Effects of grape seed procyanidins on antioxidant function, barrier function, microbial community, and metabolites of cecum in geese
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Xu Yang | R. Hao | Y. Zhai | Qinghong Li | Chao Deng | Zhexiu Chen
[1] Zhiyue Wang,et al. Effects of Dietary Vitamin E Supplementation on Reproductive Performance, Egg Characteristics, Antioxidant Capacity, and Immune Status in Breeding Geese during the Late Laying Period , 2022, Antioxidants.
[2] H. Yan,et al. Grape seed procyanidins improve intestinal health by modulating gut microbiota and enhancing intestinal antioxidant capacity in weaned piglets , 2022, Livestock Science.
[3] Q. Meng,et al. Host-microbiota interaction-mediated resistance to inflammatory bowel disease in pigs , 2022, Microbiome.
[4] Hehe Liu,et al. Effects of cage versus floor rearing system on goose intestinal histomorphology and cecal microbial composition , 2022, Poultry science.
[5] Lin Ma,et al. Xuanfei Baidu decoction attenuates intestinal disorders by modulating NF-κB pathway, regulating T cell immunity and improving intestinal flora. , 2022, Phytomedicine : international journal of phytotherapy and phytopharmacology.
[6] Yunmao Huang,et al. The effects of dietary protein and fiber levels on growth performance, gout occurrence, intestinal microbial communities, and immunoregulation in the gut-kidney axis of goslings , 2022, Poultry science.
[7] Yijuan Huang,et al. Grape Seed Proanthocyanidins Exert a Radioprotective Effect on the Testes and Intestines Through Antioxidant Effects and Inhibition of MAPK Signal Pathways , 2022, Frontiers in Medicine.
[8] Shengbei Weng,et al. Trichostatin A inhibits dendritic cell maturation through down-regulating NF—κ B (p65) pathway , 2022, Molecular Biology Reports.
[9] Jun Zhang,et al. Transcriptomics integrated with metabolomics reveals the effect of Bisphenol F (BPF) exposure on intestinal inflammation. , 2021, The Science of the total environment.
[10] Zhihong Ma,et al. Dietary grape seed proanthocyanidins improved growth, immunity, antioxidant, digestive enzymes activities, and intestinal microbiota of juvenile hybrid sturgeon ( Acipenser baeri Brandt ♀ × A. schrenckii Brandt ♂) , 2021, Aquaculture Nutrition.
[11] B. Bartolomé,et al. Gastrointestinal Digestion of a Grape Pomace Extract: Impact on Intestinal Barrier Permeability and Interaction with Gut Microbiome , 2021, Nutrients.
[12] Changhao Sun,et al. Fecal g. Streptococcus and g. Eubacterium_coprostanoligenes_group combined with sphingosine to modulate the serum dyslipidemia in high-fat diet mice. , 2021, Clinical nutrition.
[13] Zhendan Shi,et al. Fermented Feed Supplement Relieves Caecal Microbiota Dysbiosis and Kidney Injury Caused by High-Protein Diet in the Development of Gosling Gout , 2020, Animals : an open access journal from MDPI.
[14] T. Geng,et al. Maintaining intestinal structural integrity is a potential protective mechanism against inflammation in goose fatty liver , 2020, Poultry science.
[15] T. Yue,et al. Mechanism and intervention measures of iron side effects on the intestine , 2020, Critical reviews in food science and nutrition.
[16] Hongquan Li,et al. Effect of grapeseed procyanidins on small intestinal mucosa morphology and small intestinal development in weaned piglets , 2020 .
[17] H. El‐Nezami,et al. Dietary polyphenol impact on gut health and microbiota , 2020, Critical reviews in food science and nutrition.
[18] H. Yan,et al. Effects of dietary supplementation with grape seed procyanidins on nutrient utilisation and gut function in weaned piglets. , 2020, Animal : an international journal of animal bioscience.
[19] Zhendan Shi,et al. Metabolomic profiling of goslings with visceral gout reveals a distinct metabolic signature , 2020, British poultry science.
[20] F. R. Moraes,et al. 4-Methylesculetin, a natural coumarin with intestinal anti-inflammatory activity, elicits a glutathione antioxidant response by different mechanisms. , 2020, Chemico-biological interactions.
[21] S. Parthasarathy,et al. Negative Effects of a High-Fat Diet on Intestinal Permeability: A Review. , 2019, Advances in nutrition.
[22] S. Liao,et al. Physiological Effects of Dietary Amino Acids on Gut Health and Functions of Swine , 2019, Front. Vet. Sci..
[23] X. Xiang,et al. Protective Effect of Low Molecular Weight Seleno-Aminopolysaccharide on the Intestinal Mucosal Oxidative Damage , 2019, Marine drugs.
[24] M. Conlon,et al. Propolis from Different Geographic Origins Decreases Intestinal Inflammation and Bacteroides spp. Populations in a Model of DSS‐Induced Colitis , 2018, Molecular nutrition & food research.
[25] E. Martens,et al. Interactions of commensal and pathogenic microorganisms with the intestinal mucosal barrier , 2018, Nature Reviews Microbiology.
[26] B. Wang,et al. The effect of fucoidan on intestinal flora and intestinal barrier function in rats with breast cancer. , 2018, Food & function.
[27] S. Kim,et al. Nutrients Mediate Intestinal Bacteria–Mucosal Immune Crosstalk , 2018, Front. Immunol..
[28] J. Spence,et al. Morphogenesis and maturation of the embryonic and postnatal intestine. , 2017, Seminars in cell & developmental biology.
[29] S. Katiyar,et al. Dietary proanthocyanidins prevent ultraviolet radiation-induced non-melanoma skin cancer through enhanced repair of damaged DNA-dependent activation of immune sensitivity. , 2017, Seminars in cancer biology.
[30] A. Rezaei,et al. Dietary grape seed proanthocyanidins (GSPs) improve weaned intestinal microbiota and mucosal barrier using a piglet model , 2016, Oncotarget.
[31] J. Espín,et al. Interactions of gut microbiota with dietary polyphenols and consequences to human health , 2016, Current opinion in clinical nutrition and metabolic care.
[32] Yixiang Shi,et al. Genome and metagenome analyses reveal adaptive evolution of the host and interaction with the gut microbiota in the goose , 2016, Scientific Reports.
[33] S. Sugiharto. Role of nutraceuticals in gut health and growth performance of poultry , 2016 .
[34] P. Thacker,et al. Dietary Sodium Butyrate Decreases Postweaning Diarrhea by Modulating Intestinal Permeability and Changing the Bacterial Communities in Weaned Piglets. , 2015, The Journal of nutrition.
[35] Jian Peng,et al. Oregano essential oil decreased susceptibility to oxidative stress-induced dysfunction of intestinal epithelial barrier in rats , 2015 .
[36] V. Lushchak. Free radicals, reactive oxygen species, oxidative stress and its classification. , 2014, Chemico-biological interactions.
[37] Mei-Jun Zhu,et al. Grape seed extract improves epithelial structure and suppresses inflammation in ileum of IL-10-deficient mice. , 2014, Food & function.
[38] Hainan Zhao,et al. Grape seed pro-anthocyanidins ameliorates radiation-induced lung injury , 2014, Journal of cellular and molecular medicine.
[39] Lawrence A. David,et al. Diet rapidly and reproducibly alters the human gut microbiome , 2013, Nature.
[40] M. Du,et al. Dietary grape seed extract ameliorates symptoms of inflammatory bowel disease in IL10-deficient mice. , 2013, Molecular nutrition & food research.
[41] T. Wiele,et al. Impact of polyphenols from black tea and red wine/grape juice on a gut model microbiome , 2013 .
[42] E. Verdu,et al. Modulation of intestinal barrier by intestinal microbiota: pathological and therapeutic implications. , 2013, Pharmacological research.
[43] I. Komáromi,et al. Epigallocatechin‐3‐gallate and penta‐O‐galloyl‐β‐d‐glucose inhibit protein phosphatase‐1 , 2013, The FEBS journal.
[44] P. Hrelia,et al. Sulforaphane Potentiates RNA Damage Induced by Different Xenobiotics , 2012, PloS one.
[45] Jie-shou Li,et al. Berberine ameliorates intestinal epithelial tight-junction damage and down-regulates myosin light chain kinase pathways in a mouse model of endotoxinemia. , 2011, The Journal of infectious diseases.
[46] P. Moughan,et al. Regulation of tight junction permeability by intestinal bacteria and dietary components. , 2011, The Journal of nutrition.
[47] B. Bartolomé,et al. Insights into the metabolism and microbial biotransformation of dietary flavan-3-ols and the bioactivity of their metabolites. , 2010, Food & function.
[48] Keith C. Norris,et al. Effects of a novel cystine-based glutathione precursor on oxidative stress in vascular smooth muscle cells. , 2010, American journal of physiology. Cell physiology.
[49] E. Murphy,et al. Dietary prebiotics: current status and new definition , 2010 .
[50] Ian R. Holzman,et al. Butyrate enhances the intestinal barrier by facilitating tight junction assembly via activation of AMP-activated protein kinase in Caco-2 cell monolayers. , 2009, The Journal of nutrition.
[51] R. Rao,et al. Protein phosphatase 2A plays a role in hydrogen peroxide-induced disruption of tight junctions in Caco-2 cell monolayers. , 2009, The Biochemical journal.
[52] C. Guedes,et al. Effect of mannan oligosaccharides on the performance, intestinal morphology and cecal fermentation of fattening rabbits , 2006 .
[53] R. Béliveau,et al. The Survivin-mediated radioresistant phenotype of glioblastomas is regulated by RhoA and inhibited by the green tea polyphenol (−)-epigallocatechin-3-gallate , 2006, Brain Research.
[54] E. Crespo,et al. Effects of Silymarin on the Acute Stage of the Trinitrobenzenesulphonic Acid Model of Rat Colitis , 2001, Planta medica.
[55] Roger L. Williams,et al. Structural determinants of phosphoinositide 3-kinase inhibition by wortmannin, LY294002, quercetin, myricetin, and staurosporine. , 2000, Molecular cell.
[56] A. Zarzuelo,et al. Effect of quercitrin on acute and chronic experimental colitis in the rat. , 1996, The Journal of pharmacology and experimental therapeutics.
[57] Lun Zhang,et al. Oral administration of green tea polyphenols (TP) improves ileal injury and intestinal flora disorder in mice with Salmonella typhimurium infection via resisting inflammation, enhancing antioxidant action and preserving tight junction , 2020 .
[58] Hongqian Chu,et al. Grape-seed proanthocyanidins inhibit the lipopolysaccharide-induced inflammatory mediator expression in RAW264.7 macrophages by suppressing MAPK and NF-κb signal pathways. , 2016, Environmental toxicology and pharmacology.
[59] L. Arola,et al. Proanthocyanidins in health and disease , 2016, BioFactors.