Wheat bran components modulate intestinal bacteria and gene expression of barrier function relevant proteins in a piglet model. 2017

Hong Chen, and Daiwen Chen, and Wen Qin, and Yuntao Liu, and Lianqiang Che, and Zhiqing Huang, and Yuheng Luo, and Qing Zhang, and Derong Lin, and Yaowen Liu, and Guoquan Han, and Stefaan DeSmet, and Joris Michiels
a College of Food Science, Sichuan Agricultural University , Ya'an , Sichuan , PR China.

The objective of this study was to determine the impact of wheat bran and its main polysaccharides on intestinal bacteria and gene expression of intestinal barrier function relevant proteins. Thirty freshly weaned male piglets were assigned randomly to five dietary treatment groups with six piglets per group. Accordingly, five synthetic diets including a basal control diet without fiber components (CON), wheat bran diet (10% wheat bran, WB), arabinoxylan diet (AX), cellulose diet (CEL) and combined diet of arabinoxylan and cellulose (CB) were studied. The piglets were fed ad libitum for 30 d. Lower Escherichia coli (E. coli) populations in WB group and higher probiotic (Lactobacillus and Bifidobacterium) populations in groups fed diets containing arabinoxylan (WB, AX and CB) were observed and compared with CON group. Compared with CON group, the gene expressions of cystic fibrosis transmembrane conductance regulator (CFTR), calcium-activated chloride channel regulator 1 (CLCA1) and voltage-gated chloride channel 2 (CIC2) were suppressed in the WB group. And wheat bran down-regulated gene expression of pro-inflammation (TNF-α, IL-1β, IL-6) and TLRs/MyD88/NF-κB pathway compared with CON group. In conclusion, wheat bran and its main polysaccharides could change intestinal microflora and down-regulate the gene expression of intestinal barrier function relevant proteins in the distal small intestinal mucosa.

UI MeSH Term Description Entries
D007082 Ileum The distal and narrowest portion of the SMALL INTESTINE, between the JEJUNUM and the ILEOCECAL VALVE of the LARGE INTESTINE.
D007413 Intestinal Mucosa Lining of the INTESTINES, consisting of an inner EPITHELIUM, a middle LAMINA PROPRIA, and an outer MUSCULARIS MUCOSAE. In the SMALL INTESTINE, the mucosa is characterized by a series of folds and abundance of absorptive cells (ENTEROCYTES) with MICROVILLI. Intestinal Epithelium,Intestinal Glands,Epithelium, Intestinal,Gland, Intestinal,Glands, Intestinal,Intestinal Gland,Mucosa, Intestinal
D008297 Male Males
D011897 Random Allocation A process involving chance used in therapeutic trials or other research endeavor for allocating experimental subjects, human or animal, between treatment and control groups, or among treatment groups. It may also apply to experiments on inanimate objects. Randomization,Allocation, Random
D002482 Cellulose A polysaccharide with glucose units linked as in CELLOBIOSE. It is the chief constituent of plant fibers, cotton being the purest natural form of the substance. As a raw material, it forms the basis for many derivatives used in chromatography, ion exchange materials, explosives manufacturing, and pharmaceutical preparations. Alphacel,Avicel,Heweten,Polyanhydroglucuronic Acid,Rayophane,Sulfite Cellulose,alpha-Cellulose,Acid, Polyanhydroglucuronic,alpha Cellulose
D004043 Dietary Fiber The remnants of plant cell walls that are resistant to digestion by the alimentary enzymes of man. It comprises various polysaccharides and lignins. Fiber, Dietary,Roughage,Wheat Bran,Bran, Wheat,Brans, Wheat,Dietary Fibers,Fibers, Dietary,Roughages,Wheat Brans
D004195 Disease Models, Animal Naturally-occurring or experimentally-induced animal diseases with pathological processes analogous to human diseases. Animal Disease Model,Animal Disease Models,Disease Model, Animal
D000069196 Gastrointestinal Microbiome All of the microbial organisms that naturally exist within the GASTROINTESTINAL TRACT. Enteric Bacteria,Gastric Microbiome,Gastrointestinal Flora,Gastrointestinal Microbial Community,Gastrointestinal Microbiota,Gastrointestinal Microflora,Gut Flora,Gut Microbiome,Gut Microbiota,Gut Microflora,Intestinal Flora,Intestinal Microbiome,Intestinal Microbiota,Intestinal Microflora,Bacteria, Enteric,Flora, Gastrointestinal,Flora, Gut,Flora, Intestinal,Gastric Microbiomes,Gastrointestinal Microbial Communities,Gastrointestinal Microbiomes,Gastrointestinal Microbiotas,Gut Microbiomes,Gut Microbiotas,Intestinal Microbiomes,Intestinal Microbiotas,Microbial Community, Gastrointestinal,Microbiome, Gastric,Microbiome, Gastrointestinal,Microbiome, Gut,Microbiome, Intestinal,Microbiota, Gastrointestinal,Microbiota, Gut,Microbiota, Intestinal,Microflora, Gastrointestinal,Microflora, Gut,Microflora, Intestinal
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D014886 Weaning Permanent deprivation of breast milk and commencement of nourishment with other food. (From Stedman, 25th ed) Weanings

Related Publications

Hong Chen, and Daiwen Chen, and Wen Qin, and Yuntao Liu, and Lianqiang Che, and Zhiqing Huang, and Yuheng Luo, and Qing Zhang, and Derong Lin, and Yaowen Liu, and Guoquan Han, and Stefaan DeSmet, and Joris Michiels
October 2021, Nutrients,
Hong Chen, and Daiwen Chen, and Wen Qin, and Yuntao Liu, and Lianqiang Che, and Zhiqing Huang, and Yuheng Luo, and Qing Zhang, and Derong Lin, and Yaowen Liu, and Guoquan Han, and Stefaan DeSmet, and Joris Michiels
September 2011, The British journal of nutrition,
Hong Chen, and Daiwen Chen, and Wen Qin, and Yuntao Liu, and Lianqiang Che, and Zhiqing Huang, and Yuheng Luo, and Qing Zhang, and Derong Lin, and Yaowen Liu, and Guoquan Han, and Stefaan DeSmet, and Joris Michiels
December 1989, The Journal of nutrition,
Hong Chen, and Daiwen Chen, and Wen Qin, and Yuntao Liu, and Lianqiang Che, and Zhiqing Huang, and Yuheng Luo, and Qing Zhang, and Derong Lin, and Yaowen Liu, and Guoquan Han, and Stefaan DeSmet, and Joris Michiels
July 2021, Journal of visualized experiments : JoVE,
Hong Chen, and Daiwen Chen, and Wen Qin, and Yuntao Liu, and Lianqiang Che, and Zhiqing Huang, and Yuheng Luo, and Qing Zhang, and Derong Lin, and Yaowen Liu, and Guoquan Han, and Stefaan DeSmet, and Joris Michiels
March 1990, Journal of lipid research,
Hong Chen, and Daiwen Chen, and Wen Qin, and Yuntao Liu, and Lianqiang Che, and Zhiqing Huang, and Yuheng Luo, and Qing Zhang, and Derong Lin, and Yaowen Liu, and Guoquan Han, and Stefaan DeSmet, and Joris Michiels
June 1980, Fortschritte der Medizin,
Hong Chen, and Daiwen Chen, and Wen Qin, and Yuntao Liu, and Lianqiang Che, and Zhiqing Huang, and Yuheng Luo, and Qing Zhang, and Derong Lin, and Yaowen Liu, and Guoquan Han, and Stefaan DeSmet, and Joris Michiels
June 2010, American journal of physiology. Gastrointestinal and liver physiology,
Hong Chen, and Daiwen Chen, and Wen Qin, and Yuntao Liu, and Lianqiang Che, and Zhiqing Huang, and Yuheng Luo, and Qing Zhang, and Derong Lin, and Yaowen Liu, and Guoquan Han, and Stefaan DeSmet, and Joris Michiels
February 2012, The American journal of pathology,
Hong Chen, and Daiwen Chen, and Wen Qin, and Yuntao Liu, and Lianqiang Che, and Zhiqing Huang, and Yuheng Luo, and Qing Zhang, and Derong Lin, and Yaowen Liu, and Guoquan Han, and Stefaan DeSmet, and Joris Michiels
January 2022, Frontiers in microbiology,
Hong Chen, and Daiwen Chen, and Wen Qin, and Yuntao Liu, and Lianqiang Che, and Zhiqing Huang, and Yuheng Luo, and Qing Zhang, and Derong Lin, and Yaowen Liu, and Guoquan Han, and Stefaan DeSmet, and Joris Michiels
June 2020, Nutrients,
Copied contents to your clipboard!