Suchbegriffe: HEPG2, . Treffer: 64
Butkutė, A; Jurkšas, T; Baravykas, T; Leber, B; Merkininkaitė, G; Žilėnaitė, R; Čereška, D; Gulla, A; Kvietkauskas, M; Marcinkevičiūtė, K; Schemmer, P; Strupas, K
Combined Femtosecond Laser Glass Microprocessing for Liver-on-Chip Device Fabrication.
Materials (Basel). 2023; 16(6):
Doi: 10.3390/ma16062174
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Fuchs, CD; Radun, R; Dixon, ED; Mlitz, V; Timelthaler, G; Halilbasic, E; Herac, M; Jonker, JW; Ronda, OAHO; Tardelli, M; Haemmerle, G; Zimmermann, R; Scharnagl, H; Stojakovic, T; Verkade, HJ; Trauner, M
Hepatocyte-specific deletion of adipose triglyceride lipase (adipose triglyceride lipase/patatin-like phospholipase domain containing 2) ameliorates dietary induced steatohepatitis in mice.
Hepatology. 2022; 75(1):125-139
Doi: 10.1002/hep.32112
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Gindlhuber, J; Schinagl, M; Liesinger, L; Darnhofer, B; Tomin, T; Schittmayer, M; Birner-Gruenberger, R
Hepatocyte Proteome Alterations Induced by Individual and Combinations of Common Free Fatty Acids.
Int J Mol Sci. 2022; 23(6):
Doi: 10.3390/ijms23063356
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Greimel, T; Jahnel, J; Pohl, S; Strini, T; Tischitz, M; Meier-Allard, N; Holasek, S; Meinel, K; Aguiriano-Moser, V; Zobel, J; Haidl, H; Gallistl, S; Panzitt, K; Wagner, M; Schlagenhauf, A
Bile acid-induced tissue factor activity in hepatocytes correlates with activation of farnesoid X receptor.
Lab Invest. 2021; 101(10):1394-1402
Doi: 10.1038/s41374-021-00628-z
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Pan, G; Diamanti, K; Cavalli, M; Lara, Gutiérrez, A; Komorowski, J; Wadelius, C
Multifaceted regulation of hepatic lipid metabolism by YY1.
Life Sci Alliance. 2021; 4(7):
Doi: 10.26508/lsa.202000928
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Schilcher, I; Stadler, JT; Lechleitner, M; Hrzenjak, A; Berghold, A; Pregartner, G; Lhomme, M; Holzer, M; Korbelius, M; Reichmann, F; Springer, A; Wadsack, C; Madl, T; Kratky, D; Kontush, A; Marsche, G; Frank, S
Endothelial Lipase Modulates Paraoxonase 1 Content and Arylesterase Activity of HDL.
Int J Mol Sci. 2021; 22(2):
Doi: 10.3390/ijms22020719
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Dong, J; He, M; Li, J; Pessentheiner, A; Wang, C; Zhang, J; Sun, Y; Wang, WT; Zhang, Y; Liu, J; Wang, SC; Huang, PH; Gordts, PL; Yuan, ZY; Tsimikas, S; Shyy, JY
microRNA-483 ameliorates hypercholesterolemia by inhibiting PCSK9 production.
JCI Insight. 2020; 5(23):
Doi: 10.1172/jci.insight.143812
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Olivieri, O; Speziali, G; Castagna, A; Pattini, P; Udali, S; Pizzolo, F; Liesinger, L; Gindlhuber, J; Tomin, T; Schittmayer, M; Birner-Gruenberger, R; Cecconi, D; Girelli, D; Friso, S; Martinelli, N
The Positive Association between Plasma Myristic Acid and ApoCIII Concentrations in Cardiovascular Disease Patients Is Supported by the Effects of Myristic Acid in HepG2 Cells.
J Nutr. 2020; 150(10):2707-2715
Doi: 10.1093/jn/nxaa202
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Radulović, S; Gottschalk, B; Hörl, G; Zardoya-Laguardia, P; Schilcher, I; Hallström, S; Vujić, N; Schmidt, K; Trieb, M; Graier, WF; Malli, R; Kratky, D; Marsche, G; Frank, S
Endothelial lipase increases eNOS activating capacity of high-density lipoprotein.
Biochim Biophys Acta Mol Cell Biol Lipids. 2020; 1865(4):158612
Doi: 10.1016/j.bbalip.2020.158612
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Kröhler, T; Kessler, SM; Hosseini, K; List, M; Barghash, A; Patial, S; Laggai, S; Gemperlein, K; Haybaeck, J; Müller, R; Helms, V; Schulz, MH; Hoppstädter, J; Blackshear, PJ; Kiemer, AK
The mRNA-binding Protein TTP/ZFP36 in Hepatocarcinogenesis and Hepatocellular Carcinoma.
Cancers (Basel). 2019; 11(11):
Doi: 10.3390/cancers11111754
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Schilcher, I; Ledinski, G; Radulović, S; Hallström, S; Eichmann, T; Madl, T; Zhang, F; Leitinger, G; Kolb-Lenz, D; Darnhofer, B; Birner-Gruenberger, R; Wadsack, C; Kratky, D; Marsche, G; Frank, S; Cvirn, G
Endothelial lipase increases antioxidative capacity of high-density lipoprotein.
Biochim Biophys Acta Mol Cell Biol Lipids. 2019; 1864(10):1363-1374
Doi: 10.1016/j.bbalip.2019.06.011
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Heil, J; Schultze, D; Schemmer, P; Bruns, H
N-acetylcysteine protects hepatocytes from hypoxia-related cell injury.
Clin Exp Hepatol. 2018; 4(4): 260-266.
Doi: 10.5114/ceh.2018.80128
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Ramirez, T; Strigun, A; Verlohner, A; Huener, HA; Peter, E; Herold, M; Bordag, N; Mellert, W; Walk, T; Spitzer, M; Jiang, X; Sperber, S; Hofmann, T; Hartung, T; Kamp, H; van Ravenzwaay, B
Prediction of liver toxicity and mode of action using metabolomics in vitro in HepG2 cells.
Arch Toxicol. 2018; 92(2): 893-906.
Doi: 10.1007/s00204-017-2079-6
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Robin, MJD; Appelman, MD; Vos, HR; van Es, RM; Paton, JC; Paton, AW; Burgering, B; Fickert, P; Heijmans, J; van de Graaf, SFJ
Calnexin Depletion by Endoplasmic Reticulum Stress During Cholestasis Inhibits the Na+-Taurocholate Cotransporting Polypeptide.
Hepatol Commun. 2018; 2(12):1550-1566
Doi: 10.1002/hep4.1262
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Speziali, G; Liesinger, L; Gindlhuber, J; Leopold, C; Pucher, B; Brandi, J; Castagna, A; Tomin, T; Krenn, P; Thallinger, GG; Olivieri, O; Martinelli, N; Kratky, D; Schittmayer, M; Birner-Gruenberger, R; Cecconi, D
Myristic acid induces proteomic and secretomic changes associated with steatosis, cytoskeleton remodeling, endoplasmic reticulum stress, protein turnover and exosome release in HepG2 cells.
J Proteomics. 2018; 181(7):118-130
Doi: 10.1016/j.jprot.2018.04.008
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Fuchs, CD; Claudel, T; Scharnagl, H; Stojakovic, T; Trauner, M
FXR controls CHOP expression in steatohepatitis.
FEBS Lett. 2017; 591(20):3360-3368
Doi: 10.1002/1873-3468.12845
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Görtz, M; Galli, U; Longerich, T; Zöller, M; Erb, U; Schemmer, P
De novo synthesis of C4.4A in hepatocellular carcinoma promotes migration and invasion of tumor cells.
Oncol Rep. 2017; 38(5):2697-2704
Doi: 10.3892/or.2017.5980
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Grumet, L; Eichmann, TO; Taschler, U; Zierler, KA; Leopold, C; Moustafa, T; Radovic, B; Romauch, M; Yan, C; Du, H; Haemmerle, G; Zechner, R; Fickert, P; Kratky, D; Zimmermann, R; Lass, A
Lysosomal Acid Lipase Hydrolyzes Retinyl Ester and Affects Retinoid Turnover.
J Biol Chem. 2016; 291(34):17977-87
Doi: 10.1074/jbc.M116.724054
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Bitter, A; Rümmele, P; Klein, K; Kandel, BA; Rieger, JK; Nüssler, AK; Zanger, UM; Trauner, M; Schwab, M; Burk, O
Pregnane X receptor activation and silencing promote steatosis of human hepatic cells by distinct lipogenic mechanisms.
Arch Toxicol. 2015; 89(11):2089-2103
Doi: 10.1007/s00204-014-1348-x
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Dražić, T; Sachdev, V; Leopold, C; Patankar, JV; Malnar, M; Hećimović, S; Levak-Frank, S; Habuš, I; Kratky, D
Synthesis and evaluation of novel amide amino-β-lactam derivatives as cholesterol absorption inhibitors.
Bioorg Med Chem. 2015; 23(10):2353-2359
Doi: 10.1016/j.bmc.2015.03.067
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Kessler, SM; Laggai, S; Barghash, A; Schultheiss, CS; Lederer, E; Artl, M; Helms, V; Haybaeck, J; Kiemer, AK
IMP2/p62 induces genomic instability and an aggressive hepatocellular carcinoma phenotype.
Cell Death Dis. 2015; 6(1):e1894-e1894
Doi: 10.1038/cddis.2015.241
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Bruns, H; Petrulionis, M; Schultze, D; Al Saeedi, M; Lin, S; Yamanaka, K; Ambrazevičius, M; Strupas, K; Schemmer, P
Glycine inhibits angiogenic signaling in human hepatocellular carcinoma cells.
Amino Acids. 2014; 46(4):969-976
Doi: 10.1007/s00726-013-1662-2
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Dražić, T; Molčanov, K; Sachdev, V; Malnar, M; Hećimović, S; Patankar, JV; Obrowsky, S; Levak-Frank, S; Habuš, I; Kratky, D
Novel amino-β-lactam derivatives as potent cholesterol absorption inhibitors.
Eur J Med Chem. 2014; 87(9):722-734
Doi: 10.1016/j.ejmech.2014.10.014
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Röhrl, C; Eigner, K; Winter, K; Korbelius, M; Obrowsky, S; Kratky, D; Kovacs, WJ; Stangl, H
Endoplasmic reticulum stress impairs cholesterol efflux and synthesis in hepatic cells.
J Lipid Res. 2014; 55(1):94-103
Doi: 10.1194/jlr.M043299
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Tao, D; King, JG; Tweedell, RE; Jost, PJ; Boddey, JA; Dinglasan, RR
The acute transcriptomic and proteomic response of HC-04 hepatoma cells to hepatocyte growth factor and its implications for Plasmodium falciparum sporozoite invasion.
Mol Cell Proteomics. 2014; 13(5):1153-1164
Doi: 10.1074/mcp.M113.035584
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Welte, S; Urbanik, T; Elßner, C; Kautz, N; Koehler, BC; Waldburger, N; Bermejo, JL; Pinna, F; Weiss, KH; Schemmer, P; Jaeger, D; Longerich, T; Breuhahn, K; Schulze-Bergkamen, H
Nuclear expression of the deubiquitinase CYLD is associated with improved survival in human hepatocellular carcinoma.
PLoS One. 2014; 9(10):e110591-e110591
Doi: 10.1371/journal.pone.0110591
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Fickert, P; Pollheimer, MJ; Silbert, D; Moustafa, T; Halilbasic, E; Krones, E; Durchschein, F; Thüringer, A; Zollner, G; Denk, H; Trauner, M
Differential effects of norUDCA and UDCA in obstructive cholestasis in mice.
J Hepatol. 2013; 58(6):1201-1208
Doi: 10.1016/j.jhep.2013.01.026
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Yu, A; Zheng, Y; Zhang, R; Huang, J; Zhu, Z; Zhou, R; Jin, D; Yang, Z
Resistin impairs SIRT1 function and induces senescence-associated phenotype in hepatocytes.
Mol Cell Endocrinol. 2013; 377(1-2):23-32
Doi: 10.1016/j.mce.2013.06.028
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Chennamsetty, I; Kostner, KM; Claudel, T; Vinod, M; Frank, S; Weiss, TS; Trauner, M; Kostner, GM
Nicotinic acid inhibits hepatic APOA gene expression: studies in humans and in transgenic mice.
J Lipid Res. 2012; 53(11):2405-2412
Doi: 10.1194/jlr.M029769
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Huppke, P; Brendel, C; Kalscheuer, V; Korenke, GC; Marquardt, I; Freisinger, P; Christodoulou, J; Hillebrand, M; Pitelet, G; Wilson, C; Gruber-Sedlmayr, U; Ullmann, R; Haas, S; Elpeleg, O; Nürnberg, G; Nürnberg, P; Dad, S; Mller, LB; Kaler, SG; Gärtner, J
Mutations in SLC33A1 cause a lethal autosomal-recessive disorder with congenital cataracts, hearing loss, and low serum copper and ceruloplasmin.
AM J HUM GENET. 2012; 90(1): 61-68.
Doi: 10.1016/j.ajhg.2011.11.030
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Leber, B; Mayrhauser, U; Leopold, B; Koestenbauer, S; Tscheliessnigg, K; Stadlbauer, V; Stiegler, P
Impact of temperature on cell death in a cell-culture model of hepatocellular carcinoma.
Anticancer Res. 2012; 32(3):915-921
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Rohrl, C; Meisslitzer-Ruppitsch, C; Bittman, R; Li, ZG; Pabst, G; Prassl, R; Strobl, W; Neumuller, J; Ellinger, A; Pavelka, M; Stangl, H
Combined Light and Electron Microscopy Using Diaminobenzidine Photooxidation to Monitor Trafficking of Lipids Derived from Lipoprotein Particles
CURR PHARM BIOTECHNO. 2012; 13(2): 331-340.
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Bast, A; Schmidt, IH; Brauner, P; Brix, B; Breitbach, K; Steinmetz, I
Defense Mechanisms of Hepatocytes Against Burkholderia pseudomallei.
Front Microbiol. 2011; 2(5):277-277
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Bhat, V; Girimaji, SC; Mohan, G; Arvinda, HR; Singhmar, P; Duvvari, MR; Kumar, A
Mutations in WDR62, encoding a centrosomal and nuclear protein, in Indian primary microcephaly families with cortical malformations.
Clin Genet. 2011; 80(6): 532-540.
Doi: 10.1111/j.1399-0004.2011.01686.x
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Hoffmann, K; Shibo, L; Xiao, Z; Longerich, T; Büchler, MW; Schemmer, P
Correlation of gene expression of ATP-binding cassette protein and tyrosine kinase signaling pathway in patients with hepatocellular carcinoma.
Anticancer Res. 2011; 31(11):3883-3890
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Mayrhauser, U; Stiegler, P; Stadlbauer, V; Koestenbauer, S; Leber, B; Konrad, K; Iberer, F; Portugaller, RH; Tscheliessnigg, K
Effect of hyperthermia on liver cell lines: important findings for thermal therapy in hepatocellular carcinoma.
Anticancer Res. 2011; 31(5):1583-1588
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Zhang, Y; Lei, T; Huang, JF; Wang, SB; Zhou, LL; Yang, ZQ; Chen, XD
The link between fibroblast growth factor 21 and sterol regulatory element binding protein 1c during lipogenesis in hepatocytes.
Mol Cell Endocrinol. 2011; 342(1-2): 41-47.
Doi: 10.1016/j.mce.2011.05.003
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Denk, GU; Maitz, S; Wimmer, R; Rust, C; Invernizzi, P; Ferdinandusse, S; Kulik, W; Fuchsbichler, A; Fickert, P; Trauner, M; Hofmann, AF; Beuers, U
Conjugation is essential for the anticholestatic effect of NorUrsodeoxycholic acid in taurolithocholic acid-induced cholestasis in rat liver.
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Upregulation of a basolateral FXR-dependent bile acid efflux transporter OSTalpha-OSTbeta in cholestasis in humans and rodents.
Am J Physiol Gastrointest Liver Physiol. 2006; 290(6):G1124-G1130
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Oberkofler, H; Schraml, E; Krempler, F; Patsch, W
Restoration of sterol-regulatory-element-binding protein-1c gene expression in HepG2 cells by peroxisome-proliferator-activated receptor-gamma co-activator-1alpha.
Biochem J. 2004; 381(Pt 2): 357-363.
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Schmidt, H; Aulchenko, YS; Schweighofer, N; Schmidt, R; Frank, S; Kostner, GM; Ott, E; van Duijn, C
Angiotensinogen promoter B-haplotype associated with cerebral small vessel disease enhances basal transcriptional activity.
STROKE. 2004; 35: 2592-2597.
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The farnesoid X receptor induces very low density lipoprotein receptor gene expression.
FEBS Lett. 2004; 566(1-3): 173-177.
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FXR induces the UGT2B4 enzyme in hepatocytes: a potential mechanism of negative feedback control of FXR activity.
Gastroenterology. 2003; 124(7): 1926-1940.
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Claudel, T; Inoue, Y; Barbier, O; Duran-Sandoval, D; Kosykh, V; Fruchart, J; Fruchart, JC; Gonzalez, FJ; Staels, B
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Manzoni, C; Duranti, M; Eberini, I; Scharnag, H; März, W; Castiglioni, S; Lovati, MR
Subcellular localization of soybean 7S globulin in HepG2 cells and LDL receptor up-regulation by its alpha' constituent subunit.
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Mol Endocrinol. 2003; 17(2):259-272
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Strauss, JG; Hayn, M; Zechner, R; Levak-Frank, S; Frank, S
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Claudel, T; Sturm, E; Duez, H; Torra, IP; Sirvent, A; Kosykh, V; Fruchart, JC; Dallongeville, J; Hum, DW; Kuipers, F; Staels, B
Bile acid-activated nuclear receptor FXR suppresses apolipoprotein A-I transcription via a negative FXR response element.
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