For: | Keitel V, Kubitz R, Häussinger D. Endocrine and paracrine role of bile acids. World J Gastroenterol 2008; 14(37): 5620-5629 [PMID: PMC2748195 DOI: 10.3748/wjg.14.5620] |
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URL: | https://www.wjgnet.com/1007-9327/full/v14/i37/5620.htm |
Number | Citing Articles |
1 |
Ana Nogal, Ana M. Valdes, Cristina Menni. The role of short-chain fatty acids in the interplay between gut microbiota and diet in cardio-metabolic health. Gut Microbes 2021; 13(1) doi: 10.1080/19490976.2021.1897212
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2 |
Anna Smaling, Lorenzo Romero‐Ramírez, Jörg Mey. Is TGR5 a therapeutic target for the treatment of spinal cord injury?. Journal of Neurochemistry 2023; 164(4): 454 doi: 10.1111/jnc.15727
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3 |
Verena Keitel, Dieter Häussinger. TGR5 in cholangiocytes. Current Opinion in Gastroenterology 2013; 29(3): 299 doi: 10.1097/MOG.0b013e32835f3f14
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4 |
Fanzhi Kong, Xiaoyu Niu, Mingde Liu, Qiuhong Wang. Bile acids LCA and CDCA inhibited porcine deltacoronavirus replication in vitro. Veterinary Microbiology 2021; 257: 109097 doi: 10.1016/j.vetmic.2021.109097
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5 |
Xueting Shan, Rui Li, Xiang Ma, Guoqiang Qiu, Yi Xiang, Xiaojun Zhang, De Wu, Lu Wang, Jianhong Zhang, Tao Wang, Weifen Li, Yun Xiang, Houhui Song, Dong Niu. Epidemiology, pathogenesis, immune evasion mechanism and vaccine development of porcine Deltacoronavirus. Functional & Integrative Genomics 2024; 24(3) doi: 10.1007/s10142-024-01346-7
|
6 |
Verena Keitel, Maria Reich, Annika Sommerfeld, Stefanie Kluge, Ralf Kubitz, Dieter Häussinger. Role of the bile acid receptor TGR5 (Gpbar-1) in liver damage and regeneration. European Journal of Medical Research 2014; 19(S1) doi: 10.1186/2047-783X-19-S1-S21
|
7 |
Bojan Stanimirov, Karmen Stankov, Momir Mikov. Bile acid signaling through farnesoid X and TGR5 receptors in hepatobiliary and intestinal diseases. Hepatobiliary & Pancreatic Diseases International 2015; 14(1): 18 doi: 10.1016/S1499-3872(14)60307-6
|
8 |
Naoyuki Togawa, Rumiko Takahashi, Shizuka Hirai, Tatsunobu Fukushima, Yukari Egashira. Gene expression analysis of the liver and skeletal muscle of psyllium-treated mice. British Journal of Nutrition 2013; 109(3): 383 doi: 10.1017/S0007114512001250
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9 |
Maria Reich, Kathleen Deutschmann, Annika Sommerfeld, Caroline Klindt, Stefanie Kluge, Ralf Kubitz, Christoph Ullmer, Wolfram T Knoefel, Diran Herebian, Ertan Mayatepek, Dieter Häussinger, Verena Keitel. TGR5 is essential for bile acid-dependent cholangiocyte proliferation in vivo and in vitro. Gut 2016; 65(3): 487 doi: 10.1136/gutjnl-2015-309458
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10 |
Isabelle Doignon, Boris Julien, Valérie Serrière-Lanneau, Isabelle Garcin, Gérard Alonso, Alexandra Nicou, François Monnet, Michelle Gigou, Lydie Humbert, Dominique Rainteau, Daniel Azoulay, Denis Castaing, Marie-Christine Gillon, Didier Samuel, Jean-Charles Duclos-Vallée, Thierry Tordjmann. Immediate neuroendocrine signaling after partial hepatectomy through acute portal hyperpressure and cholestasis. Journal of Hepatology 2011; 54(3): 481 doi: 10.1016/j.jhep.2010.07.012
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11 |
Verena Keitel, Dieter Häussinger. Perspective: TGR5 (Gpbar-1) in liver physiology and disease. Clinics and Research in Hepatology and Gastroenterology 2012; 36(5): 412 doi: 10.1016/j.clinre.2012.03.008
|
12 |
Verena Keitel, Jan Stindt, Dieter Häussinger. Bile Acids and Their Receptors. Handbook of Experimental Pharmacology 2019; 256: 19 doi: 10.1007/164_2019_230
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13 |
Silvia Marchianò, Michele Biagioli, Rosalinda Roselli, Angela Zampella, Cristina Di Giorgio, Martina Bordoni, Rachele Bellini, Elva Morretta, Maria Chiara Monti, Eleonora Distrutti, Stefano Fiorucci. Atorvastatin protects against liver and vascular damage in a model of diet induced steatohepatitis by resetting FXR and GPBAR1 signaling. The FASEB Journal 2022; 36(1) doi: 10.1096/fj.202101397R
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14 |
Lucas Maillette de Buy Wenniger, Ulrich Beuers. Bile salts and cholestasis. Digestive and Liver Disease 2010; 42(6): 409 doi: 10.1016/j.dld.2010.03.015
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15 |
Bruno Stieger. Drug Transporters. Handbook of Experimental Pharmacology 2011; 201: 205 doi: 10.1007/978-3-642-14541-4_5
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16 |
Fang Fang, Yin Li, Mario Bumann, Emma J. Raftis, Pat G. Casey, Jakki C. Cooney, Martin A. Walsh, Paul W. O'Toole.
Allelic Variation of Bile Salt Hydrolase Genes in
Lactobacillus salivarius
Does Not Determine Bile Resistance Levels
. Journal of Bacteriology 2009; 191(18): 5743 doi: 10.1128/JB.00506-09
|
17 |
Kohkichi Morimoto, Hiroshi Itoh, Mitsuhiro Watanabe. Developments in understanding bile acid metabolism. Expert Review of Endocrinology & Metabolism 2013; 8(1): 59 doi: 10.1586/eem.12.75
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18 |
Marc Girardin, Antoine Hadengue, Jean-Louis Frossard, the Swiss IBD Cohort Study Group. High prevalence of cholestasis, with increased conjugated bile acids in inflammatory bowel diseases patients. World Journal of Clinical Cases 2018; 6(4): 44-53 doi: 10.12998/wjcc.v6.i4.44
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19 |
Shiro Watanabe, Koichi Tsuneyama. Eicosapentaenoic acid attenuates hepatic accumulation of cholesterol esters but aggravates liver injury and inflammation in mice fed a cholate-supplemented high-fat diet. The Journal of Toxicological Sciences 2013; 38(3): 379 doi: 10.2131/jts.38.379
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20 |
James Philip G. Esteban, Amon Asgharpour. Pharmacologic Treatment Strategies for Nonalcoholic Steatohepatitis. Gastroenterology Clinics of North America 2020; 49(1): 105 doi: 10.1016/j.gtc.2019.10.003
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21 |
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22 |
Chiara Degirolamo, Salvatore Modica, Giuseppe Palasciano, Antonio Moschetta. Bile acids and colon cancer: Solving the puzzle with nuclear receptors. Trends in Molecular Medicine 2011; 17(10): 564 doi: 10.1016/j.molmed.2011.05.010
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23 |
Laura M. Sipe, Mehdi Chaib, Ajeeth K. Pingili, Joseph F. Pierre, Liza Makowski. Microbiome, bile acids, and obesity: How microbially modified metabolites shape anti‐tumor immunity. Immunological Reviews 2020; 295(1): 220 doi: 10.1111/imr.12856
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24 |
Ramon O. Minjares, Paul Martin, Kalyan Ram Bhamidimarri. Textbook of Neurointensive Care: Volume 1. 2024; : 267 doi: 10.1007/978-3-031-62220-5_17
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25 |
Satish C. Kalhan, Lining Guo, John Edmison, Srinivasan Dasarathy, Arthur J. McCullough, Richard W. Hanson, Mike Milburn. Plasma metabolomic profile in nonalcoholic fatty liver disease. Metabolism 2011; 60(3): 404 doi: 10.1016/j.metabol.2010.03.006
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26 |
Taoufiq Harach, Thijs W. H. Pols, Mitsunori Nomura, Adriano Maida, Mitsuhiro Watanabe, Johan Auwerx, Kristina Schoonjans. TGR5 potentiates GLP-1 secretion in response to anionic exchange resins. Scientific Reports 2012; 2(1) doi: 10.1038/srep00430
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27 |
Henri Duboc, Yvette Taché, Alan F. Hofmann. The bile acid TGR5 membrane receptor: From basic research to clinical application. Digestive and Liver Disease 2014; 46(4): 302 doi: 10.1016/j.dld.2013.10.021
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28 |
Patricio Godoy, Nicola J. Hewitt, Ute Albrecht, Melvin E. Andersen, Nariman Ansari, Sudin Bhattacharya, Johannes Georg Bode, Jennifer Bolleyn, Christoph Borner, Jan Böttger, Albert Braeuning, Robert A. Budinsky, Britta Burkhardt, Neil R. Cameron, Giovanni Camussi, Chong-Su Cho, Yun-Jaie Choi, J. Craig Rowlands, Uta Dahmen, Georg Damm, Olaf Dirsch, María Teresa Donato, Jian Dong, Steven Dooley, Dirk Drasdo, Rowena Eakins, Karine Sá Ferreira, Valentina Fonsato, Joanna Fraczek, Rolf Gebhardt, Andrew Gibson, Matthias Glanemann, Chris E. P. Goldring, María José Gómez-Lechón, Geny M. M. Groothuis, Lena Gustavsson, Christelle Guyot, David Hallifax, Seddik Hammad, Adam Hayward, Dieter Häussinger, Claus Hellerbrand, Philip Hewitt, Stefan Hoehme, Hermann-Georg Holzhütter, J. Brian Houston, Jens Hrach, Kiyomi Ito, Hartmut Jaeschke, Verena Keitel, Jens M. Kelm, B. Kevin Park, Claus Kordes, Gerd A. Kullak-Ublick, Edward L. LeCluyse, Peng Lu, Jennifer Luebke-Wheeler, Anna Lutz, Daniel J. Maltman, Madlen Matz-Soja, Patrick McMullen, Irmgard Merfort, Simon Messner, Christoph Meyer, Jessica Mwinyi, Dean J. Naisbitt, Andreas K. Nussler, Peter Olinga, Francesco Pampaloni, Jingbo Pi, Linda Pluta, Stefan A. Przyborski, Anup Ramachandran, Vera Rogiers, Cliff Rowe, Celine Schelcher, Kathrin Schmich, Michael Schwarz, Bijay Singh, Ernst H. K. Stelzer, Bruno Stieger, Regina Stöber, Yuichi Sugiyama, Ciro Tetta, Wolfgang E. Thasler, Tamara Vanhaecke, Mathieu Vinken, Thomas S. Weiss, Agata Widera, Courtney G. Woods, Jinghai James Xu, Kathy M. Yarborough, Jan G. Hengstler. Recent advances in 2D and 3D in vitro systems using primary hepatocytes, alternative hepatocyte sources and non-parenchymal liver cells and their use in investigating mechanisms of hepatotoxicity, cell signaling and ADME. Archives of Toxicology 2013; 87(8): 1315 doi: 10.1007/s00204-013-1078-5
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29 |
Verena Keitel, Carola Dröge, Dieter Häussinger. Bile Acids and Their Receptors. Handbook of Experimental Pharmacology 2019; 256: 299 doi: 10.1007/164_2019_231
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30 |
Noelle Gorgis, Moreshwar S. Desai. Cardio-Hepatology. 2023; : 247 doi: 10.1016/B978-0-12-817394-7.00013-9
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31 |
D. P. Poole, C. Godfrey, F. Cattaruzza, G. S. Cottrell, J. G. Kirkland, J. C. Pelayo, N. W. Bunnett, C. U. Corvera. Expression and function of the bile acid receptor GpBAR1 (TGR5) in the murine enteric nervous system. Neurogastroenterology & Motility 2010; 22(7): 814 doi: 10.1111/j.1365-2982.2010.01487.x
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32 |
Célia Faustino, Cláudia Serafim, Patrícia Rijo, Catarina Pinto Reis. Bile acids and bile acid derivatives: use in drug delivery systems and as therapeutic agents. Expert Opinion on Drug Delivery 2016; 13(8): 1133 doi: 10.1080/17425247.2016.1178233
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33 |
Hollie I Swanson, Taira Wada, Wen Xie, Barbara Renga, Angela Zampella, Eleonora Distrutti, Stefano Fiorucci, Bo Kong, Ann M Thomas, Grace L Guo, Ramesh Narayanan, Muralimohan Yepuru, James T Dalton, John Y. L Chiang. Role of Nuclear Receptors in Lipid Dysfunction and Obesity-Related Diseases. Drug Metabolism and Disposition 2013; 41(1): 1 doi: 10.1124/dmd.112.048694
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34 |
Ursula R. Sorg, Kristina Behnke, Daniel Degrandi, Maria Reich, Verena Keitel, Diran Herebian, René Deenen, Marc Beyer, Joachim L. Schultze, Karl Köhrer, Helmut E. Gabbert, Ertan Mayatepek, Dieter Häussinger, Klaus Pfeffer. Cooperative role of lymphotoxin β receptor and tumor necrosis factor receptor p55 in murine liver regeneration. Journal of Hepatology 2016; 64(5): 1108 doi: 10.1016/j.jhep.2015.12.006
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35 |
Yu Zhang, Hongbing Xie, Lirong Wang, Jianhe Hu, Lei Wang, Shouping Zhang. Effect of Weaning at 21 Days of Age on the Content of Bile Acids in Chyme of Cecum. Animals 2022; 12(16): 2138 doi: 10.3390/ani12162138
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36 |
Marianne Wammers, Anna-Kathrin Schupp, Johannes G. Bode, Christian Ehlting, Stephanie Wolf, René Deenen, Karl Köhrer, Dieter Häussinger, Dirk Graf. Reprogramming of pro-inflammatory human macrophages to an anti-inflammatory phenotype by bile acids. Scientific Reports 2018; 8(1) doi: 10.1038/s41598-017-18305-x
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37 |
Marc Jenniskens, Lies Langouche, Yoo-Mee Vanwijngaerden, Dieter Mesotten, Greet Van den Berghe. Cholestatic liver (dys)function during sepsis and other critical illnesses. Intensive Care Medicine 2016; 42(1): 16 doi: 10.1007/s00134-015-4054-0
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38 |
Ipsita Mohanty, Celeste Allaband, Helena Mannochio-Russo, Yasin El Abiead, Lee R. Hagey, Rob Knight, Pieter C. Dorrestein. The changing metabolic landscape of bile acids – keys to metabolism and immune regulation. Nature Reviews Gastroenterology & Hepatology 2024; 21(7): 493 doi: 10.1038/s41575-024-00914-3
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39 |
Ross D. Jansen-van Vuuren, Sina Naficy, Maedeh Ramezani, Michael Cunningham, Philip Jessop. CO2-responsive gels. Chemical Society Reviews 2023; 52(10): 3470 doi: 10.1039/D2CS00053A
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40 |
Rocio IR Macias, Jose JG Marin, Maria A Serrano. Excretion of biliary compounds during intrauterine life. World Journal of Gastroenterology 2009; 15(7): 817-828 doi: 10.3748/wjg.15.817
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41 |
Ruirong Lin, Ming Zhan, Linhua Yang, Hui Wang, Hui Shen, Shuai Huang, Xince Huang, Sunwang Xu, Zijie Zhang, Weijian Li, Qiang Liu, Yongsheng Shi, Wei Chen, Jianxiu Yu, Jian Wang. Deoxycholic acid modulates the progression of gallbladder cancer through N6-methyladenosine-dependent microRNA maturation. Oncogene 2020; 39(26): 4983 doi: 10.1038/s41388-020-1349-6
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42 |
Thomas Foster, Corina Ionescu, Daniel Walker, Melissa Jones, Susbin Wagle, Božica Kovacevic, Daniel Brown, Momir Mikov, Armin Mooranian, Hani Al-Salami. Chemotherapy-Induced Hearing Loss: The Applications of Bio-Nanotechnologies and Bile Acid-Based Delivery Matrices. Therapeutic Delivery 2021; 12(10): 723 doi: 10.4155/tde-2021-0050
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43 |
Giovanni Musso, Roberto Gambino, Maurizio Cassader. Interactions Between Gut Microbiota and Host Metabolism Predisposing to Obesity and Diabetes. Annual Review of Medicine 2011; 62(1): 361 doi: 10.1146/annurev-med-012510-175505
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44 |
Carol J. Soroka, James L. Boyer. Biosynthesis and trafficking of the bile salt export pump, BSEP: Therapeutic implications of BSEP mutations. Molecular Aspects of Medicine 2014; 37: 3 doi: 10.1016/j.mam.2013.05.001
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45 |
Liyanne F. M. van de Laarschot, Peter L. M. Jansen, Frank G. Schaap, Steven W. M. Olde Damink. The role of bile salts in liver regeneration. Hepatology International 2016; 10(5): 733 doi: 10.1007/s12072-016-9723-8
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46 |
Rebecca J. Hodge, Jiang Lin, Lakshmi S. Vasist Johnson, Elizabeth P. Gould, Gary D. Bowers, Derek J. Nunez. Safety, Pharmacokinetics, and Pharmacodynamic Effects of a Selective TGR5 Agonist, SB‐756050, in Type 2 Diabetes. Clinical Pharmacology in Drug Development 2013; 2(3): 213 doi: 10.1002/cpdd.34
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47 |
Jiangeng Huang, Sai Praneeth R. Bathena, Iván L. Csanaky, Yazen Alnouti. Simultaneous characterization of bile acids and their sulfate metabolites in mouse liver, plasma, bile, and urine using LC–MS/MS. Journal of Pharmaceutical and Biomedical Analysis 2011; 55(5): 1111 doi: 10.1016/j.jpba.2011.03.035
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48 |
Bruno Stieger. Recent insights into the function and regulation of the bile salt export pump (ABCB11). Current Opinion in Lipidology 2009; 20(3): 176 doi: 10.1097/MOL.0b013e32832b677c
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49 |
R. S. Kootte, A. Vrieze, F. Holleman, G. M. Dallinga‐Thie, E. G. Zoetendal, W. M. de Vos, A. K. Groen, J. B. L. Hoekstra, E. S. Stroes, M. Nieuwdorp. The therapeutic potential of manipulating gut microbiota in obesity and type 2 diabetes mellitus. Diabetes, Obesity and Metabolism 2012; 14(2): 112 doi: 10.1111/j.1463-1326.2011.01483.x
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50 |
John Y.L. Chiang. Bile acids: regulation of synthesis. Journal of Lipid Research 2009; 50(10): 1955 doi: 10.1194/jlr.R900010-JLR200
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Princy Hira, Utkarsh Sood, Vipin Gupta, Namita Nayyar, Nitish Kumar Mahato, Yogendra Singh, Rup Lal, Mallikarjun Shakarad. Genome Analysis and Human Health. 2017; : 153 doi: 10.1007/978-981-10-4298-0_8
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52 |
Iris Sawitza, Claus Kordes, Silke Götze, Diran Herebian, Dieter Häussinger. Bile acids induce hepatic differentiation of mesenchymal stem cells. Scientific Reports 2015; 5(1) doi: 10.1038/srep13320
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53 |
Christopher Hadjittofi, Michael Feretis, Jack Martin, Simon Harper, Emmanuel Huguet. Liver regeneration biology: Implications for liver tumour therapies. World Journal of Clinical Oncology 2021; 12(12): 1101-1156 doi: 10.5306/wjco.v12.i12.1101
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54 |
Stefano Fiorucci, Angela Zampella, Patrizia Ricci, Eleonora Distrutti, Michele Biagioli. Immunomodulatory functions of FXR. Molecular and Cellular Endocrinology 2022; 551: 111650 doi: 10.1016/j.mce.2022.111650
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55 |
Stefano Fiorucci, Eleonora Distrutti, Adriana Carino, Angela Zampella, Michele Biagioli. Bile acids and their receptors in metabolic disorders. Progress in Lipid Research 2021; 82: 101094 doi: 10.1016/j.plipres.2021.101094
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56 |
Anna Palmiotti, Kirsten A. Berk, Martijn Koehorst, Milaine V. Hovingh, Alle T. Pranger, Martijn van Faassen, Jan Freark de Boer, Eline S. van der Valk, Elisabeth F. C. van Rossum, Monique T. Mulder, Folkert Kuipers. Reversal of insulin resistance in people with obesity by lifestyle‐induced weight loss does not impact the proportion of circulating 12α‐hydroxylated bile acids. Diabetes, Obesity and Metabolism 2024; 26(9): 4019 doi: 10.1111/dom.15754
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57 |
D H Ducroq, M S Morton, N Shadi, H L Fraser, C Strevens, J Morris, M A Thomas. Analysis of serum bile acids by isotope dilution-mass spectrometry to assess the performance of routine total bile acid methods. Annals of Clinical Biochemistry: International Journal of Laboratory Medicine 2010; 47(6): 535 doi: 10.1258/acb.2010.010154
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58 |
Mathieu Danoy, Yannick Tauran, Stéphane Poulain, Rachid Jellali, Johanna Bruce, Marjorie Leduc, Morgane Le Gall, Francoise Gilard, Taketomo Kido, Hiroshi Arakawa, Karin Araya, Daiki Mori, Yukio Kato, Hiroyuki Kusuhara, Charles Plessy, Atsushi Miyajima, Yasuyuki Sakai, Eric Leclerc. Multi‐omics analysis of hiPSCs‐derived HLCs matured on‐chip revealed patterns typical of liver regeneration. Biotechnology and Bioengineering 2021; 118(10): 3716 doi: 10.1002/bit.27667
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Michele Biagioli, Stefano Fiorucci. Bile acid activated receptors: Integrating immune and metabolic regulation in non-alcoholic fatty liver disease. Liver Research 2021; 5(3): 119 doi: 10.1016/j.livres.2021.08.003
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Jorge A. R. Salvador, João F. S. Carvalho, Marco A. C. Neves, Samuel M. Silvestre, Alcino J. Leitão, M. Manuel C. Silva, M. Luisa Sá e Melo. Anticancer steroids: linking natural and semi-synthetic compounds. Nat. Prod. Rep. 2013; 30(2): 324 doi: 10.1039/C2NP20082A
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Stephanie Rattay, Dirk Graf, Andreas Kislat, Bernhard Homey, Diran Herebian, Dieter Häussinger, Hartmut Hengel, Albert Zimmermann, Anna-Kathrin Schupp, Michael Nevels. Anti-inflammatory consequences of bile acid accumulation in virus-infected bile duct ligated mice. PLOS ONE 2018; 13(6): e0199863 doi: 10.1371/journal.pone.0199863
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Shiro Watanabe, Kyosuke Fujita. Dietary Hyodeoxycholic Acid Exerts Hypolipidemic Effects by Reducing Farnesoid X Receptor Antagonist Bile Acids in Mouse Enterohepatic Tissues. Lipids 2014; 49(10): 963 doi: 10.1007/s11745-014-3947-y
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Catherine Jane Messner, Linda Mauch, Laura Suter-Dick. Bile salts regulate CYP7A1 expression and elicit a fibrotic response and abnormal lipid production in 3D liver microtissues. Toxicology in Vitro 2019; 60: 261 doi: 10.1016/j.tiv.2019.06.002
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Vanesa Stepanov, Karmen Stankov, Momir Mikov. The bile acid membrane receptor TGR5: a novel pharmacological target in metabolic, inflammatory and neoplastic disorders. Journal of Receptors and Signal Transduction 2013; 33(4): 213 doi: 10.3109/10799893.2013.802805
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Xinyu Yang, Xianfeng Zhang, Wei Yang, Hang Yu, Qianyan He, Hui Xu, Shihui Li, Zi'ao Shang, Xiaodong Gao, Yan Wang, Qian Tong. Gut Microbiota in Adipose Tissue Dysfunction Induced Cardiovascular Disease: Role as a Metabolic Organ. Frontiers in Endocrinology 2021; 12 doi: 10.3389/fendo.2021.749125
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Lihong Chen, Judi McNulty, Don Anderson, Yaping Liu, Christopher Nystrom, Sarah Bullard, Jon Collins, Anthony L. Handlon, Ryan Klein, Angela Grimes, David Murray, Roger Brown, David Krull, Bill Benson, Elena Kleymenova, Katja Remlinger, Andrew Young, Xiaozhou Yao. Cholestyramine Reverses Hyperglycemia and Enhances Glucose-Stimulated Glucagon-Like Peptide 1 Release in Zucker Diabetic Fatty Rats. The Journal of Pharmacology and Experimental Therapeutics 2010; 334(1): 164 doi: 10.1124/jpet.110.166892
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Stefano Fiorucci, Eleonora Distrutti. Linking liver metabolic and vascular disease via bile acid signaling. Trends in Molecular Medicine 2022; 28(1): 51 doi: 10.1016/j.molmed.2021.10.005
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Xiushan Dong, Haoliang Zhao, Xiaoming Ma, Shiming Wang. Reduction in bile acid pool causes delayed liver regeneration accompanied by down-regulated expression of FXR and c-Jun mRNA in rats. Journal of Huazhong University of Science and Technology [Medical Sciences] 2010; 30(1): 55 doi: 10.1007/s11596-010-0110-8
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Anca D. Petrescu, Sharon DeMorrow. Farnesoid X Receptor as Target for Therapies to Treat Cholestasis-Induced Liver Injury. Cells 2021; 10(8): 1846 doi: 10.3390/cells10081846
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Marc Jenniskens, Fabian Güiza, Marlies Oorts, Sarah Vander Perre, Sarah Derde, Thomas Dufour, Steven Thiessen, Pieter Annaert, Greet Van den Berghe, Lies Langouche. On the Role of Illness Duration and Nutrient Restriction in Cholestatic Alterations that Occur During Critical Illness. Shock 2018; 50(2): 187 doi: 10.1097/SHK.0000000000001001
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Lukasz Kaska, Tomasz Sledzinski, Agnieszka Chomiczewska, Agnieszka Dettlaff-Pokora, Julian Swierczynski. Improved glucose metabolism following bariatric surgery is associated with increased circulating bile acid concentrations and remodeling of the gut microbiome. World Journal of Gastroenterology 2016; 22(39): 8698-8719 doi: 10.3748/wjg.v22.i39.8698
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Hanieh-Sadat EJTAHED, Pooneh ANGOORANI, Ahmad-Reza SOROUSH, Shirin HASANI-RANJBAR, Seyed-Davar SIADAT, Bagher LARIJANI. Gut microbiota-derived metabolites in obesity: a systematic review. Bioscience of Microbiota, Food and Health 2020; 39(3): 65 doi: 10.12938/bmfh.2019-026
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Amon Asgharpour, Divya Kumar, Arun Sanyal. Bile acids: emerging role in management of liver diseases. Hepatology International 2015; 9(4): 527 doi: 10.1007/s12072-015-9656-7
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Marc Jenniskens, Lies Langouche, Greet Van den Berghe. Cholestatic Alterations in the Critically Ill. Chest 2018; 153(3): 733 doi: 10.1016/j.chest.2017.08.018
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Markus Herrmann, Giovanny Rodriguez-Blanco, Marco Balasso, Katarzyna Sobolewska, Maria Donatella Semeraro, Nerea Alonso, Wolfgang Herrmann. The role of bile acid metabolism in bone and muscle: from analytics to mechanisms. Critical Reviews in Clinical Laboratory Sciences 2024; 61(6): 510 doi: 10.1080/10408363.2024.2323132
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Kathleen O’Connell, Karen Brasel. Bile Metabolism and Lithogenesis. Surgical Clinics of North America 2014; 94(2): 361 doi: 10.1016/j.suc.2014.01.004
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