Dietary polyphenols ameliorate inflammatory bowel diseases: advances and future perspectives to maximize their nutraceutical applications
暂无分享,去创建一个
Hong Wang | J. Simal-Gándara | M. Farag | Hui Wang | Qiaoling Su | H. Cao | Jupeng Gong | W. Zhong | Hui Cao | Jesus Simal-Gandara | Weizhi Zhong | Jupeng Gong | Qiaoling Su | Mohamed A. Farag
[1] R. Maselli,et al. Artificial intelligence and inflammatory bowel disease: Where are we going? , 2023, World journal of gastroenterology.
[2] Congxin Huang,et al. Maresin1 ameliorates ventricular remodelling and arrhythmia in mice models of myocardial infarction via NRF2/HO-1 and TLR4/NF-kB signalling. , 2022, International immunopharmacology.
[3] Zerong Zhang,et al. Kaempferol suppression of acute colitis is regulated by the efflux transporters BCRP and MRP2. , 2022, European Journal of Pharmaceutical Sciences.
[4] Che Fang,et al. The medicinal potential of bioactive metabolites from endophytic fungi in plants , 2022, eFood.
[5] U. Lewandowska,et al. Polyphenols and the potential mechanisms of their therapeutic benefits against inflammatory bowel diseases , 2022, Journal of Functional Foods.
[6] Jianbo Xiao,et al. Citri Reticulatae Pericarpium extract and flavonoids reduce inflammation in RAW 264.7 macrophages by inactivation of MAPK and NF‐κB pathways , 2022, Food Frontiers.
[7] Ke Wang,et al. Apigenin-Mn(II) loaded hyaluronic acid nanoparticles for ulcerative colitis therapy in mice , 2022, Frontiers in Chemistry.
[8] T. Ismail,et al. Therapeutic Potential of Quercetin Loaded Nanoparticles: Novel Insights in Alleviating Colitis in an Experimental DSS Induced Colitis Model , 2022, Biomedicines.
[9] Chi-Tang Ho,et al. Improving the stability and bioavailability of tea polyphenols by encapsulations: a review , 2022, Food Science and Human Wellness.
[10] Chao Zhao,et al. Recent advance of in vitro models in natural phytochemicals absorption and metabolism , 2022, eFood.
[11] S. Nie,et al. Protective effects of flavonoids isolated from Agrocybe aegirita on dextran sodium sulfate-induced colitis , 2022, eFood.
[12] Xianjun Meng,et al. Anti-inflammatory and intestinal microbiota modulation properties of high hydrostatic pressure treated cyanidin-3-glucoside and blueberry pectin complexes on dextran sodium sulfate-induced ulcerative colitis mice. , 2022, Food & function.
[13] H. Fan,et al. ROS-responsive nanoparticles for oral delivery of luteolin and targeted therapy of ulcerative colitis by regulating pathological microenvironment , 2022, Materials today. Bio.
[14] A. Lorentz,et al. Resveratrol Treatment Prevents Increase of Mast Cells in Both Murine OVA Enteritis and IL-10−/− Colitis , 2022, International journal of molecular sciences.
[15] S. Chidambaram,et al. Therapeutic benefits of flavonoids against neuroinflammation: a systematic review , 2022, Inflammopharmacology.
[16] Qiumei Shi,et al. Procyanidin A1 alleviates DSS-induced ulcerative colitis via regulating AMPK/mTOR/p70S6K-mediated autophagy , 2022, Journal of Physiology and Biochemistry.
[17] Miaomiao Wu,et al. Ellagic acid againsts intestinal stress via mobilizing intestinal lymphatic frequency , 2022, Food & Function.
[18] Jiannan Li,et al. Treatment of Inflammatory Bowel Disease: A Comprehensive Review , 2021, Frontiers in Medicine.
[19] S. Bhatia,et al. Polyphenols inhibiting MAPK signalling pathway mediated oxidative stress and inflammation in depression. , 2021, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[20] Jun Li,et al. Structural identification and in vitro antioxidant activities of anthocyanins in black chokeberry (Aronia melanocarpa Elliot) , 2021, eFood.
[21] Sunmin Park,et al. Association between IL-10 rs3024505 and susceptibility to inflammatory bowel disease: A systematic review and meta-analysis. , 2021, Cytokine.
[22] Jinpu Yang,et al. Curcumin Improves Epithelial Barrier Integrity of Caco-2 Monolayers by Inhibiting Endoplasmic Reticulum Stress and Subsequent Apoptosis , 2021, Gastroenterology research and practice.
[23] J. Simal-Gándara,et al. Advance toward isolation, extraction, metabolism and health benefits of kaempferol, a major dietary flavonoid with future perspectives , 2021, Critical reviews in food science and nutrition.
[24] Franck Carbonero. Plant‐based foods and the gut microbiome: A research profile of Franck Carbonero , 2021, Food Frontiers.
[25] Bo Wang,et al. Kaempferol Reduces Obesity, Prevents Intestinal Inflammation, and Modulates Gut Microbiota in High-fat Diet Mice: Kaempferol reduce inflammation and dysbacteria. , 2021, The Journal of nutritional biochemistry.
[26] J. Quiles,et al. Dietary phytochemicals modulate intestinal epithelial barrier dysfunction and autoimmune diseases , 2021, Food Frontiers.
[27] Dejian Huang,et al. Anti-Inflammation Activity of Flavones and Their Structure-Activity Relationship. , 2021, Journal of agricultural and food chemistry.
[28] T. Nagano,et al. Effect of a diet containing a mixture of soybean isoflavones and soyasaponins on contact hypersensitivity and gut microbiota in mice , 2021, Food Frontiers.
[29] J. Arcot. Understanding micronutrient bioavailability and the impact on micronutrient malnutrition , 2021, Food Frontiers.
[30] Xin Huang,et al. EGCG promotes PRKCA expression to alleviate LPS-induced acute lung injury and inflammatory response , 2021, Scientific Reports.
[31] P. de Vos,et al. Impact of Bacterial Metabolites on Gut Barrier Function and Host Immunity: A Focus on Bacterial Metabolism and Its Relevance for Intestinal Inflammation , 2021, Frontiers in Immunology.
[32] S. Sinha,et al. Artificial intelligence applications in inflammatory bowel disease: Emerging technologies and future directions , 2021, World journal of gastroenterology.
[33] Franck Carbonero,et al. Impact of cranberry juice consumption on gut and vaginal microbiota in postmenopausal women , 2021, Food Frontiers.
[34] Qin Wang,et al. Dendrobine Suppresses Lipopolysaccharide-induced Gut Inflammation in a Co-culture of Intestinal Epithelial Caco-2 Cells and RAW264.7 Macrophages , 2021 .
[35] S. Chakkaravarthi,et al. Role of dietary polyphenols on gut microbiota, their metabolites and health benefits. , 2021, Food research international.
[36] Ji Zhu,et al. Clinical applications of artificial intelligence and machine learning‐based methods in inflammatory bowel disease , 2021, Journal of gastroenterology and hepatology.
[37] H. Chiu,et al. Efficacy of Probiotic Milk Formula on Blood Lipid and Intestinal Function in Mild Hypercholesterolemic Volunteers: A Placebo-control, Randomized Clinical Trial , 2021, Probiotics and Antimicrobial Proteins.
[38] A. Rodriguez,et al. Plant Phenolics: Bioavailability as a Key Determinant of Their Potential Health-Promoting Applications , 2020, Antioxidants.
[39] Alexander N. Levy,et al. Emerging use of artificial intelligence in inflammatory bowel disease , 2020, World journal of gastroenterology.
[40] M. Sakly,et al. Aqueous Leaf Extract of Pistacia lentiscus Improves Acute Acetic Acid-Induced Colitis in Rats by Reducing Inflammation and Oxidative Stress. , 2020, Journal of medicinal food.
[41] J. Schwartz,et al. Gut/Oral Bacteria Variability May Explain the High Efficacy of Green Tea in Rodent Tumor Inhibition and Its Absence in Humans , 2020, Molecules.
[42] V. Patravale,et al. Antiviral activity of green tea and black tea polyphenols in prophylaxis and treatment of COVID-19: A review , 2020, Phytomedicine.
[43] Ping Li,et al. Downregulation of OCTN2 by Cytokines Plays an Important Role in the Progression of Inflammatory Bowel Disease. , 2020, Biochemical pharmacology.
[44] E. Çapanoğlu,et al. Interaction of dietary polyphenols and gut microbiota: Microbial metabolism of polyphenols, influence on the gut microbiota, and implications on host health , 2020, Food Frontiers.
[45] Liyong Luo,et al. The Prebiotic Properties of Green and Dark Tea Contribute to The Protective Effects in Chemical-Induced Colitis in Mice: A Fecal Microbiota Transplantation Study. , 2020, Journal of agricultural and food chemistry.
[46] S. A. Jacob,et al. Prebiotic potential of polyphenols, its effect on gut microbiota and anthropometric/clinical markers: A systematic review of randomised controlled trials , 2020, Trends in Food Science & Technology.
[47] P. Wolf,et al. Quercetin Alleviates Intestinal Oxidative Damage Induced by H2O2 via Modulation of GSH: In Vitro Screening and In Vivo Evaluation in a Colitis Model of Mice , 2020, ACS omega.
[48] Scaldaferri Franco,et al. Nutrition, IBD and Gut Microbiota: A Review. , 2020, Nutrients.
[49] M. Ropotă,et al. Bioactive compounds from dietary whole grape seed meal improved colonic inflammation via inhibition of MAPKs and NF-kB signaling in pigs with DSS induced colitis , 2020 .
[50] Y. Duan,et al. Antioxidant mechanism of tea polyphenols and its impact on health benefits , 2020, Animal nutrition.
[51] Hang Xiao,et al. Dietary resveratrol attenuated colitis and modulated gut microbiota in dextran sulfate sodium-treated mice. , 2019, Food & function.
[52] S. Brant,et al. Deletion of IL-6 exacerbates colitis and induces systemic inflammation in IL-10-deficient mice. , 2019, Journal of Crohn's & colitis.
[53] F. Brighenti,et al. Catechin and Procyanidin B2 Modulate the Expression of Tight Junction Proteins but Do Not Protect from Inflammation-Induced Changes in Permeability in Human Intestinal Cell Monolayers , 2019, Nutrients.
[54] Ashutosh Gupta,et al. Beneficial Effects of Dietary Polyphenols on Gut Microbiota and Strategies to Improve Delivery Efficiency , 2019, Nutrients.
[55] S. Marchianò,et al. The Aryl Hydrocarbon Receptor (AhR) Mediates the Counter-Regulatory Effects of Pelargonidins in Models of Inflammation and Metabolic Dysfunctions , 2019, Nutrients.
[56] Hafiz Ansar Rasul Suleria,et al. Proanthocyanidins: A comprehensive review. , 2019, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[57] N. Ramesh,et al. Pharmacokinetic, toxicokinetic, and bioavailability studies of epigallocatechin-3-gallate loaded solid lipid nanoparticle in rat model , 2019, Drug development and industrial pharmacy.
[58] Yan Song,et al. Dietary Quercetin Increases Colonic Microbial Diversity and Attenuates Colitis Severity in Citrobacter rodentium-Infected Mice , 2019, Front. Microbiol..
[59] X. Mao,et al. The Bidirectional Interactions between Resveratrol and Gut Microbiota: An Insight into Oxidative Stress and Inflammatory Bowel Disease Therapy , 2019, BioMed research international.
[60] F. Powrie,et al. Cytokine Networks in the Pathophysiology of Inflammatory Bowel Disease. , 2019, Immunity.
[61] M. Shariati,et al. Luteolin, a flavonoid, as an anticancer agent: A review. , 2019, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[62] Qiaozhi Zhang,et al. Anthocyanins from colored maize ameliorated the inflammatory paracrine interplay between macrophages and adipocytes through regulation of NF-κB and JNK-dependent MAPK pathways , 2019, Journal of Functional Foods.
[63] W. Miller,et al. The 3′ Untranslated Region of a Plant Viral RNA Directs Efficient Cap-Independent Translation in Plant and Mammalian Systems , 2019, Pathogens.
[64] Lin Qiu,et al. A new epicatechin glucopyranoside derivative from Styrax suberifolius , 2019, Natural product research.
[65] L. George,et al. LPS-induced Apoptosis is Partially Mediated by Hydrogen Sulphide in RAW 264.7 Murine Macrophages , 2019, Immunological investigations.
[66] Ping Liu,et al. Kaempferol inhibits multiple pathways involved in the secretion of inflammatory mediators from LPS‑induced rat intestinal microvascular endothelial cells. , 2018, Molecular medicine reports.
[67] Chung S. Yang,et al. Studies on the Prevention of Cancer and Cardiometabolic Diseases by Tea: Issues on Mechanisms, Effective Doses, and Toxicities. , 2018, Journal of agricultural and food chemistry.
[68] Yingwei Chen,et al. Curcumin alleviates DSS‐induced colitis via inhibiting NLRP3 inflammsome activation and IL‐1&bgr; production , 2018, Molecular immunology.
[69] J. Mercader,et al. Resveratrol, Metabolic Syndrome, and Gut Microbiota , 2018, Nutrients.
[70] D. Schuppan,et al. Screening of herbal extracts for TLR2- and TLR4-dependent anti-inflammatory effects , 2018, PloS one.
[71] N. Yang,et al. Transcriptomic analysis reveals a controlling mechanism for NLRP3 and IL-17A in dextran sulfate sodium (DSS)-induced colitis , 2018, Scientific Reports.
[72] Chi-Ming Liu,et al. The Cancer Prevention, Anti-Inflammatory and Anti-Oxidation of Bioactive Phytochemicals Targeting the TLR4 Signaling Pathway , 2018, International journal of molecular sciences.
[73] D. Veale,et al. Hypoxia, oxidative stress and inflammation. , 2018, Free radical biology & medicine.
[74] Pei-Bei Duan,et al. Curcumin as a therapeutic agent for blocking NF-κB activation in ulcerative colitis , 2018, Immunopharmacology and immunotoxicology.
[75] Zhigang Chen,et al. Effects of Quercetin on Proliferation and H2O2-Induced Apoptosis of Intestinal Porcine Enterocyte Cells , 2018, Molecules.
[76] X. Ran,et al. Farrerol Ameliorates TNBS-Induced Colonic Inflammation by Inhibiting ERK1/2, JNK1/2, and NF-κB Signaling Pathway , 2018, International journal of molecular sciences.
[77] B. Cukrowska,et al. Oxidative and Antioxidative Stress Status in Children with Inflammatory Bowel Disease as a Result of a Chronic Inflammatory Process , 2018, Mediators of inflammation.
[78] P. Oteiza,et al. (-)-Epicatechin and its metabolites prevent palmitate-induced NADPH oxidase upregulation, oxidative stress and insulin resistance in HepG2 cells. , 2018, Archives of biochemistry and biophysics.
[79] E. Hirsch,et al. Molecular mechanism of action of Pelargonidin-3-O-glucoside, the main anthocyanin responsible for the anti-inflammatory effect of strawberry fruits. , 2018, Food chemistry.
[80] N. Sung,et al. Epigallocatechin-3-Gallate Regulates Anti-Inflammatory Action Through 67-kDa Laminin Receptor-Mediated Tollip Signaling Induction in Lipopolysaccharide-Stimulated Human Intestinal Epithelial Cells , 2018, Cellular Physiology and Biochemistry.
[81] B. De Felice,et al. Quercetin Increases MUC2 and MUC5AC Gene Expression and Secretion in Intestinal Goblet Cell-Like LS174T via PLC/PKCα/ERK1-2 Pathway , 2018, Front. Physiol..
[82] Kai Ji,et al. Andrographolide derivative CX‐10 ameliorates dextran sulphate sodium‐induced ulcerative colitis in mice: Involvement of NF‐&kgr;B and MAPK signalling pathways , 2018, International immunopharmacology.
[83] Ping Li,et al. Dietary quercetin ameliorates experimental colitis in mouse by remodeling the function of colonic macrophages via a heme oxygenase-1-dependent pathway , 2018, Cell cycle.
[84] Y. Keum,et al. Antioxidant, anti‐inflammatory, and enzyme inhibitory activity of natural plant flavonoids and their synthesized derivatives , 2018, Journal of biochemical and molecular toxicology.
[85] Nima Hamidi,et al. Worldwide incidence and prevalence of inflammatory bowel disease in the 21st century: a systematic review of population-based studies , 2017, The Lancet.
[86] Honggang Zhou,et al. Apigenin inhibits colonic inflammation and tumorigenesis by suppressing STAT3-NF-κB signaling , 2017, Oncotarget.
[87] J. Kowalski,et al. Effect of apigenin, kaempferol and resveratrol on the gene expression and protein secretion of tumor necrosis factor alpha (TNF-α) and interleukin-10 (IL-10) in RAW-264.7 macrophages. , 2017, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[88] T. Billiar,et al. Inflammasome and Autophagy Regulation: A Two-way Street , 2017, Molecular medicine.
[89] Hailiang Huang,et al. Fine-mapping inflammatory bowel disease loci to single variant resolution , 2017, Nature.
[90] I. Thiele,et al. Gut microbiota functions: metabolism of nutrients and other food components , 2017, European Journal of Nutrition.
[91] A. Speciale,et al. Cyanidin-3-O-Glucoside Modulates the In Vitro Inflammatory Crosstalk between Intestinal Epithelial and Endothelial Cells , 2017, Mediators of inflammation.
[92] N. Kamada,et al. Host-microbial Cross-talk in Inflammatory Bowel Disease , 2017, Immune network.
[93] J. Laranjinha,et al. Luteolin suppresses the JAK/STAT pathway in a cellular model of intestinal inflammation. , 2017, Food & function.
[94] S. Gopi,et al. Biological activities of curcuminoids, other biomolecules from turmeric and their derivatives – A review , 2016, Journal of traditional and complementary medicine.
[95] Hesheng Luo,et al. Luteolin ameliorates dextran sulfate sodium-induced colitis in mice possibly through activation of the Nrf2 signaling pathway. , 2016, International immunopharmacology.
[96] Jinyong Peng,et al. Dioscin attenuates gastric ischemia/reperfusion injury through the down-regulation of PKC/ERK1/2 signaling via PKCα and PKCβ2 inhibition. , 2016, Chemico-biological interactions.
[97] S. Saini,et al. Corticosteroid Use and Complications in a US Inflammatory Bowel Disease Cohort , 2016, PloS one.
[98] S. Dharmawardhane,et al. Anti-Breast Cancer Potential of Quercetin via the Akt/AMPK/Mammalian Target of Rapamycin (mTOR) Signaling Cascade , 2016, PloS one.
[99] G. Rogler,et al. Bilberry-Derived Anthocyanins Modulate Cytokine Expression in the Intestine of Patients with Ulcerative Colitis , 2016, PloS one.
[100] C. Anandharamakrishnan,et al. Nanoemulsion based delivery system for improved bioaccessibility and Caco-2 cell monolayer permeability of green tea catechins , 2016 .
[101] Ying-Jan Wang,et al. Directly interact with Keap1 and LPS is involved in the anti-inflammatory mechanisms of (-)-epicatechin-3-gallate in LPS-induced macrophages and endotoxemia. , 2016, Free radical biology & medicine.
[102] M. A. Rosillo,et al. Apigenin supplementation protects the development of dextran sulfate sodium-induced murine experimental colitis by inhibiting canonical and non-canonical inflammasome signaling pathways. , 2016, The Journal of nutritional biochemistry.
[103] J. M. Kumar,et al. Fisetin, a dietary flavonoid, ameliorates experimental colitis in mice: Relevance of NF-κB signaling. , 2016, The Journal of nutritional biochemistry.
[104] Sun-Young Chang,et al. Heme oxygenase 1-mediated novel anti-inflammatory activities of Salvia plebeia and its active components. , 2015, Journal of ethnopharmacology.
[105] S. Ng,et al. Curcumin in Combination With Mesalamine Induces Remission in Patients With Mild-to-Moderate Ulcerative Colitis in a Randomized Controlled Trial. , 2015, Clinical gastroenterology and hepatology : the official clinical practice journal of the American Gastroenterological Association.
[106] M. Afzal,et al. Green tea polyphenols and their potential role in health and disease , 2015, Inflammopharmacology.
[107] A. Hekmatdoost,et al. Anti-Inflammatory Effects of Resveratrol in Patients with Ulcerative Colitis: A Randomized, Double-Blind, Placebo-controlled Pilot Study. , 2015, Archives of medical research.
[108] C. Kunz,et al. Inhibition of low-grade inflammation by anthocyanins from grape extract in an in vitro epithelial-endothelial co-culture model. , 2015, Food & function.
[109] M. Farzaei,et al. The role of dietary polyphenols in the management of inflammatory bowel disease. , 2015, Current pharmaceutical biotechnology.
[110] F. Lombó,et al. Bioavailability of Dietary Polyphenols and Gut Microbiota Metabolism: Antimicrobial Properties , 2015, BioMed research international.
[111] B. Bartolomé,et al. A Survey of Modulation of Gut Microbiota by Dietary Polyphenols , 2015, BioMed research international.
[112] E. Levy,et al. Prevention of oxidative stress, inflammation and mitochondrial dysfunction in the intestine by different cranberry phenolic fractions. , 2015, Clinical science.
[113] M. Monte,et al. Rutin has intestinal antiinflammatory effects in the CD4+ CD62L+ T cell transfer model of colitis. , 2014, Pharmacological research.
[114] A. F. Mendes,et al. Resveratrol Modulates Cytokine-Induced JAK/STAT Activation More Efficiently than 5-Aminosalicylic Acid: An In Vitro Approach , 2014, PloS one.
[115] Guangji Wang,et al. Flavonoid Apigenin Inhibits Lipopolysaccharide-Induced Inflammatory Response through Multiple Mechanisms in Macrophages , 2014, PloS one.
[116] D. Sun-Waterhouse,et al. Delivery of green tea catechin and epigallocatechin gallate in liposomes incorporated into low-fat hard cheese. , 2014, Food chemistry.
[117] Wu-yang Huang,et al. Anti-Inflammatory Effect of the Blueberry Anthocyanins Malvidin-3-Glucoside and Malvidin-3-Galactoside in Endothelial Cells , 2014, Molecules.
[118] Hui-Yi Lin,et al. Lotus leaf (Nelumbo nucifera) and its active constituents prevent inflammatory responses in macrophages via JNK/NF-κB signaling pathway. , 2014, The American journal of Chinese medicine.
[119] Markus F. Neurath,et al. Cytokines in inflammatory bowel disease , 2014, Nature Reviews Immunology.
[120] Yong-yu Li,et al. Inflammatory bowel disease: pathogenesis. , 2014, World journal of gastroenterology.
[121] Kori L Wallace,et al. Immunopathology of inflammatory bowel disease. , 2014, World journal of gastroenterology.
[122] Mina Sakuma,et al. Effect of dietary supplementation of (-)-epigallocatechin gallate on gut microbiota and biomarkers of colonic fermentation in rats. , 2014, Journal of nutritional science and vitaminology.
[123] M. Du,et al. Dietary grape seed extract ameliorates symptoms of inflammatory bowel disease in IL10-deficient mice. , 2013, Molecular nutrition & food research.
[124] G. Kullak-Ublick,et al. Risks of Inflammatory Bowel Disease Treatment with Glucocorticosteroids and Aminosalicylates , 2013, Digestive Diseases.
[125] T. Ozawa,et al. A study of the antibacterial mechanism of catechins: Isolation and identification of Escherichia coli cell surface proteins that interact with epigallocatechin gallate , 2013 .
[126] Shizuo Akira,et al. Autophagy in infection, inflammation and immunity , 2013, Nature Reviews Immunology.
[127] M. Salvador,et al. Abarema cochliacarpos reduces LPS-induced inflammatory response in murine peritoneal macrophages regulating ROS-MAPK signal pathway. , 2013, Journal of ethnopharmacology.
[128] Sang-Hyun Kim,et al. Galangin attenuates mast cell-mediated allergic inflammation. , 2013, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[129] W. D. de Villiers,et al. Green Tea Polyphenols and Sulfasalazine have Parallel Anti-Inflammatory Properties in Colitis Models , 2013, Front. Immunol..
[130] Xin Wang,et al. The biodiversity and composition of the dominant fecal microbiota in patients with inflammatory bowel disease. , 2013, Diagnostic microbiology and infectious disease.
[131] G. Rogler,et al. Bilberry ingestion improves disease activity in mild to moderate ulcerative colitis - an open pilot study. , 2012, Journal of Crohn's & colitis.
[132] Yan Lin,et al. Cytokine expression and the role of Th17 cells in a mouse model of colitis. , 2012, Molecular medicine reports.
[133] S. Hur,et al. Review of natural products actions on cytokines in inflammatory bowel disease. , 2012, Nutrition research.
[134] Y. Benno,et al. Effects of green tea consumption on human fecal microbiota with special reference to Bifidobacterium species , 2012, Microbiology and immunology.
[135] A. Cianciulli,et al. Modulation of NF-κB activation by resveratrol in LPS treated human intestinal cells results in downregulation of PGE2 production and COX-2 expression. , 2012, Toxicology in vitro : an international journal published in association with BIBRA.
[136] E. Riboli,et al. Intake estimation of total and individual flavan-3-ols, proanthocyanidins and theaflavins, their food sources and determinants in the European Prospective Investigation into Cancer and Nutrition (EPIC) study. , 2012, The British journal of nutrition.
[137] Timothy L. Tickle,et al. Dysfunction of the intestinal microbiome in inflammatory bowel disease and treatment , 2012, Genome Biology.
[138] M. A. Rosillo,et al. Dietary supplementation of an ellagic acid-enriched pomegranate extract attenuates chronic colonic inflammation in rats. , 2012, Pharmacological research.
[139] M. Garcia-Conesa,et al. Intestinal ellagitannin metabolites ameliorate cytokine-induced inflammation and associated molecular markers in human colon fibroblasts. , 2012, Journal of agricultural and food chemistry.
[140] Ji Zhu,et al. Resveratrol has antiinflammatory and antifibrotic effects in the peptidoglycan‐polysaccharide rat model of Crohn's disease , 2012, Inflammatory bowel diseases.
[141] S. Asadi,et al. A Case Series of a Luteolin Formulation (Neuroprotek®) in Children with Autism Spectrum Disorders , 2012, International journal of immunopathology and pharmacology.
[142] Y. Joo,et al. Epigallocatechin-3-gallate Inhibits LPS-Induced NF-κB and MAPK Signaling Pathways in Bone Marrow-Derived Macrophages , 2012, Gut and liver.
[143] S. Westphal,et al. Green tea polyphenol epigallocatechin-3-gallate shows therapeutic antioxidative effects in a murine model of colitis. , 2012, Journal of Crohn's & colitis.
[144] G. Poli,et al. Polyphenol supplementation as a complementary medicinal approach to treating inflammatory bowel disease. , 2011, Current medicinal chemistry.
[145] Yan-Hong Wang,et al. Proanthocyanidins from grape seeds modulates the nuclear factor-kappa B signal transduction pathways in rats with TNBS-induced recurrent ulcerative colitis. , 2011, International immunopharmacology.
[146] M. A. Rosillo,et al. Protective effect of ellagic acid, a natural polyphenolic compound, in a murine model of Crohn's disease. , 2011, Biochemical pharmacology.
[147] C. Fraga,et al. Dietary flavonoids: Role of (-)-epicatechin and related procyanidins in cell signaling. , 2011, Free radical biology & medicine.
[148] A. Zarzuelo,et al. Effects of Flavonoids and other Polyphenols on Inflammation , 2011, Critical reviews in food science and nutrition.
[149] Philippe P Roux,et al. Activation and Function of the MAPKs and Their Substrates, the MAPK-Activated Protein Kinases , 2011, Microbiology and Molecular Reviews.
[150] L. Peyrin-Biroulet,et al. Long‐term complications, extraintestinal manifestations, and mortality in adult Crohn's disease in population‐based cohorts , 2011, Inflammatory bowel diseases.
[151] 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.
[152] Gun-Hee Kim,et al. Evaluation of antioxidant and inhibitory activities for different subclasses flavonoids on enzymes for rheumatoid arthritis. , 2010, Journal of food science.
[153] J. Espín,et al. NF-kappaB-dependent anti-inflammatory activity of urolithins, gut microbiota ellagic acid-derived metabolites, in human colonic fibroblasts. , 2010, The British journal of nutrition.
[154] D. Ferreira,et al. The influence of pomegranate by-product and punicalagins on selected groups of human intestinal microbiota. , 2010, International journal of food microbiology.
[155] Jia Wei,et al. Signaling pathways associated with inflammatory bowel disease. , 2010, Recent patents on inflammation & allergy drug discovery.
[156] Jun Yao,et al. Anti-oxidant effects of resveratrol on mice with DSS-induced ulcerative colitis. , 2010, Archives of medical research.
[157] B. Bandgar,et al. Synthesis and biological evaluation of nitrogen-containing chalcones as possible anti-inflammatory and antioxidant agents. , 2010, Bioorganic & medicinal chemistry letters.
[158] C. Pagliuca,et al. Polyphenol metabolites from colonic microbiota exert anti-inflammatory activity on different inflammation models. , 2009, Molecular nutrition & food research.
[159] E. Zoetendal,et al. Reduction of colonic inflammation in HLA-B27 transgenic rats by feeding Marie Ménard apples, rich in polyphenols† , 2009, British Journal of Nutrition.
[160] M. Clifford,et al. Dietary phenolics: chemistry, bioavailability and effects on health. , 2009, Natural product reports.
[161] J. Espín,et al. Effect of a low dose of dietary resveratrol on colon microbiota, inflammation and tissue damage in a DSS-induced colitis rat model. , 2009, Journal of agricultural and food chemistry.
[162] I. Merfort,et al. Anti-Oxidant, Anti-Inflammatory and Anti-Allergic Activities of Luteolin , 2008, Planta medica.
[163] C. Fraga,et al. TNFalpha-induced NF-kappaB activation and cell oxidant production are modulated by hexameric procyanidins in Caco-2 cells. , 2008, Archives of biochemistry and biophysics.
[164] J. Yamamoto-Furusho,et al. Role of cytokines in inflammatory bowel disease. , 2008, World journal of gastroenterology.
[165] H. Oz,et al. Green-tea Polyphenols Downregulate Cyclooxygenase and Bcl-2 Activity in Acetaminophen-induced Hepatotoxicity , 2008, Digestive Diseases and Sciences.
[166] J. Panés,et al. Steroid‐refractory ulcerative colitis: Predictive factors of response to cyclosporine and validation in an independent cohort , 2008, Inflammatory bowel diseases.
[167] Robert A Newman,et al. Bioavailability of curcumin: problems and promises. , 2007, Molecular pharmaceutics.
[168] N. Pace,et al. Molecular-phylogenetic characterization of microbial community imbalances in human inflammatory bowel diseases , 2007, Proceedings of the National Academy of Sciences.
[169] M. Heinonen,et al. Anti-Inflammatory Effects of Flavonoids: Genistein, Kaempferol, Quercetin, and Daidzein Inhibit STAT-1 and NF-κB Activations, Whereas Flavone, Isorhamnetin, Naringenin, and Pelargonidin Inhibit only NF-κB Activation along with Their Inhibitory Effect on iNOS Expression and NO Production in Activated , 2007, Mediators of inflammation.
[170] M. Maiuri,et al. Lycopene, quercetin and tyrosol prevent macrophage activation induced by gliadin and IFN-gamma. , 2007, European journal of pharmacology.
[171] S. Carding,et al. Inflammatory bowel disease: cause and immunobiology , 2007, The Lancet.
[172] D. Leibfritz,et al. Free radicals and antioxidants in normal physiological functions and human disease. , 2007, The international journal of biochemistry & cell biology.
[173] M. Sata,et al. Interleukin-6 trans-signaling in inflammatory bowel disease. , 2006, Cytokine & growth factor reviews.
[174] S. Sang,et al. Bioavailability and stability issues in understanding the cancer preventive effects of tea polyphenols , 2006 .
[175] M. Sánchez-Hidalgo,et al. The effects of resveratrol, a phytoalexin derived from red wines, on chronic inflammation induced in an experimentally induced colitis model , 2006, British journal of pharmacology.
[176] I. Adcock,et al. Update on glucocorticoid action and resistance. , 2006, The Journal of allergy and clinical immunology.
[177] A. Forbes,et al. European evidence based consensus on the diagnosis and management of Crohn’s disease: current management , 2006, Gut.
[178] Y. Toiyama,et al. The Expression Patterns of Toll-Like Receptors in the Ileal Pouch Mucosa of Postoperative Ulcerative Colitis Patients , 2006, Surgery Today.
[179] J. Ragoussis,et al. Single nucleotide polymorphisms in TNFSF15 confer susceptibility to Crohn's disease. , 2005, Human molecular genetics.
[180] S. Katz,et al. Curcumin Therapy in Inflammatory Bowel Disease: A Pilot Study , 2005, Digestive Diseases and Sciences.
[181] C. Manichanh,et al. Reduced diversity of faecal microbiota in Crohn’s disease revealed by a metagenomic approach , 2005, Gut.
[182] E. Mazzon,et al. Green tea polyphenol extract attenuates colon injury induced by experimental colitis , 2005, Free radical research.
[183] Jide Wang,et al. Preventive and therapeutic effects of NF-kappaB inhibitor curcumin in rats colitis induced by trinitrobenzene sulfonic acid. , 2005, World journal of gastroenterology.
[184] Takuji Tanaka,et al. Dietary rutin, but not its aglycone quercetin, ameliorates dextran sulfate sodium-induced experimental colitis in mice: attenuation of pro-inflammatory gene expression. , 2005, Biochemical pharmacology.
[185] D. Heber,et al. Bioavailability and antioxidant activity of tea flavanols after consumption of green tea, black tea, or a green tea extract supplement. , 2004, The American journal of clinical nutrition.
[186] Paul Rutgeerts,et al. C-Reactive Protein as a Marker for Inflammatory Bowel Disease , 2004, Inflammatory bowel diseases.
[187] Nino Russo,et al. Structure, Conformation, and Electronic Properties of Apigenin, Luteolin, and Taxifolin Antioxidants. A First Principle Theoretical Study , 2004 .
[188] H. Matsuda,et al. Structural requirements of flavonoids for nitric oxide production inhibitory activity and mechanism of action. , 2003, Bioorganic & medicinal chemistry.
[189] H. Allgayer,et al. Aminosalicylates: Potential Antineoplastic Actions in Colon Cancer Prevention , 2002, Scandinavian journal of gastroenterology.
[190] W. Sandborn,et al. Inhibition of Interleukin-1-stimulated NF-κB RelA/p65 Phosphorylation by Mesalamine Is Accompanied by Decreased Transcriptional Activity* , 1999, The Journal of Biological Chemistry.
[191] Seidman,et al. Colonic explant production of IL‐1 and its receptor antagonist is imbalanced in inflammatory bowel disease (IBD) , 1998, Clinical and experimental immunology.
[192] T. Mitsuoka,et al. In Vivo Effects of Tea Polyphenol Intake on Human Intestinal Microflora and Metabolism. , 1992, Bioscience, biotechnology, and biochemistry.