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| URL: | https://www.wjgnet.com/1007-9327/full/v15/i38/4745.htm |
| Number | Citing Articles |
| 1 |
Collin L. Ellis, John C. Rutledge, Mark A. Underwood. Intestinal microbiota and blue baby syndrome. Gut Microbes 2010; 1(6) doi: 10.4161/gmic.1.6.14077
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| 2 |
Andrea C. Masi, Christopher J. Stewart. The role of the preterm intestinal microbiome in sepsis and necrotising enterocolitis. Early Human Development 2019; 138 doi: 10.1016/j.earlhumdev.2019.104854
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| 3 |
Amin Afrazi, Chhinder P Sodhi, Ward Richardson, Matthew Neal, Misty Good, Richard Siggers, David J Hackam. New Insights Into the Pathogenesis and Treatment of Necrotizing Enterocolitis: Toll-Like Receptors and Beyond. Pediatric Research 2011; 69(3) doi: 10.1203/PDR.0b013e3182093280
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| 4 |
Kwong‐Fai Wong, Yi Yuan, John M Luk. Tripterygium wilfordii bioactive compounds as anticancer and anti‐inflammatory agents. Clinical and Experimental Pharmacology and Physiology 2012; 39(3) doi: 10.1111/j.1440-1681.2011.05586.x
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| 5 |
H. Krichen, Y. Gorgi, T. Dhaouadi, Y. Mecheri, I. Sfar, R. Bardi, M.M. Bacha, E. Abderrahim, S. Jendoubi-Ayed, K. Ayed, T. Ben Abdallah. Toll-Like Receptor 4 and CD14 Gene Polymorphisms in Tunisian Kidney Transplantation. Transplantation Proceedings 2013; 45(10) doi: 10.1016/j.transproceed.2013.09.003
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| 6 |
Kentaro YOSHIDA, Takashi KOYANAGI, Chiaki MATSUZAKI. Industrial Application of Lactic Acid Bacteria-Derived Exopolysaccharides. KAGAKU TO SEIBUTSU 2024; 62(6) doi: 10.1271/kagakutoseibutsu.62.273
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| 7 |
Sang Hoon Rhee. Basic and Translational Understandings of Microbial Recognition by Toll-Like Receptors in the Intestine. Journal of Neurogastroenterology and Motility 2011; 17(1) doi: 10.5056/jnm.2011.17.1.28
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| 8 |
Jacek Wilczak, Katarzyna Błaszczyk, Dariusz Kamola, Małgorzata Gajewska, Joanna Paulina Harasym, Małgorzata Jałosińska, Sylwia Gudej, Dominika Suchecka, Michał Oczkowski, Joanna Gromadzka-Ostrowska. The effect of low or high molecular weight oat beta-glucans on the inflammatory and oxidative stress status in the colon of rats with LPS-induced enteritis. Food & Function 2015; 6(2) doi: 10.1039/C4FO00638K
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| 9 |
Jessica R. White, Huiyu Gong, Brock Pope, Patrick Schlievert, Steven J. McElroy. Paneth cell disruption-induced necrotizing enterocolitis requires live bacteria and occurs independent of TLR4 signaling. Disease Models & Mechanisms 2017; doi: 10.1242/dmm.028589
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| 10 |
Mari Ichinose, Nobumi Suzuki, Tongtong Wang, Josephine A. Wright, Tamsin R. M. Lannagan, Laura Vrbanac, Hiroki Kobayashi, Krystyna Gieniec, Jia Q. Ng, Souzaburo Ihara, Chris Mavrangelos, Yoku Hayakawa, Patrick Hughes, Daniel L. Worthley, Susan L. Woods. Delineating proinflammatory microenvironmental signals by ex vivo modeling of the immature intestinal stroma. Scientific Reports 2021; 11(1) doi: 10.1038/s41598-021-86675-4
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| 11 |
Terri Marin, Ora L. Strickland. Transfusion-Related Necrotizing Enterocolitis. Advances in Neonatal Care 2013; 13(3) doi: 10.1097/ANC.0b013e318285f901
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| 12 |
Tonya L. Ward, Kagami Goto, Illimar Altosaar. Ingested soluble CD14 contributes to the functional pool of circulating sCD14 in mice. Immunobiology 2014; 219(7) doi: 10.1016/j.imbio.2014.03.008
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| 13 |
Nilima Jawale, Jeffrey S. Shenberger, Ricardo J. Rodriguez, Avinash K. Shetty, Parvesh M. Garg. The Nonbacterial Infant Microbiome and Necrotizing Enterocolitis. American Journal of Perinatology 2025; 42(14) doi: 10.1055/a-2549-6551
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| 14 |
Wenting Zhang, Jingqiu He-Yang, Wenjuan Tu, Xiaoying Zhou. Sialylated human milk oligosaccharides prevent intestinal inflammation by inhibiting toll like receptor 4/NLRP3 inflammasome pathway in necrotizing enterocolitis rats. Nutrition & Metabolism 2021; 18(1) doi: 10.1186/s12986-020-00534-z
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| 15 |
Daniel J. Scheese, Chhinder P. Sodhi, David J. Hackam. New insights into the pathogenesis of necrotizing enterocolitis and the dawn of potential therapeutics. Seminars in Pediatric Surgery 2023; 32(3) doi: 10.1016/j.sempedsurg.2023.151309
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| 16 |
Grant H. Gershner, Alena Golubkova, Cody Dalton, Camille Schlegel, Chase Calkins, Darlene N. Reuter, Megan Learner, James F. Papin, Sunam Gurung, Karen R. Jonscher, Dean A. Myers, Catherine J. Hunter. Maternal Western diet increases inflammatory markers and decreases barrier function of offspring in Papio anubis. American Journal of Physiology-Gastrointestinal and Liver Physiology 2025; 329(2) doi: 10.1152/ajpgi.00342.2024
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| 17 |
Amir Bein, Alexander Zilbershtein, Michael Golosovsky, Dan Davidov, Betty Schwartz. LPS Induces Hyper‐Permeability of Intestinal Epithelial Cells. Journal of Cellular Physiology 2017; 232(2) doi: 10.1002/jcp.25435
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| 18 |
Alicia M. Alcamo, Brandon L. Schanbacher, Hong Huang, Craig A. Nankervis, John A. Bauer, Peter J. Giannone. Cellular strain amplifies LPS-induced stress signaling in immature enterocytes: potential implications for preterm infant NCPAP. Pediatric Research 2012; 72(3) doi: 10.1038/pr.2012.77
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| 19 |
Misty Good, Chhinder P Sodhi, David J Hackam. Evidence-based feeding strategies before and after the development of necrotizing enterocolitis. Expert Review of Clinical Immunology 2014; 10(7) doi: 10.1586/1744666X.2014.913481
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| 20 |
David J. Hackam, Misty Good, Chhinder P. Sodhi. Mechanisms of gut barrier failure in the pathogenesis of necrotizing enterocolitis: Toll-like receptors throw the switch. Seminars in Pediatric Surgery 2013; 22(2) doi: 10.1053/j.sempedsurg.2013.01.003
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| 21 |
Hector D. Quintanilla, Yuying Liu, Nicole Y. Fatheree, Constance L. Atkins, Syed S. Hashmi, Joanna Floros, Francis X. McCormack, Jon Marc Rhoads, Joseph L. Alcorn. Oral Administration of Surfactant Protein‐A Reduces Pathology in an Experimental Model of Necrotizing Enterocolitis. Journal of Pediatric Gastroenterology and Nutrition 2015; 60(5) doi: 10.1097/MPG.0000000000000678
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| 22 |
Xiang Li, Ying Wang, Yijiang Wang, Xingbo He. MiR-141-3p ameliorates RIPK1-mediated necroptosis of intestinal epithelial cells in necrotizing enterocolitis. Aging 2020; 12(18) doi: 10.18632/aging.103608
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| 23 |
Mitchell M. Won, Georgi D. Mladenov, Steven L. Raymond, Faraz A. Khan, Andrei Radulescu. What animal model should I use to study necrotizing enterocolitis?. Seminars in Pediatric Surgery 2023; 32(3) doi: 10.1016/j.sempedsurg.2023.151313
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| 24 |
WEIBIN QI, QIONG SHEN, LIN ZHANG, LI-PING HAN, SUMIN WANG. Study on the inflammatory intervention of erythropoietin on NEC. Experimental and Therapeutic Medicine 2016; 11(6) doi: 10.3892/etm.2016.3199
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| 25 |
Malene S. Cilieborg, Mette Schmidt, Kerstin Skovgaard, Mette Boye, Nicolai R. Weber, Peter M. Heegaard, Douglas G. Burrin, Per T. Sangild. Fetal lipopolysaccharide exposure modulates diet-dependent gut maturation and sensitivity to necrotising enterocolitis in pre-term pigs. British Journal of Nutrition 2011; 106(6) doi: 10.1017/S000711451100047X
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| 26 |
Yujie Yang, Tao Zhang, Guangyu Zhou, Xiaoxiao Jiang, Mingxuan Tao, Jiaxin Zhang, Xiaoqun Zeng, Zhen Wu, Daodong Pan, Yuxing Guo. Prevention of Necrotizing Enterocolitis through Milk Polar Lipids Reducing Intestinal Epithelial Apoptosis. Journal of Agricultural and Food Chemistry 2020; 68(26) doi: 10.1021/acs.jafc.0c02629
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| 27 |
Peng Lu, Chhinder P. Sodhi, David J. Hackam. Toll-like receptor regulation of intestinal development and inflammation in the pathogenesis of necrotizing enterocolitis. Pathophysiology 2014; 21(1) doi: 10.1016/j.pathophys.2013.11.007
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| 28 |
Yiyu Yin, Fengli Liu, Yiping Li, Ruze Tang, Jian Wang. mRNA expression of TLR4, TLR9 and NF-κB in a neonatal murine model of necrotizing enterocolitis. Molecular Medicine Reports 2016; 14(3) doi: 10.3892/mmr.2016.5455
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| 29 |
KANG LI, ZENG DAN, YUQIANG NIE, XUEJUN HU, LUOBU GESANG, ZHAXI BIANBA, YONGGE ZE, CUOMU CIREN. CD14 knockdown reduces lipopolysaccharide-induced cell viability and expression of inflammation-associated genes in gastric cancer cells in vitro and in nude mouse xenografts. Molecular Medicine Reports 2015; 12(3) doi: 10.3892/mmr.2015.3924
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| 30 |
Grant H. Gershner, Catherine J. Hunter. Redox Chemistry: Implications for Necrotizing Enterocolitis. International Journal of Molecular Sciences 2024; 25(15) doi: 10.3390/ijms25158416
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| 31 |
M Good, C P Sodhi, C E Egan, A Afrazi, H Jia, Y Yamaguchi, P Lu, M F Branca, C Ma, T Prindle, S Mielo, A Pompa, Z Hodzic, J A Ozolek, D J Hackam. Breast milk protects against the development of necrotizing enterocolitis through inhibition of Toll-like receptor 4 in the intestinal epithelium via activation of the epidermal growth factor receptor. Mucosal Immunology 2015; 8(5) doi: 10.1038/mi.2015.30
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| 32 |
Wen Xiong, Haoyue Ma, Zhu Zhang, Meilan Jin, Jian Wang, Yuwei Xu, Zili Wang. The protective effect of icariin and phosphorylated icariin against LPS-induced intestinal epithelial cells injury. Biomedicine & Pharmacotherapy 2019; 118 doi: 10.1016/j.biopha.2019.109246
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| 33 |
Xin-Jing Yang, Jin-Xian Qian, Yao Wei, Qiang Guo, Jun Jin, Xue Sun, Sheng-Lan Liu, Chun-Fang Xu, Guo-Xing Zhang. Tanshinone IIA Sodium Sulfonate Attenuates LPS-Induced Intestinal Injury in Mice. Gastroenterology Research and Practice 2018; 2018 doi: 10.1155/2018/9867150
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| 34 |
Chengzhi Fang, Lili Xie, Chunmei Liu, Chunhua Fu, Wei Ye, Hong Liu, Binghong Zhang. Berberine ameliorates neonatal necrotizing enterocolitis by activating the phosphoinositide 3-kinase/protein kinase B signaling pathway. Experimental and Therapeutic Medicine 2018; doi: 10.3892/etm.2018.5858
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| 35 |
Jing-Shuai Wu, Qin-Yu Meng, Xiao-Hui Shi, Lu-Xin Liu, Zhen-Kun Zhang, Hua-Shi Guan, Chang-Lun Shao, Chang-Yun Wang. The oxygenated products of cryptotanshinone by biotransformation with Cunninghamella elegans exerting anti-neuroinflammatory effects by inhibiting TLR 4-mediated MAPK signaling pathway. Bioorganic Chemistry 2020; 104 doi: 10.1016/j.bioorg.2020.104246
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| 36 |
María T. Abreu. The Ying and Yang of Bacterial Signaling in Necrotizing Enterocolitis. Gastroenterology 2010; 138(1) doi: 10.1053/j.gastro.2009.11.031
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| 37 |
Deshuang Zhang, Dongke Xie, Yi Qu, Dezhi Mu, Shaopu Wang. Digging deeper into necrotizing enterocolitis: bridging clinical, microbial, and molecular perspectives. Gut Microbes 2025; 17(1) doi: 10.1080/19490976.2025.2451071
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| 38 |
Yoon Jeong Choi, Eunok Im, Charalabos Pothoulakis, Sang Hoon Rhee. TRIF Modulates TLR5-dependent Responses by Inducing Proteolytic Degradation of TLR5. Journal of Biological Chemistry 2010; 285(28) doi: 10.1074/jbc.M110.115022
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| 39 |
Tamas Jilling, Namasivayam Ambalavanan. Hematology, Immunology and Genetics. 2019; doi: 10.1016/B978-0-323-54400-9.00011-4
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| 40 |
Julia Arciero, G. Bard Ermentrout, Richard Siggers, Amin Afrazi, David Hackam, Yoram Vodovotz, Jonathan Rubin. Modeling the interactions of bacteria and Toll-like receptor-mediated inflammation in necrotizing enterocolitis. Journal of Theoretical Biology 2013; 321 doi: 10.1016/j.jtbi.2012.12.002
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| 41 |
David J. Hackam, Chhinder P. Sodhi. Bench to bedside — new insights into the pathogenesis of necrotizing enterocolitis. Nature Reviews Gastroenterology & Hepatology 2022; 19(7) doi: 10.1038/s41575-022-00594-x
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| 42 |
Dabin Huang, Ping Wang, Juncao Chen, Yanbin Li, Mingwei Zhu, Yaping Tang, Wei Zhou. Selective targeting of MD2 attenuates intestinal inflammation and prevents neonatal necrotizing enterocolitis by suppressing TLR4 signaling. Frontiers in Immunology 2022; 13 doi: 10.3389/fimmu.2022.995791
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| 43 |
Ryuta Saka, Tetsu Wakimoto, Fumiko Nishiumi, Takashi Sasaki, Satoko Nose, Masahiro Fukuzawa, Takaharu Oue, Itaru Yanagihara, Hiroomi Okuyama. Surfactant protein-D attenuates the lipopolysaccharide-induced inflammation in human intestinal cells overexpressing toll-like receptor 4. Pediatric Surgery International 2016; 32(1) doi: 10.1007/s00383-015-3812-y
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| 44 |
YingYing He, Nathan T Lawlor, David S Newburg. Human Milk Components Modulate Toll-Like Receptor–Mediated Inflammation. Advances in Nutrition 2016; 7(1) doi: 10.3945/an.115.010090
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| 45 |
Jie-Ting Lu, Qiu-Hua Wang, Ying-Yan Liu, Song Tian, Long-Long Hou, Xin Zhong, Li-Zhu Chen, Qian Zhang, Peng-Fei Wei, Lin Li, Yan Tian, Qiu-Ming He, Yu-Feng Liu, Gen-Quan Yin, Yu Ouyang, Lin Liao, Wei Zhong, Chao-Ting Lan, Oscar Medina-Contreras. The Role of APOL1 in Necrotizing Enterocolitis and Its Promise as a Diagnostic Biomarker. Mediators of Inflammation 2026; 2026(1) doi: 10.1155/mi/8637617
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| 46 |
Cynthia D. Downard, Stephanie N. Grant, Paul J. Matheson, Alia W. Guillaume, Robert Debski, Mary E. Fallat, Richard N. Garrison. Altered intestinal microcirculation is the critical event in the development of necrotizing enterocolitis. Journal of Pediatric Surgery 2011; 46(6) doi: 10.1016/j.jpedsurg.2011.03.023
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| 47 |
Jin Wang, Anatoly V Grishin, Henri R Ford. Experimental Anti-Inflammatory Drug Semapimod Inhibits TLR Signaling by Targeting the TLR Chaperone gp96. The Journal of Immunology 2016; 196(12) doi: 10.4049/jimmunol.1502135
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| 48 |
Eunok Im, Franz Martin Riegler, Charalabos Pothoulakis, Sang Hoon Rhee. Elevated lipopolysaccharide in the colon evokes intestinal inflammation, aggravated in immune modulator-impaired mice. American Journal of Physiology-Gastrointestinal and Liver Physiology 2012; 303(4) doi: 10.1152/ajpgi.00120.2012
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| 49 |
Ye Yang, Emilee Rader, Michele Peters-Carr, Rebecca C. Bent, Jennifer T. Smilowitz, Karen Guillemin, Bethany Rader. Ontogeny of alkaline phosphatase activity in infant intestines and breast milk. BMC Pediatrics 2019; 19(1) doi: 10.1186/s12887-018-1379-1
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| 50 |
Marie-Claire Arrieta, Leah T. Stiemsma, Nelly Amenyogbe, Eric M. Brown, Brett Finlay. The Intestinal Microbiome in Early Life: Health and Disease. Frontiers in Immunology 2014; 5 doi: 10.3389/fimmu.2014.00427
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| 51 |
WEI ZHOU, WEIMING YUAN, LONGGUANG HUANG, PING WANG, XIAO RONG, JUAN TANG. Association of neonatal necrotizing enterocolitis with myeloid differentiation-2 and GM2 activator protein genetic polymorphisms. Molecular Medicine Reports 2015; 12(1) doi: 10.3892/mmr.2015.3499
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