For: | Alwahsh SM, Xu M, Seyhan HA, Ahmad S, Mihm S, Ramadori G, Schultze FC. Diet high in fructose leads to an overexpression of lipocalin-2 in rat fatty liver. World J Gastroenterol 2014; 20(7): 1807-1821 [PMID: 24587658 DOI: 10.3748/wjg.v20.i7.1807] |
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URL: | https://www.wjgnet.com/1007-9327/full/v20/i7/1807.htm |
Number | Citing Articles |
1 |
Fengguang Pan, Zhuanzhang Cai, Huifang Ge, Sitong Ma, Yiding Yu, Jingbo Liu, Ting Zhang. Transcriptome analysis reveals the hepatoprotective mechanism of soybean meal peptides against alcohol-induced acute liver injury mice. Food and Chemical Toxicology 2021; 154: 112353 doi: 10.1016/j.fct.2021.112353
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2 |
Irina Voloshin, Michal Hahn-Obercyger, Sarit Anavi, Oren Tirosh. L-arginine conjugates of bile acids-a possible treatment for non-alcoholic fatty liver disease. Lipids in Health and Disease 2014; 13(1) doi: 10.1186/1476-511X-13-69
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3 |
Roya Mirzaei, Roya Khosrokhavar, Sepideh Arbabi Bidgoli. The Role of High-Fructose Diet in Liver Function of Rodent Models: A Systematic Review of Molecular Analysis. Iranian Biomedical Journal 2023; 27(6): 326 doi: 10.61186/ibj.3965
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4 |
David H. Van Thiel, Salamah Mohammad Alwahsh, Giuliano Ramadori. Hepatocellular Carcinoma. 2016; : 287 doi: 10.1007/978-3-319-34214-6_19
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5 |
Lakshini Herat, Caroline Rudnicka, Yasunori Okada, Satsuki Mochizuki, Markus Schlaich, Vance Matthews. The Metalloproteinase ADAM28 Promotes Metabolic Dysfunction in Mice. International Journal of Molecular Sciences 2017; 18(4): 884 doi: 10.3390/ijms18040884
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6 |
Melisa Kozaczek, Walter Bottje, Elizabeth Greene, Kentu Lassiter, Byungwhi Kong, Sami Dridi, Soheila Korourian, Reza Hakkak. Comparison of liver gene expression by RNAseq and PCR analysis after 8 weeks of feeding soy protein isolate- or casein-based diets in an obese liver steatosis rat model. Food & Function 2019; 10(12): 8218 doi: 10.1039/C9FO01387C
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7 |
Gözde Arslanbulut, Seda Çiftçi. Exploring the link between fructose intake and Non-Alcoholic Fatty Liver Disease (NAFLD). Cahiers de Nutrition et de Diététique 2023; 58(6): 399 doi: 10.1016/j.cnd.2023.10.004
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8 |
Takeshi Yamamotoya, Yusuke Nakatsu, Yasuka Matsunaga, Toshiaki Fukushima, Hiroki Yamazaki, Sunao Kaneko, Midori Fujishiro, Takako Kikuchi, Akifumi Kushiyama, Fuminori Tokunaga, Tomoichiro Asano, Hideyuki Sakoda. Reduced SHARPIN and LUBAC Formation May Contribute to CCl4- or Acetaminophen-Induced Liver Cirrhosis in Mice. International Journal of Molecular Sciences 2017; 18(2): 326 doi: 10.3390/ijms18020326
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9 |
Arianna Mazzoli, Cristina Gatto, Raffaella Crescenzo, Maria Stefania Spagnuolo, Martina Nazzaro, Susanna Iossa, Luisa Cigliano. Gut and liver metabolic responses to dietary fructose – are they reversible or persistent after switching to a healthy diet?. Food & Function 2021; 12(16): 7557 doi: 10.1039/D1FO00983D
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10 |
Karthickeyan Chella Krishnan, Simon Sabir, Michaël Shum, Yonghong Meng, Rebeca Acín-Pérez, Jennifer M. Lang, Raquel R. Floyd, Laurent Vergnes, Marcus M. Seldin, Brie K. Fuqua, Dulshan W. Jayasekera, Sereena K. Nand, Diana C. Anum, Calvin Pan, Linsey Stiles, Miklós Péterfy, Karen Reue, Marc Liesa, Aldons J. Lusis. Sex-specific metabolic functions of adipose Lipocalin-2. Molecular Metabolism 2019; 30: 30 doi: 10.1016/j.molmet.2019.09.009
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11 |
Christina Umbright, Rajendran Sellamuthu, Jenny R. Roberts, Shih-Houng Young, Diana Richardson, Diane Schwegler-Berry, Walter McKinney, Bean Chen, Ja Kook Gu, Michael Kashon, Pius Joseph. Pulmonary toxicity and global gene expression changes in response to sub-chronic inhalation exposure to crystalline silica in rats. Journal of Toxicology and Environmental Health, Part A 2017; 80(23-24): 1349 doi: 10.1080/15287394.2017.1384773
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12 |
Salamah Mohammad Alwahsh, Rolf Gebhardt. Dietary fructose as a risk factor for non-alcoholic fatty liver disease (NAFLD). Archives of Toxicology 2017; 91(4): 1545 doi: 10.1007/s00204-016-1892-7
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13 |
Rosa Reddavide, Anna Maria Cisternino, Rosa Inguaggiato, Ornella Rotolo, Iris Zinzi, Nicola Veronese, Vito Guerra, Fabio Fucilli, Giuseppe Di Giovanni, Gioacchino Leandro, Sara Giannico, Maria Gabriella Caruso. Non-Alcoholic Fatty Liver Disease Is Associated with Higher Metabolic Expenditure in Overweight and Obese Subjects: A Case-Control Study. Nutrients 2019; 11(8): 1830 doi: 10.3390/nu11081830
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14 |
Benedikt Kaufmann, Aleksandra Leszczynska, Agustina Reca, Laela M Booshehri, Janset Onyuru, ZheHao Tan, Alexander Wree, Helmut Friess, Daniel Hartmann, Bettina Papouchado, Lori Broderick, Hal M Hoffman, Ben A Croker, Yanfang Peipei Zhu, Ariel E Feldstein. NLRP3 activation in neutrophils induces lethal autoinflammation, liver inflammation, and fibrosis. EMBO reports 2022; 23(11) doi: 10.15252/embr.202154446
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15 |
Analía Novak, Yanina Cynthia Godoy, Sonia Amalia Martinez, Carolina Inés Ghanem, Stella Maris Celuch. Fructose-induced metabolic syndrome decreases protein expression and activity of intestinal P-glycoprotein. Nutrition 2015; 31(6): 871 doi: 10.1016/j.nut.2015.01.003
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16 |
Senay Topsakal, Ozlem Ozmen, Fatma Nihan Cankara, Sukriye Yesilot, Dilek Bayram, Nilüfer Genç Özdamar, Sümeyra Kayan. Alpha lipoic acid attenuates high-fructose-induced pancreatic toxicity. Pancreatology 2016; 16(3): 347 doi: 10.1016/j.pan.2016.03.001
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17 |
Claudia Isabel García-Berumen, Omar Ortiz-Avila, Manuel Alejandro Vargas-Vargas, Bricia A. del Rosario-Tamayo, Clotilde Guajardo-López, Alfredo Saavedra-Molina, Alain Raimundo Rodríguez-Orozco, Christian Cortés-Rojo. The severity of rat liver injury by fructose and high fat depends on the degree of respiratory dysfunction and oxidative stress induced in mitochondria. Lipids in Health and Disease 2019; 18(1) doi: 10.1186/s12944-019-1024-5
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18 |
Anastasia Asimakopoulou, Ralf Weiskirchen. Lipocalin 2 in the pathogenesis of fatty liver disease and nonalcoholic steatohepatitis. Clinical Lipidology 2015; 10(1): 47 doi: 10.2217/clp.14.65
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19 |
Sirinat Pengnet, Phinsuda Sumarithum, Nuttaphong Phongnu, Sakdina Prommaouan, Napapas Kantip, Ittipon Phoungpetchara, Wachirawadee Malakul. Naringin attenuates fructose-induced NAFLD progression in rats through reducing endogenous triglyceride synthesis and activating the Nrf2/HO-1 pathway. Frontiers in Pharmacology 2022; 13 doi: 10.3389/fphar.2022.1049818
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20 |
Chao Wang, Xing Wang, Guangyao Song, Hanying Xing, Linquan Yang, Kang Han, Yan‐Zhong Chang. A high‐fructose diet in rats induces systemic iron deficiency and hepatic iron overload by an inflammation mechanism. Journal of Food Biochemistry 2021; 45(1) doi: 10.1111/jfbc.13578
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21 |
Alexander R. Moschen, Timon E. Adolph, Romana R. Gerner, Verena Wieser, Herbert Tilg. Lipocalin-2: A Master Mediator of Intestinal and Metabolic Inflammation. Trends in Endocrinology & Metabolism 2017; 28(5): 388 doi: 10.1016/j.tem.2017.01.003
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22 |
Brennan Olson, Xinxia Zhu, Mason A. Norgard, Peter R. Levasseur, John T. Butler, Abigail Buenafe, Kevin G. Burfeind, Katherine A. Michaelis, Katherine R. Pelz, Heike Mendez, Jared Edwards, Stephanie M. Krasnow, Aaron J. Grossberg, Daniel L. Marks. Lipocalin 2 mediates appetite suppression during pancreatic cancer cachexia. Nature Communications 2021; 12(1) doi: 10.1038/s41467-021-22361-3
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23 |
Thomas V Stabler, Eulàlia Montell, Josep Vergés, Janet L Huebner, Virginia Byers Kraus. Chondroitin Sulfate Inhibits Monocyte Chemoattractant Protein-1 Release From 3T3-L1 Adipocytes: A New Treatment Opportunity for Obesity-Related Inflammation?. Biomarker Insights 2017; 12: 117727191772696 doi: 10.1177/1177271917726964
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24 |
Fernando Windemuller, Jiliu Xu, Simon S Rabinowitz, M Mahmood Hussain, Steven M Schwarz. Lipogenesis in Huh7 cells is promoted by increasing the fructose: Glucose molar ratio. World Journal of Hepatology 2016; 8(20): 838-843 doi: 10.4254/wjh.v8.i20.838
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25 |
Masayoshi Takeuchi, Jun-ichi Takino, Akiko Sakasai-Sakai, Takanobu Takata, Mikihiro Tsutsumi. Toxic AGE (TAGE) Theory for the Pathophysiology of the Onset/Progression of NAFLD and ALD. Nutrients 2017; 9(6): 634 doi: 10.3390/nu9060634
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26 |
Monika Kubacka, Szczepan Mogilski, Monika Zadrożna, Barbara Nowak, Małgorzata Szafarz, Bartosz Pomierny, Henryk Marona, Anna Waszkielewicz, Wojciech Jawień, Jacek Sapa, Marek Bednarski, Joanna Knutelska, Magdalena Kotańska. MH-76, a Novel Non-Quinazoline α1-Adrenoceptor Antagonist, but Not Prazosin Reduces Inflammation and Improves Insulin Signaling in Adipose Tissue of Fructose-Fed Rats. Pharmaceuticals 2021; 14(5): 477 doi: 10.3390/ph14050477
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27 |
Nobuhisa Morimoto, Chikako Kasuga, Airi Tanaka, Keiko Kamachi, Masumi Ai, Kevin Y. Urayama, Akira Tanaka. Association between dietary fibre:carbohydrate intake ratio and insulin resistance in Japanese adults without type 2 diabetes. British Journal of Nutrition 2018; 119(6): 620 doi: 10.1017/S0007114517003725
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28 |
Chitra Padmakumari Kurup, Noor Faizah Mohd-Naim, Chaker Tlili, Minhaz Uddin Ahmed. A Highly Sensitive Label-free Aptasensor Based on Gold Nanourchins and Carbon Nanohorns for the Detection of Lipocalin-2 (LCN-2). Analytical Sciences 2021; 37(6): 825 doi: 10.2116/analsci.20P303
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29 |
Salamah M. Alwahsh, Hassan Rashidi, David C. Hay. Liver cell therapy: is this the end of the beginning?. Cellular and Molecular Life Sciences 2018; 75(8): 1307 doi: 10.1007/s00018-017-2713-8
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30 |
Daniel Addai, Jacqueline Zarkos, Anna Tolekova. The bone hormones and their potential effects on glucose and energy metabolism. Endocrine Regulations 2019; 53(4): 268 doi: 10.2478/enr-2019-0027
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31 |
Hirdesh Chawla, Vivek Bhosale, Ravi Misra, Satyendra Kumar Sonkar, Neera Kohli, Naseem Jamal, Shobhit Raj Vimal, Banwari Dangi, Kavita Durgapal, Shail Singh, Mahendra Pal Singh Negi, Ashim Ghatak. Lipocalin-2 levels increase in plasma of non-alcoholic fatty liver disease patients with metabolic syndrome. International Journal of Diabetes in Developing Countries 2023; 43(1): 105 doi: 10.1007/s13410-022-01058-3
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32 |
Anastasia Asimakopoulou, Sabine Weiskirchen, Ralf Weiskirchen. Lipocalin 2 (LCN2) Expression in Hepatic Malfunction and Therapy. Frontiers in Physiology 2016; 7 doi: 10.3389/fphys.2016.00430
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33 |
Raffaella Crescenzo, Luisa Cigliano, Arianna Mazzoli, Rosa Cancelliere, Rosa Carotenuto, Margherita Tussellino, Giovanna Liverini, Susanna Iossa. Early Effects of a Low Fat, Fructose-Rich Diet on Liver Metabolism, Insulin Signaling, and Oxidative Stress in Young and Adult Rats. Frontiers in Physiology 2018; 9 doi: 10.3389/fphys.2018.00411
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34 |
Anderson Cargnin-Carvalho, Mariella Reinol da Silva, Ana Beatriz Costa, Nicole Alessandra Engel, Bianca Xavier Farias, Joice Benedet Bressan, Kassiane Mathiola Backes, Francielly de Souza, Naiana da Rosa, Aloir Neri de Oliveira Junior, Mariana Pereira de Souza Goldim, Maria Eduarda Anastácio Borges Correa, Ligia Milanez Venturini, Jucélia Jeremias Fortunato, Josiane Somariva Prophiro, Fabrícia Petronilho, Paulo Cesar Lock Silveira, Gabriela Kozuchovsk Ferreira, Gislaine Tezza Rezin. High concentrations of fructose cause brain damage in mice. Biochemistry and Cell Biology 2023; 101(4): 313 doi: 10.1139/bcb-2022-0088
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35 |
Xiao Ma, Fang Nan, Hantian Liang, Panyin Shu, Xinzou Fan, Xiaoshuang Song, Yanfeng Hou, Dunfang Zhang. Excessive intake of sugar: An accomplice of inflammation. Frontiers in Immunology 2022; 13 doi: 10.3389/fimmu.2022.988481
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36 |
Mi Young Ahn, Jae Sam Hwang, Min-Ji Kim, Kun-Koo Park. Antilipidemic effects and gene expression profiling of the glycosaminoglycans from cricket in rats on a high fat diet. Archives of Pharmacal Research 2016; 39(7): 926 doi: 10.1007/s12272-016-0749-1
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37 |
Alexandra Chadt, Hadi Al-Hasani. Glucose transporters in adipose tissue, liver, and skeletal muscle in metabolic health and disease. Pflügers Archiv - European Journal of Physiology 2020; 472(9): 1273 doi: 10.1007/s00424-020-02417-x
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38 |
Jessica Lambertz, Thorsten Berger, Tak W. Mak, Josef van Helden, Ralf Weiskirchen. Lipocalin-2 in Fructose-Induced Fatty Liver Disease. Frontiers in Physiology 2017; 8 doi: 10.3389/fphys.2017.00964
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39 |
Tomas Hrncir, Lucia Hrncirova, Miloslav Kverka, Helena Tlaskalova-Hogenova. The role of gut microbiota in intestinal and liver diseases. Laboratory Animals 2019; 53(3): 271 doi: 10.1177/0023677218818605
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40 |
Akhlaq A. Farooqui. High Calorie Diet and the Human Brain. 2015; : 77 doi: 10.1007/978-3-319-15254-7_3
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41 |
Pankaj Prabhakar, KH. Reeta, Subir Kumar Maulik, Amit Kumar Dinda, Yogendra Kumar Gupta. α-Amyrin attenuates high fructose diet-induced metabolic syndrome in rats. Applied Physiology, Nutrition, and Metabolism 2017; 42(1): 23 doi: 10.1139/apnm-2016-0088
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42 |
Jeongjun Kim, Haerim Lee, Jonghoon Lim, Jaeho Oh, Soon Shin, Michung Yoon. The Angiogenesis Inhibitor ALS-L1023 from Lemon-Balm Leaves Attenuates High-Fat Diet-Induced Nonalcoholic Fatty Liver Disease through Regulating the Visceral Adipose-Tissue Function. International Journal of Molecular Sciences 2017; 18(4): 846 doi: 10.3390/ijms18040846
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43 |
Marcella L. Porto, Layla M. Lírio, Ananda T. Dias, Alan T. Batista, Bianca P. Campagnaro, José G. Mill, Silvana S. Meyrelles, Marcelo P. Baldo. Increased oxidative stress and apoptosis in peripheral blood mononuclear cells of fructose-fed rats. Toxicology in Vitro 2015; 29(8): 1977 doi: 10.1016/j.tiv.2015.08.006
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44 |
Bérénice Charrez, Liang Qiao, Lionel Hebbard. The role of fructose in metabolism and cancer. Hormone Molecular Biology and Clinical Investigation 2015; 22(2): 79 doi: 10.1515/hmbci-2015-0009
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45 |
Fazile Ekinci Akdemir, Mevlüt Albayrak, Muhammet Çalik, Yasin Bayir, İlhami Gülçin. The Protective Effects of p-Coumaric Acid on Acute Liver and Kidney Damages Induced by Cisplatin. Biomedicines 2017; 5(2): 18 doi: 10.3390/biomedicines5020018
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46 |
Min Xu, Salamah M. Alwahsh, Myung-Ho Kim, Otto Kollmar. A Multidrug Donor Preconditioning Improves Steatotic Rat Liver Allograft Function and Recipient Survival After Transplantation. Transplant International 2024; 37 doi: 10.3389/ti.2024.13557
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47 |
Melisa Kozaczek, Walter Bottje, Byungwhi Kong, Diyana Albataineh, Reza Hakkak. A Comparison of Short- and Long-Term Soy Protein Isolate Intake and Its Ability to Reduce Liver Steatosis in Obese Zucker Rats Through Modifications of Genes Involved in Inflammation and Lipid Transport. Journal of Medicinal Food 2021; 24(9): 1010 doi: 10.1089/jmf.2020.0180
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48 |
Chunye Zhang, Shuai Liu, Ming Yang. The Role of Interferon Regulatory Factors in Non-Alcoholic Fatty Liver Disease and Non-Alcoholic Steatohepatitis. Gastroenterology Insights 2022; 13(2): 148 doi: 10.3390/gastroent13020016
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49 |
Maria Elizabeth de Sousa Rodrigues, Mandakh Bekhbat, Madelyn C. Houser, Jianjun Chang, Douglas I. Walker, Dean P. Jones, Claudia M.P. Oller do Nascimento, Christopher J. Barnum, Malú G. Tansey. Chronic psychological stress and high-fat high-fructose diet disrupt metabolic and inflammatory gene networks in the brain, liver, and gut and promote behavioral deficits in mice. Brain, Behavior, and Immunity 2017; 59: 158 doi: 10.1016/j.bbi.2016.08.021
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50 |
Qian Chen, Tingting Wang, Jian Li, Sijian Wang, Feng Qiu, Haiyang Yu, Yi Zhang, Tao Wang. Effects of Natural Products on Fructose-Induced Nonalcoholic Fatty Liver Disease (NAFLD). Nutrients 2017; 9(2): 96 doi: 10.3390/nu9020096
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51 |
Anastasia Asimakopoulou, Annabelle Fülöp, Erawan Borkham-Kamphorst, Eddy Van de Leur, Nikolaus Gassler, Thorsten Berger, Birte Beine, Helmut E. Meyer, Tak W. Mak, Carsten Hopf, Corinna Henkel, Ralf Weiskirchen. Altered mitochondrial and peroxisomal integrity in lipocalin-2-deficient mice with hepatic steatosis. Biochimica et Biophysica Acta (BBA) - Molecular Basis of Disease 2017; 1863(9): 2093 doi: 10.1016/j.bbadis.2017.04.006
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52 |
Prasanthi Jegatheesan, Jean‐Pascal De Bandt. Fructose and NAFLD: The Multifaceted Aspects of Fructose Metabolism. Nutrients 2017; 9(3): 230 doi: 10.3390/nu9030230
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53 |
Diego Ortega-Pacheco, María Marcela Jiménez-Pérez, Jeanet Serafín-López, Juan Gabriel Juárez-Rojas, Arturo Ruiz-García, Ursino Pacheco-García. Vanadyl Sulfate Effects on Systemic Profiles of Metabolic Syndrome in Old Rats with Fructose-Induced Obesity. International Journal of Endocrinology 2018; 2018: 1 doi: 10.1155/2018/5257216
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54 |
Zoe E. Clayton, Mark H. Vickers, Angelica Bernal, Cassandra Yap, Deborah M. Sloboda, Kartik Shankar. Early Life Exposure to Fructose Alters Maternal, Fetal and Neonatal Hepatic Gene Expression and Leads to Sex-Dependent Changes in Lipid Metabolism in Rat Offspring. PLOS ONE 2015; 10(11): e0141962 doi: 10.1371/journal.pone.0141962
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55 |
Maxime De Rudder, Caroline Bouzin, Maxime Nachit, Heloïse Louvegny, Greetje Vande Velde, Yvon Julé, Isabelle A. Leclercq. Automated computerized image analysis for the user-independent evaluation of disease severity in preclinical models of NAFLD/NASH. Laboratory Investigation 2020; 100(1): 147 doi: 10.1038/s41374-019-0315-9
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56 |
Esra Sumlu, Aykut Bostancı, Gökhan Sadi, Mehmet Eray Alçığır, Fatma Akar. Lactobacillus plantarum improves lipogenesis and IRS-1/AKT/eNOS signalling pathway in the liver of high-fructose-fed rats. Archives of Physiology and Biochemistry 2022; 128(3): 786 doi: 10.1080/13813455.2020.1727527
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57 |
Marinela Krizanac, Paola Berenice Mass Sanchez, Ralf Weiskirchen, Anastasia Asimakopoulos. A Scoping Review on Lipocalin-2 and Its Role in Non-Alcoholic Steatohepatitis and Hepatocellular Carcinoma. International Journal of Molecular Sciences 2021; 22(6): 2865 doi: 10.3390/ijms22062865
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58 |
Rong Xiang, Yuxing Liu, Liangliang Fan, Boyue Jiang, Fang Wang. RNA adenosine deaminase (ADAR1) alleviates high-fat diet-induced nonalcoholic fatty liver disease by inhibiting NLRP3 inflammasome. Laboratory Investigation 2022; 102(10): 1088 doi: 10.1038/s41374-022-00805-8
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59 |
Arianna Mazzoli, Raffaella Crescenzo, Luisa Cigliano, Maria Stefania Spagnuolo, Rosa Cancelliere, Cristina Gatto, Susanna Iossa. Early Hepatic Oxidative Stress and Mitochondrial Changes Following Western Diet in Middle Aged Rats. Nutrients 2019; 11(11): 2670 doi: 10.3390/nu11112670
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60 |
Min Xu, Changjun Tan, Jinwu Hu, Salamah Mohammad Alwahsh, Jun Yan, Jie Hu, Zhi Dai, Zheng Wang, Jian Zhou, Jia Fan, Xiaowu Huang. Expression of Hemopexin in Acute Rejection of Rat Liver Allograft Identified by Serum Proteomic Analysis. Shock 2014; 42(1): 65 doi: 10.1097/SHK.0000000000000171
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61 |
Salamah Mohammad Alwahsh, Min Xu, Frank Christian Schultze, Jörg Wilting, Sabine Mihm, Dirk Raddatz, Giuliano Ramadori, Silvia C. Sookoian. Combination of Alcohol and Fructose Exacerbates Metabolic Imbalance in Terms of Hepatic Damage, Dyslipidemia, and Insulin Resistance in Rats. PLoS ONE 2014; 9(8): e104220 doi: 10.1371/journal.pone.0104220
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62 |
Anup Bhusal, Md Habibur Rahman, Won-Ha Lee, Yong Chul Bae, In-Kyu Lee, Kyoungho Suk. Paradoxical role of lipocalin-2 in metabolic disorders and neurological complications. Biochemical Pharmacology 2019; 169: 113626 doi: 10.1016/j.bcp.2019.113626
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63 |
Salamah Alwahsh, Benjamin Dwyer, Shareen Forbes, David Van Thiel, Philip Starkey Lewis, Giuliano Ramadori. Insulin Production and Resistance in Different Models of Diet-Induced Obesity and Metabolic Syndrome. International Journal of Molecular Sciences 2017; 18(2): 285 doi: 10.3390/ijms18020285
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64 |
Monika Kubacka, Barbara Nowak, Monika Zadrożna, Małgorzata Szafarz, Gniewomir Latacz, Henryk Marona, Jacek Sapa, Szczepan Mogilski, Marek Bednarski, Magdalena Kotańska. Manifestations of Liver Impairment and the Effects of MH-76, a Non-Quinazoline α1-Adrenoceptor Antagonist, and Prazosin on Liver Tissue in Fructose-Induced Metabolic Syndrome. Metabolites 2023; 13(11): 1130 doi: 10.3390/metabo13111130
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65 |
Zhiqiang Wang, Seung Hwang, Ju Kim, Soon Lim. Anti-Obesity Effect of the Above-Ground Part of Valeriana dageletiana Nakai ex F. Maek Extract in High-Fat Diet-Induced Obese C57BL/6N Mice. Nutrients 2017; 9(7): 689 doi: 10.3390/nu9070689
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66 |
Joanna K Coker, Oriane Moyne, Dmitry A. Rodionov, Karsten Zengler. Carbohydrates great and small, from dietary fiber to sialic acids: How glycans influence the gut microbiome and affect human health. Gut Microbes 2021; 13(1) doi: 10.1080/19490976.2020.1869502
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67 |
Shiwei Chen, Huiting Guo, Mingjie Xie, Cheng Zhou, Min Zheng. Neutrophil: An emerging player in the occurrence and progression of metabolic associated fatty liver disease. International Immunopharmacology 2021; 97: 107609 doi: 10.1016/j.intimp.2021.107609
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68 |
Dong-Mei Zhang, Rui-Qing Jiao, Ling-Dong Kong. High Dietary Fructose: Direct or Indirect Dangerous Factors Disturbing Tissue and Organ Functions. Nutrients 2017; 9(4): 335 doi: 10.3390/nu9040335
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69 |
Yu-Lin Shih, Tzu-Cheng Huang, Chin-Chuan Shih, Jau-Yuan Chen. Relationship between Leptin and Insulin Resistance among Community—Dwelling Middle-Aged and Elderly Populations in Taiwan. Journal of Clinical Medicine 2022; 11(18): 5357 doi: 10.3390/jcm11185357
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