For: |
Sventoraityte J, Zvirbliene A, Franke A, Kwiatkowski R, Kiudelis G, Kupcinskas L, Schreiber S. |
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URL: | https://www.wjgnet.com/1007-9327/full/v16/i3/359.htm |
Number | Citing Articles |
1 |
Nadia Serbati, Nezha Senhaji, Brehima Diakite, Wafaa Badre, Sellama Nadifi. IL23R and ATG16L1 variants in Moroccan patients with inflammatory bowel disease. BMC Research Notes 2014; 7(1) doi: 10.1186/1756-0500-7-570
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2 |
Ayman S Bannaga, Alexia Farrugia, Ramesh P Arasaradnam. Diagnosing Inflammatory bowel disease using noninvasive applications of volatile organic compounds: a systematic review. Expert Review of Gastroenterology & Hepatology 2019; 13(11): 1113 doi: 10.1080/17474124.2019.1685873
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3 |
James P. Dalton, Alan Desmond, Fergus Shanahan, Colin Hill. Detection of Mycobacterium avium subspecies paratuberculosis in patients with Crohn’s disease is unrelated to the presence of single nucleotide polymorphisms rs2241880 (ATG16L1) and rs10045431 (IL12B). Medical Microbiology and Immunology 2014; 203(3): 195 doi: 10.1007/s00430-014-0332-7
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4 |
Youtao Wang, Shengkui Wang, Tong Liu, Wenji Tu, Wengui Li, Guodong Dong, Cong Xu, Bo Qin, Kaihua Liu, Jie Yang, Jun Chai, Xianwei Shi, Yifang Zhang, Jian-Feng Liu. CARD15 Gene Polymorphisms Are Associated with Tuberculosis Susceptibility in Chinese Holstein Cows. PLOS ONE 2015; 10(8): e0135085 doi: 10.1371/journal.pone.0135085
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5 |
Wang-Dong Xu, Qi-Bing Xie, Yi Zhao, Yi Liu. Association of Interleukin-23 receptor gene polymorphisms with susceptibility to Crohn’s disease: A meta-analysis. Scientific Reports 2015; 5(1) doi: 10.1038/srep18584
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6 |
Bei-Bei Zhang, Yu Liang, Bo Yang, Ying-Jun Tan. Association between ATG16L1 gene polymorphism and the risk of Crohn’s disease. Journal of International Medical Research 2017; 45(6): 1636 doi: 10.1177/0300060516662404
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7 |
Junji Umeno, Kouichi Asano, Tomonaga Matsushita, Takayuki Matsumoto, Yutaka Kiyohara, Mitsuo Iida, Yusuke Nakamura, Naoyuki Kamatani, Michiaki Kubo. Meta-analysis of published studies identified eight additional common susceptibility loci for Crohnʼs disease and ulcerative colitis. Inflammatory Bowel Diseases 2011; 17(12): 2407 doi: 10.1002/ibd.21651
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8 |
Xiaotong Wang, Yunqiu Shen, Yan Chen, Shuang Yang. Inflammation-induced cellular changes: Genetic mutations, oncogene impact, and novel glycoprotein biomarkers. Advances in Biomarker Sciences and Technology 2024; 6: 91 doi: 10.1016/j.abst.2024.06.002
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9 |
M Salem, J B Seidelin, S Eickhardt, M Alhede, G Rogler, O H Nielsen. Species-specific engagement of human nucleotide oligomerization domain 2 (NOD)2 and Toll-like receptor (TLR) signalling upon intracellular bacterial infection: role of Crohn's associated NOD2 gene variants. Clinical and Experimental Immunology 2015; 179(3): 426 doi: 10.1111/cei.12471
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10 |
Ling-Long Peng, Ying Wang, Feng-Ling Zhu, Wang-Dong Xu, Xue-Lei Ji, Jing Ni. IL-23R mutation is associated with ulcerative colitis: A systemic review and meta-analysis. Oncotarget 2017; 8(3): 4849 doi: 10.18632/oncotarget.13607
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11 |
Yi Zhu, HongGang Jiang, ZhiHeng Chen, BoHao Lu, Jin Li, XuNing Shen. Genetic association between IL23R rs11209026 and rs10889677 polymorphisms and risk of Crohn’s disease and ulcerative colitis: evidence from 41 studies. Inflammation Research 2020; 69(1): 87 doi: 10.1007/s00011-019-01296-y
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12 |
Vibeke Andersen, Anja Ernst, Jurgita Sventoraityte, Limas Kupcinskas, Bent A Jacobsen, Henrik B Krarup, Ulla Vogel, Laimas Jonaitis, Goda Denapiene, Gediminas Kiudelis, Tobias Balschun, Andre Franke. Assessment of heterogeneity between European Populations: a Baltic and Danish replication case-control study of SNPs from a recent European ulcerative colitis genome wide association study. BMC Medical Genetics 2011; 12(1) doi: 10.1186/1471-2350-12-139
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13 |
Isidora Simovic, Ida Hilmi, Ruey Terng Ng, Kee Seang Chew, Shin Yee Wong, Way Seah Lee, Stephen Riordan, Natalia Castaño‐Rodríguez. ATG16L1 rs2241880/T300A increases susceptibility to perianal Crohn's disease: An updated meta‐analysis on inflammatory bowel disease risk and clinical outcomes. United European Gastroenterology Journal 2024; 12(1): 103 doi: 10.1002/ueg2.12477
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14 |
Christopher J. Kiely, Paul Pavli, Claire L. O'Brien. The microbiome of translocated bacterial populations in patients with and without inflammatory bowel disease. Internal Medicine Journal 2018; 48(11): 1346 doi: 10.1111/imj.13998
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15 |
Jurgita Skieceviciene, Gediminas Kiudelis, Eva Ellinghaus, Tobias Balschun, Laimas V. Jonaitis, Aida Zvirbliene, Goda Denapiene, Marcis Leja, Gitana Pranculiene, Vytenis Kalibatas, Hamidreza Saadati, David Ellinghaus, Vibeke Andersen, Jonas Valantinas, Algimantas Irnius, Aleksejs Derovs, Algimantas Tamelis, Stefan Schreiber, Limas Kupcinskas, Andre Franke. Replication Study of Ulcerative Colitis Risk Loci in a Lithuanian–Latvian Case–Control Sample. Inflammatory Bowel Diseases 2013; 19(11): 2349 doi: 10.1097/MIB.0b013e3182a3eaeb
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16 |
Christos A. Grigoras, Panayiotis D. Ziakas, Elamparithi Jayamani, Eleftherios Mylonakis. ATG16L1 and IL23R Variants and Genetic Susceptibility to Crohnʼs Disease. Inflammatory Bowel Diseases 2015; 21(4): 768 doi: 10.1097/MIB.0000000000000305
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17 |
John Janez Miklavcic, Kareena Leanne Schnabl, Vera Christine Mazurak, Alan Bryan Robert Thomson, Michael Thomas Clandinin. Dietary Ganglioside Reduces Proinflammatory Signaling in the Intestine. Journal of Nutrition and Metabolism 2012; 2012: 1 doi: 10.1155/2012/280286
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18 |
Srinivasan Pugazhendhi, Kirankumar Baskaran, Srikanth Santhanam, Balakrishnan S. Ramakrishna, David L Boone. Association of ATG16L1 gene haplotype with inflammatory bowel disease in Indians. PLOS ONE 2017; 12(5): e0178291 doi: 10.1371/journal.pone.0178291
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19 |
Jiun-Sheng Chen, Fulan Hu, Subra Kugathasan, Lynn B Jorde, David Nix, Ann Rutherford, Lee Denson, W Scott Watkins, Sampath Prahalad, Chad Huff, Stephen L Guthery. Targeted Gene Sequencing in Children with Crohn’s Disease and Their Parents: Implications for Missing Heritability. G3 Genes|Genomes|Genetics 2018; 8(9): 2881 doi: 10.1534/g3.118.200404
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