For: | Levin A, Shibolet O. Toll-like receptors in inflammatory bowel disease-stepping into uncharted territory. World J Gastroenterol 2008; 14(33): 5149-5153 [PMID: 18777591 DOI: 10.3748/wjg.14.5149] |
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URL: | https://www.wjgnet.com/1007-9327/full/v14/i33/5149.htm |
Number | Citing Articles |
1 |
Wei Dou, Jingjing Zhang, Aning Sun, Eryun Zhang, Lili Ding, Subhajit Mukherjee, Xiaohui Wei, Guixin Chou, Zheng-Tao Wang, Sridhar Mani. Protective effect of naringenin against experimental colitis via suppression of Toll-like receptor 4/NF-κB signalling. British Journal of Nutrition 2013; 110(4): 599 doi: 10.1017/S0007114512005594
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2 |
Jun-Young Kim, Sun-Min Seo, Han-Woong Kim, Woo-Jong Lee, Yang-Kyu Choi. Protective Role of the Toll-Like Receptor 5 Agonist KMRC011 against Murine Colitis Induced by Citrobacter rodentium and Dextran Sulfate Sodium. Journal of Microbiology and Biotechnology 2023; 33(1): 35 doi: 10.4014/jmb.2209.09048
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3 |
Bor-Chyuan Su, Jyh-Yih Chen. Antimicrobial Peptide Epinecidin-1 Modulates MyD88 Protein Levels via the Proteasome Degradation Pathway. Marine Drugs 2017; 15(11): 362 doi: 10.3390/md15110362
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4 |
Lejla Gul, Dezso Modos, Sonia Fonseca, Matthew Madgwick, John P. Thomas, Padhmanand Sudhakar, Catherine Booth, Régis Stentz, Simon R. Carding, Tamas Korcsmaros. Extracellular vesicles produced by the human commensal gut bacterium Bacteroides thetaiotaomicron affect host immune pathways in a cell‐type specific manner that are altered in inflammatory bowel disease. Journal of Extracellular Vesicles 2022; 11(1) doi: 10.1002/jev2.12189
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5 |
C. Lutz, B. Weder, A. Hünerwadel, S. Fagagnini, B. Lang, N. Beerenwinkel, J. B. Rossel, G. Rogler, B. Misselwitz, M. Hausmann. Myeloid differentiation primary response gene (MyD) 88 signalling is not essential for intestinal fibrosis development. Scientific Reports 2017; 7(1) doi: 10.1038/s41598-017-17755-7
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6 |
Hubert Hug, M. Mohajeri, Giorgio La Fata. Toll-Like Receptors: Regulators of the Immune Response in the Human Gut. Nutrients 2018; 10(2): 203 doi: 10.3390/nu10020203
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7 |
Wenjing Song, Jiang Chen, Gaoxiang Ai, Pingwen Xiong, Qiongli Song, Qipeng Wei, Zhiheng Zou, Xiaolian Chen. Mechanisms of the effects of turpiniae folium extract on growth performance, immunity, antioxidant activity and intestinal barrier function in LPS-challenged broilers. Poultry Science 2025; 104(4): 104903 doi: 10.1016/j.psj.2025.104903
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8 |
Bin Zheng, Mary E. Morgan, Hendrik J.G. van de Kant, Johan Garssen, Gert Folkerts, Aletta D. Kraneveld. Transcriptional modulation of pattern recognition receptors in chronic colitis in mice is accompanied with Th1 and Th17 response. Biochemistry and Biophysics Reports 2017; 12: 29 doi: 10.1016/j.bbrep.2017.08.009
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9 |
Wei-Lian Bao, Qibiao Wu, Bin Hu, Dongdong Sun, Shengnan Zhao, Xiaoyan Shen, Haibo Cheng, Weixing Shen. Oral Nanoparticles of SNX10-shRNA Plasmids Ameliorate Mouse Colitis. International Journal of Nanomedicine 2021; : 345 doi: 10.2147/IJN.S286392
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10 |
Fabio Alessandro Facchini, Davide Di Fusco, Simona Barresi, Andrea Luraghi, Alberto Minotti, Francesca Granucci, Giovanni Monteleone, Francesco Peri, Ivan Monteleone. Effect of chemical modulation of toll-like receptor 4 in an animal model of ulcerative colitis. European Journal of Clinical Pharmacology 2020; 76(3): 409 doi: 10.1007/s00228-019-02799-7
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11 |
I J J Claes, Sarah Lebeer, C Shen, T L A Verhoeven, E Dilissen, G De Hertogh, D M A Bullens, J L Ceuppens, G Van Assche, S Vermeire, P Rutgeerts, J Vanderleyden, S C J De Keersmaecker. Impact of lipoteichoic acid modification on the performance of the probiotic Lactobacillus rhamnosus GG in experimental colitis. Clinical and Experimental Immunology 2010; 162(2): 306 doi: 10.1111/j.1365-2249.2010.04228.x
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12 |
Alex I. Chernyavsky, Valentin Galitovskiy, Igor B. Shchepotin, Sergei A. Grando. Anti-Inflammatory Effects of the Nicotinergic Peptides SLURP-1 and SLURP-2 on Human Intestinal Epithelial Cells and Immunocytes. BioMed Research International 2014; 2014: 1 doi: 10.1155/2014/609086
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13 |
ShuMin Sun, XueLin Wang, XiuPing Wu, Ying Zhao, Feng Wang, XiaoLei Liu, YanXia Song, ZhiLiang Wu, MingYuan Liu. Toll-like receptor activation by helminths or helminth products to alleviate inflammatory bowel disease. Parasites & Vectors 2011; 4(1) doi: 10.1186/1756-3305-4-186
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14 |
Adriano Lama, Gustavo Provensi, Roberta Amoriello, Claudio Pirozzi, Barbara Rani, Maria Pina Mollica, Giuseppina Mattace Raso, Clara Ballerini, Rosaria Meli, Maria Beatrice Passani. The anti-inflammatory and immune-modulatory effects of OEA limit DSS-induced colitis in mice. Biomedicine & Pharmacotherapy 2020; 129: 110368 doi: 10.1016/j.biopha.2020.110368
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15 |
C. Reiff, M. Delday, G. Rucklidge, M. Reid, G. Duncan, S. Wohlgemuth, G. Hörmannsperger, G. Loh, M. Blaut, E. Collie-Duguid, D. Haller, D. Kelly. Balancing inflammatory, lipid, and xenobiotic signaling pathways by VSL#3, a biotherapeutic agent, in the treatment of inflammatory bowel disease. Inflammatory Bowel Diseases 2009; 15(11): 1721 doi: 10.1002/ibd.20999
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16 |
Hamid Asadzadeh-Aghdaei, Leili Rejali, Mahyar Nourian, Vahid Chaleshi, Naghmeh Zamani, Shaghayegh Baradaran-Ghavami, Mohsen Nemati, Shabnam Shahrokh, Mohsen Norouzinia, Massoud Vosough, Ehsan Nazemalhosseini-Mojarad, Mohammadreza Zali. Toll-Like Receptor 7 a Novel Non-Invasive Inflammatory Genetic Sensor for Ulcerative Colitis Remission Monitoring. Advanced Biomedical Research 2023; 12(1) doi: 10.4103/abr.abr_24_22
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17 |
Hyesun Hyun, Seika Hashimoto-Hill, Myunghoo Kim, Michael D. Tsifansky, Chang H. Kim, Yoon Yeo. Succinylated Chitosan Derivative Has Local Protective Effects on Intestinal Inflammation. ACS Biomaterials Science & Engineering 2017; 3(8): 1853 doi: 10.1021/acsbiomaterials.7b00262
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