Showing 521 - 540 results of 2,518 for search '"Intestine"', query time: 0.06s Refine Results
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    L-selenomethionine inhibits small intestinal ferroptosis caused by ammonia exposure through regulating ROS-mediated iron metabolism by Xinxin Zhang, Lepeng Gu, Ying Chen, Tianqi Wang, Houjuan Xing

    Published 2025-01-01
    “…The results showed that ammonia exposure up-regulated the levels of iron, ROS, MDA, and LPO in the small intestinal tissue and the IPEC-J2 cell, down-regulated the activities of antioxidant enzymes and the content of GSH, inhibited the Nrf2 pathway, significantly altered the expression of ferroptosis (TFR-1, FPN-1, FTH1, SLC7A11, GPX4, ACSL4) and intestine tight junctions (Claudin-1, Occludin, ZO-1) genes. …”
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  6. 526

    Intestinal obstruction caused by disseminated mycobacterium avium complex disease following solid organ transplantation: a case report by Akane Mita, Sho Nakakubo, Yusuke Nishimura, Hideki Shima, Masaaki Watanabe, Tsuyoshi Shimamura, Satoshi Konno

    Published 2025-01-01
    “…Herein, we report a rare case of disseminated MAC disease following liver transplantation, which led to an obstructive mass in the intestinal tract that required differentiation from a malignant tumor. …”
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  7. 527

    Enterococcus faecium HDRsEf1 Protects the Intestinal Epithelium and Attenuates ETEC-Induced IL-8 Secretion in Enterocytes by Zhongyuan Tian, Xiaofang Liu, Ran Dai, Yuncai Xiao, Xiliang Wang, Dingren Bi, Deshi Shi

    Published 2016-01-01
    “…In this study, using the IPEC-J2 cell line to mimic intestinal epithelial cells and enterotoxigenic Escherichia coli (ETEC) K88ac as a representative intestinal pathogen, the mechanism underlying Ef1 protection against an enteropathogen was investigated. …”
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  8. 528

    Enterococcus faecium NCIMB 10415 Modulates Epithelial Integrity, Heat Shock Protein, and Proinflammatory Cytokine Response in Intestinal Cells by Shanti Klingspor, Angelika Bondzio, Holger Martens, Jörg R. Aschenbach, Katharina Bratz, Karsten Tedin, Ralf Einspanier, Ulrike Lodemann

    Published 2015-01-01
    “…Porcine (IPEC-J2) and human (Caco-2) intestinal cells were incubated without bacteria (control), with E. faecium, with enteropathogenic (EPEC) or enterotoxigenic E. coli (ETEC) each alone or in combination with E. faecium. …”
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    Octreotide in Intestinal Lymphangiectasia: Lack of a Clinical Response and Failure to Alter Lymphatic Function in a Guinea Pig Model by S Makhija, P-Y vod der Weid, J Meddings, SJ Urbanski, PL Beck

    Published 2004-01-01
    “…Intestinal lymphangiectasia, which can be classified as primary or secondary, is an unusual cause of protein-losing enteropathy. …”
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  12. 532

    Anaerobic fermentation of soybean meal by Bacillus subtilis ED-3-7 and its effect on the intestinal microbial community of chicken by Wei Liu, Wei Wang, Jia Li, Hongya Li, Tongguo Gao, Baocheng Zhu

    Published 2025-01-01
    “…The richness and diversity of bacterial species decreased, and Lactobacillus became the dominant genus, which was conducive to the health of chicken intestines. The experimental results revealed that ED-3-7 anaerobic fermentation improved the nutritional quality of SBM and had beneficial effects on chicken intestines. …”
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  13. 533

    Sorbitol Destroyed Intestinal Microfold Cells (M Cells) Development through Inhibition of PDE4-Mediated RANKL Expression by Li Xiang, Wenxu Pan, Huan Chen, Wenjun Du, Shuping Xie, Xinhua Liang, Fangying Yang, Rongwei Niu, Canxin Huang, Minan Luo, Yuxin Xu, Lanlan Geng, Sitang Gong, Wanfu Xu, Junhong Zhao

    Published 2024-01-01
    “…Microfold cells (M cells) are specific intestinal epithelial cells for monitoring and transcytosis of antigens, microorganisms, and pathogens in the intestine. …”
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    EGCG improve meat quality, restore lipid metabolism disorder and regulate intestinal flora in high-fat fed broilers by Lujia Gao, Chen Liu, Jiaqi Wu, Ying Cui, Man Zhang, Chongpeng Bi, Anshan Shan, Xiujing Dou

    Published 2025-03-01
    “…This study was aimed at investigating the impact of EGCG supplementation through a high-fat diet (HFD) on production performance, meat quality, lipid metabolism and the influence of intestinal flora in broiler chickens. During the experimental phase, the broilers were segregated into three groups and provided with distinct diets: a basal diet, a high-fat diet, and a high-fat diet supplemented with EGCG, respectively. …”
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  16. 536

    The Combination of Host-Associated Bacillus megaterium R32 and Stachyose Promotes the Intestinal Health of Turbot (Scophthalmus maximus. L) by Yaoyao Kong, Sifan Zhao, Weihao Ou, Kangsen Mai, Yanjiao Zhang

    Published 2024-01-01
    “…An 8-week feeding trial was conducted to investigate the effects of host-associated Bacillus megaterium R32 and stachyose on the intestinal mucosal defense system of turbot (Scophthalmus maximus. …”
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  17. 537

    Beneficial Effects of <i>In Vitro</i> Reconstructed Human Gut Microbiota by Ginseng Extract Fermentation on Intestinal Cell Lines by Margherita Finazzi, Federica Bovio, Matilde Forcella, Marina Lasagni, Paola Fusi, Patrizia Di Gennaro

    Published 2025-01-01
    “…The bacterial metabolites produced during ginseng extract fermentation in the three conditions were administered to human intestinal epithelial cells (HT-29) to investigate a potential antioxidant effect. …”
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  18. 538

    Efectos de la adición de probiótico Saccharomyces cerevisiae sobre histomorfología intestinal en pollos de engorde by D. M. Quevedo, J. E. Ochoa, J. R. Corredor, S. L. Pulecio

    Published 2020-01-01
    “…Se concluyó que el uso de Saccharomyces cerevisiae aumentó el tamaño del área de las criptas en ambas secciones intestinales y aumentó la producción de moco en duodeno; lo cual, al aumentar la superficie de absorción intestinal, seguramente podría resultar en mejoras de los parámetros productivos.…”
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  19. 539

    Impact of smoking cessation, coffee and bread consumption on the intestinal microbial composition among Saudis: A cross-sectional study. by Steve Harakeh, Emmanouil Angelakis, Timokratis Karamitros, Dipankar Bachar, Suhad Bahijri, Ghada Ajabnoor, Sulaiman M Alfadul, Suha A Farraj, Turki Al Amri, Ahmed Al-Hejin, Abdalla Ahmed, Ahmed A Mirza, Raoult Didier, Esam I Azhar

    Published 2020-01-01
    “…Smoking cessation, bread and coffee consumption induce changes in the intestinal microbial composition of Saudis. This indicates the significance of diet and lifestyle practices in the determination of the composition of the gut microbiota, which could possibly lead later to changes in metabolic profile and weight.…”
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  20. 540

    Effect of Rifaximin and a Multi-Strain Probiotic on the Intestinal Microbiome and Cardiovascular Risk Indicators in Patients with Coronary Heart Disease by E. A. Kashukh, E. A. Poluektova, A. V. Kudryavtseva, G. S. Krasnov, V. I. Kazey, P. D. Sobolev, P. V. Gremyakova, V. T. Ivashkin

    Published 2019-09-01
    “…To assess the effect of rifaximin and a multi-strain probiotic on the intestinal microbiome and the indicators of cardiovascular risk in patients with coronary heart disease (CHD).Materials and methods. …”
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