ;
Lorenz, A ;
Proll, A .
JOURNAL OF NUTRITION, 2002, 132 (07) :1935-1944
[76]   Structural stability and prebiotic properties of resistant starch type 3 increase bile acid turnover and lower secondary bile acid formation [J].
Dongowski, G ;
Jacobasch, G ;
Schmiedl, D .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2005, 53 (23) :9257-9267
[77]   Dietary fiber-rich barley products beneficially affect the intestinal tract of rats [J].
Dongowski, G ;
Huth, M ;
Gebhardt, E ;
Flamme, W .
JOURNAL OF NUTRITION, 2002, 132 (12) :3704-3714
[78]   Purification, structure and immunobiological activity of an arabinan-rich pectic polysaccharide from the cell walls of Prunus dulcis seeds [J].
Dourado, F ;
Madureira, P ;
Carvalho, V ;
Coelho, R ;
Coimbra, MA ;
Vilanova, M ;
Mota, M ;
Gama, FM .
CARBOHYDRATE RESEARCH, 2004, 339 (15) :2555-2566
[79]   Pectin in pig nutrition, a comparative review [J].
Drochner, W ;
Kerler, A ;
Zacharias, B .
JOURNAL OF ANIMAL PHYSIOLOGY AND ANIMAL NUTRITION, 2004, 88 (11-12) :367-380
[80]   EVIDENCE FOR INVOLVEMENT OF BETA-GLUCAN-BINDING CELL-SURFACE LECTINS IN HUMAN NATURAL-KILLER-CELL FUNCTION [J].
DUAN, XC ;
ACKERLY, M ;
VIVIER, E ;
ANDERSON, P .
CELLULAR IMMUNOLOGY, 1994, 157 (02) :393-402