taurocholic acid has been researched along with ceruletide in 67 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 7 (10.45) | 18.7374 |
1990's | 21 (31.34) | 18.2507 |
2000's | 19 (28.36) | 29.6817 |
2010's | 18 (26.87) | 24.3611 |
2020's | 2 (2.99) | 2.80 |
Authors | Studies |
---|---|
Borchard, F; Ferrell, LD; Grendell, JH; Lüthen, R; Niederau, C; Niederau, M; Strohmeyer, G; Ude, K | 1 |
Gomez, G; Greeley, GH; Green, DW; Rajaraman, S; Soloway, RD; Thompson, JC; Townsend, CM; Uchida, T | 1 |
Boyle, B; Delaney, CP; Fitzpatrick, JM; Gorey, TF; Gough, DB; Joyce, WP; McGeeney, KF | 1 |
Baczako, K; Beger, HG; Büchler, M; Bültmann, B; Gasper, M; Kirchmayr, R; Schoenberg, MH; Younes, M | 1 |
Fujii, M; Itoh, H; Nakamura, T; Okabayashi, Y; Otsuki, M; Tani, S | 1 |
Ferrell, LD; Grendell, JH; Lüthen, R; Niederau, C; Niederau, M; Strohmeyer, G | 1 |
Keim, V; Rohr, G; Usadel, KH | 1 |
Hara, M; Sasaki, H; Sato, N; Takahashi, K; Yamatani, K | 1 |
Schmidt, H; Tsay, DG | 1 |
Bani, M; Cereda, R; Chisté, R; Makovec, F; Pacini, MA; Revel, L; Setnikar, I | 1 |
Konturek, SJ; Thor, P | 1 |
Björnsson, OG; Chadwick, VS; Fletcher, DR; Maton, PN | 1 |
Björnsson, OG; Bloom, SR; Chadwick, VS; Christofides, ND; Fletcher, DR | 1 |
Hayakawa, T; Hirao, S; Kitagawa, M; Nakae, Y; Naruse, S; Yamamoto, R | 1 |
Brinsa, R; Ferrell, LD; Lüthen, R; Niederau, C; Niederau, M; Strohmeyer, G | 1 |
Bulbena, O; Closa, D; Fernandez-Cruz, L; Gelpi, E; Hotter, G; Martrat, A; Rosello-Catafau, J | 1 |
Ho, SB; Lyftogt, CT; Niehans, GA; Shekels, LL | 1 |
Freund, U; Graff, E; Kaplan, O; Klausner, J; Paran, H; Siegal, A | 1 |
Iguchi, H; Imamura, M; Imamura, T; Ohshio, G; Okada, N; Tanaka, T; Wang, ZH | 1 |
Kimura, W; Mössner, J | 1 |
Aufenanger, J; Büchler, MW; Nevalainen, TJ; Schmitter, N; Schrag, HJ; Uhl, W; Wheatley, AM | 1 |
Czakó, L; Otsuki, M; Yamamoto, M | 1 |
Bloechle, C; Izbicki, JR; Knoefel, WT; Kuehn, RM; Kusterer, K; Schneider, C | 1 |
Abe, S; Kamei, C; Tagami, H; Tanaka, I; Yoshida, Y | 1 |
Aufenanger, J; Büchler, MW; Nevalainen, TJ; Schmitter, N; Schrag, HJ; Uhl, W | 1 |
Hayakawa, T; Ishiguro, H; Kitagawa, M; Nakae, Y; Naruse, S; Wang, Y; Yoshikawa, T | 1 |
Kimura, K; Koizumi, M; Masamune, A; Moriizumi, S; Satoh, A; Shimosegawa, T; Toyota, T | 1 |
Andrzejewska, A; Długosz, JW; Jurkowska, G | 1 |
Fujita, M; Ito, H; Kohno, Y; Masamune, A; Satoh, A; Satoh, K; Shimosegawa, T; Toyota, T | 1 |
Anderson, ME; Kruse, P; Loft, S | 1 |
Halangk, W; Lippert, H; Mantke, R; Pross, M; Röcken, C; Schubert, D; Schulz, HU; Sokolowski, A | 1 |
Bhagat, L; Saluja, AK; Singh, VP; Song, AM; Steer, ML; Van Acker, GJ | 1 |
Chen, XQ; Ernst, S; Hanash, S; Ji, B; Kuick, R; Logsdon, CD; Misek, DE; Najarian, R | 1 |
Abdo, EE; Coelho, AM; Cunha, JE; Machado, MC; Penteado, S; Salem, MZ; Sampietri, SN | 1 |
Batur, Y; Celik, HA; Nart, D; Oruc, N; Ozutemiz, AO; Yuce, G; Yukselen, V | 1 |
Ayuni, E; Büchler, MW; Ceyhan, GO; Friess, H; Kondo, Y; Martignoni, ME; Zimmermann, A | 1 |
Chen, YD; Gao, HK; Peng, XH; Wang, C; Wang, Z; Yan, WW; Zhao, GP; Zhou, ZG | 1 |
Adrian, TE; Duplantier, M; Erlanson-Albertsson, C; Herrington, MK; Isaksson, B; Permert, J; Rippe, C; Segersvärd, R | 1 |
Li, L; Wang, XP; Wu, K | 1 |
Adler, G; Beger, HG; Büchler, MW; Büchler, P; Ceyhan, GO; Friess, H; McNeil, PL; Müller, MW; Wolf-Hieber, E | 1 |
Escobar, J; Franco, L; López-Rodas, G; Pallardó, FV; Pereda, J; Rodríguez, JL; Sabater, L; Sandoval, J; Sastre, J; Torres, L; Viña, J | 1 |
Appelros, S; Belyaev, O; Borgstrom, A; Buchler, M; Muller, CA; Uhl, W | 1 |
Batra, SK; Boss, B; Chakraborty, S; Hopt, UT; Lauch, R; Wiech, T; Wittel, UA | 1 |
Almeida, JL; Jukemura, J; Machado, MC; Mendonça Coelho, AM; Monteiro da Cunha, JE; Sampietre, SN; Trindade Molan, NA | 1 |
Halangk, W; Lippert, H; Mantke, R; Paege, I; Peters, B; Röcken, C; Schubert, D; Schulz, HU | 1 |
Bloechle, C; Izbicki, JR; Kaifi, J; Kluth, D; Mann, O; Schneider, C; Strate, T; Tiefenbacher, WJ; Yekebas, E | 1 |
Celik, HA; Ilter, T; Nart, D; Oruc, N; Ozutemiz, O; Yuce, G | 1 |
Abramowitz, J; Birnbaumer, L; Hong, JH; Kim, MS; Li, Q; Muallem, S; Shin, DM | 1 |
Aghdassi, A; Dummer, A; Halangk, W; Kähne, T; Kruse, A; Lerch, MM; Lippert, H; Matthias, R; Mayerle, J; Peters, C; Reinheckel, T; Ruthenbürger, M; Sahin-Tóth, M; Schulz, HU; Sendler, M; Teller, S; Wartmann, T; Weiss, FU | 1 |
Choi, MJ; Hong, SS; Hong, SW; Jeon, MS; Jung, KH; Lee, DH; Lee, HS; Song, SU; Yi, T; Zheng, HM | 1 |
Abdulla, A; Awla, D; Jeppsson, B; Regnér, S; Thorlacius, H | 1 |
Aghdassi, AA; Bergmann, F; Büchler, MW; Ceyhan, GO; Demir, IE; Friess, H; Günther, A; Kern, M; Lerch, MM; Mayerle, J; Schemmer, P; Timm, AK | 1 |
Chai, CC; Cooper, GJ; Dare, A; Delahunt, B; Hickey, AJ; Loveday, BP; Mittal, A; Phillips, AR; Thompson, N; Windsor, JA | 1 |
Bramanti, P; Cappellani, A; Cuzzocrea, S; Esposito, E; Galuppo, M; Impellizzeri, D; Mazzon, E; Paterniti, I; Riccardi, L | 1 |
Hartman, H; Regnér, S; Thorlacius, H; Wetterholm, E | 1 |
Ceranowicz, P; Cieszkowski, J; Dembiński, A; Warzecha, Z | 1 |
Akçiçek, E; Aşıkoğlu, M; Ay Şenyiğit, Z; Barbet Yılmaz, F; Güneri, T; İlem Özdemir, D; Karasulu, HY; Oruç, N; Özkılıç, H; Özütemiz, Ö; Üstündağ-Okur, N | 1 |
Cheng, Z; Huang, W; Liu, T; Ou, X; Sutton, R; Szatmary, P; Tang, Z; Toh, CH; Wang, G; Zhang, N; Zheng, S | 1 |
Ai, J; Algül, H; Bassermann, F; Diakopoulos, KN; Esposito, I; Halangk, W; Lesina, M; Neuhöfer, P; Riemann, M; Rosendahl, J; Ruess, D; Schmid, RM; Song, L; Steiner, JM; Treiber, M; Witt, H; Wörmann, S | 1 |
An, TT; Cheng, ZX; Han, B; Hou, LM; Jia, G; Kong, R; Ma, Y; Pan, SH; Sun, B; Sun, XJ; Wang, SJ; Wang, YW; Zhou, HX; Zhou, YN | 1 |
Chen, L; Huang, S; Kayoumu, A; Li, W; Liu, G; Lu, G; Qi, R; Qiu, X; Wang, Y; Xu, P | 1 |
Chen, Q; Huang, J; Li, J; Sun, Y; Tang, X; Wu, J; Zhao, Q | 1 |
Finamor, I; García, R; Martí-Andrés, P; Monsalve, M; Pérez, S; Prieto, I; Rius-Pérez, S; Sastre, J | 1 |
Chen, W; Ding, Y; Gong, W; Hou, T; Lin, X; Liu, X; Lu, G; Wang, N; Xiao, W; Zhang, M; Zhu, Q | 1 |
Kalionis, B; Wang, J; Xia, S; Zhang, W; Zhao, Y | 1 |
Chen, G; Chen, S; Huang, C; Huang, J; Jin, Y; Li, D; Liu, S; Ma, F; Qin, Y; Sun, LQ; Yao, H; Zhang, Q; Zhang, T; Zhou, M; Zhu, J | 1 |
Chen, B; Chen, J; Duan, F; Wang, H; Wang, X; Wang, Y; Zhang, Y; Zhu, X | 1 |
1 review(s) available for taurocholic acid and ceruletide
Article | Year |
---|---|
[Experimental models of acute pancreatitis].
Topics: Animals; Ceruletide; Disease Models, Animal; Humans; Mice; Pancreatitis, Acute Necrotizing; Rats; Taurocholic Acid | 2015 |
66 other study(ies) available for taurocholic acid and ceruletide
Article | Year |
---|---|
Effects of antioxidants and free radical scavengers in three different models of acute pancreatitis.
Topics: Acute Disease; Administration, Oral; Allopurinol; Animals; Antioxidants; Catalase; Ceruletide; Choline Deficiency; Deferoxamine; Diet; Dimethyl Sulfoxide; Disease Models, Animal; Ethionine; Female; Free Radical Scavengers; Injections, Intraperitoneal; Injections, Intravenous; Injections, Subcutaneous; Male; Mice; Organ Size; Pancreas; Pancreatitis; Rats; Rats, Inbred Strains; Severity of Illness Index; Superoxide Dismutase; Taurocholic Acid | 1992 |
Protective action of luminal bile salts in necrotizing acute pancreatitis in mice.
Topics: Acute Disease; Amylases; Animals; Bile Acids and Salts; Ceruletide; Cholecystokinin; Cholestyramine Resin; Choline Deficiency; Feedback; Female; Mice; Pancreatitis; Taurocholic Acid | 1990 |
Free radical inhibition and serial chemiluminescence in evolving experimental pancreatitis.
Topics: Allopurinol; Amylases; Animals; Ceruletide; Free Radicals; Luminescent Measurements; Male; Oxygen; Pancreatitis; Rats; Rats, Inbred Strains; Superoxide Dismutase; Taurocholic Acid | 1990 |
The involvement of oxygen radicals in acute pancreatitis.
Topics: Acute Disease; Animals; Catalase; Ceruletide; Free Radicals; Lipid Peroxidation; Male; Oxygen; Pancreatitis; Rats; Rats, Inbred WKY; Superoxide Dismutase; Taurocholic Acid | 1991 |
Effect of a new cholecystokinin receptor antagonist loxiglumide on acute pancreatitis in two experimental animal models.
Topics: Acute Disease; Animals; Ceruletide; Cholecystokinin; Disease Models, Animal; Glutamine; Male; Pancreatitis; Proglumide; Rats; Rats, Inbred Strains; Receptors, Cholecystokinin; Taurocholic Acid | 1990 |
Pancreatic exocrine secretion in acute experimental pancreatitis.
Topics: Acute Disease; Animals; Ceruletide; Choline Deficiency; Diet; Female; Male; Mice; Pancreas; Pancreatic Juice; Pancreatitis; Rats; Rats, Inbred Strains; Sincalide; Taurocholic Acid | 1990 |
Prevention of experimental pancreatitis by somatostatins.
Topics: Amylases; Animals; Ceruletide; Female; Pancreatic Juice; Pancreatic Polypeptide; Pancreatitis; Rats; Somatostatin; Structure-Activity Relationship; Taurocholic Acid | 1986 |
Effect of gastrointestinal hormones on choleresis from the isolated perfused rat liver.
Topics: Animals; Bile; Ceruletide; Cyclic AMP; Gastrointestinal Hormones; Glucagon; In Vitro Techniques; Insulin; Liver; Male; Rats; Rats, Inbred Strains; Secretin; Somatostatin; Taurocholic Acid | 1985 |
Detailed graphic analyses and revelation of nuclear magnetic resonance (NMR) in induced pancreatitis.
Topics: Acute Disease; Animals; Ceruletide; Edema; Hemorrhage; Magnetic Resonance Spectroscopy; Pancreatitis; Rats; Rats, Inbred Strains; Taurocholic Acid | 1988 |
Loxiglumide protects against experimental pancreatitis.
Topics: Animals; Ceruletide; Diet; Female; Glutamine; Male; Mice; Pancreatitis; Proglumide; Rats; Rats, Inbred Strains; Taurocholic Acid | 1987 |
Effect of diversion and replacement of bile on pancreatic secretion.
Topics: Animals; Bicarbonates; Bile; Biliary Fistula; Ceruletide; Dogs; Dose-Response Relationship, Drug; Duodenum; Gastric Fistula; Hydrogen-Ion Concentration; Ileum; Jejunum; Liver; Meat; Pancreas; Pancreatic Fistula; Pancreatic Juice; Phenylalanine; Secretin; Secretory Rate; Taurocholic Acid; Tryptophan | 1973 |
Effects of duodenal perfusion with sodium taurocholate on biliary and pancreatic secretion in man.
Topics: Adult; Bicarbonates; Bile; Ceruletide; Cholecystectomy; Duodenum; Humans; Hydrogen-Ion Concentration; Indocyanine Green; Middle Aged; Pancreas; Perfusion; Secretin; Taurocholic Acid; Trypsin | 1982 |
Duodenal perfusion with sodium taurocholate inhibits biliary but not pancreatic secretion in man.
Topics: Adult; Amino Acids, Essential; Bilirubin; Ceruletide; Duodenum; Gastrointestinal Hormones; Humans; Pancreas; Perfusion; Secretin; Secretory Rate; Taurocholic Acid; Trypsin | 1982 |
Activation of trypsinogen in experimental models of acute pancreatitis in rats.
Topics: Acute Disease; alpha-Macroglobulins; Animals; Benzamidines; Ceruletide; Disease Models, Animal; Guanidines; Male; Oligopeptides; Pancreatitis; Proglumide; Protease Inhibitors; Rats; Rats, Wistar; Receptors, Cholecystokinin; Taurocholic Acid; Trypsin; Trypsinogen | 1995 |
Effects of C1-esterase inhibitor in three models of acute pancreatitis.
Topics: Acute Disease; Animals; Ceruletide; Complement C1 Inactivator Proteins; Diet; Disease Models, Animal; Female; Male; Mice; Pancreatitis; Rats; Rats, Wistar; Taurocholic Acid | 1995 |
Changes of systemic prostacyclin and thromboxane A2 in sodium taurocholate- and cerulein-induced acute pancreatitis in rats.
Topics: 6-Ketoprostaglandin F1 alpha; Acute Disease; Amylases; Animals; Ceruletide; Epoprostenol; Gabexate; Lipase; Male; Pancreatitis; Phospholipases A; Phospholipases A2; Rats; Rats, Sprague-Dawley; Taurocholic Acid; Thromboxane A2; Thromboxane B2 | 1993 |
Experimental model of upper intestinal adenocarcinoma induced by N-methyl-N'-nitro-N-nitrosoguanidine in C57BL/6 mice.
Topics: Adenocarcinoma; Administration, Oral; Animals; Ceruletide; Disease Models, Animal; Drug Synergism; Female; Gastrointestinal Neoplasms; Methylnitronitrosoguanidine; Mice; Mice, Inbred C57BL; Taurocholic Acid | 1995 |
Effect of the somatostatin analogue octreotide on experimental pancreatitis in rats.
Topics: Acute Disease; Amylases; Animals; Ceruletide; Hormones; Hydrogen-Ion Concentration; Male; Octreotide; Organ Size; Pancreatitis; Rats; Rats, Wistar; Taurocholic Acid | 1996 |
Increased pancreatic metallothionein and glutathione levels: protecting against cerulein- and taurocholate-induced acute pancreatitis in rats.
Topics: Acute Disease; Animals; Ceruletide; Free Radical Scavengers; Free Radicals; Glutathione; Immunohistochemistry; Male; Metallothionein; Pancreas; Pancreatitis; Rats; Rats, Wistar; Taurocholic Acid; Thiobarbituric Acid Reactive Substances; Zinc | 1996 |
Role of hypertriglyceridemia in the pathogenesis of experimental acute pancreatitis in rats.
Topics: Acute Disease; Amylases; Animals; Ceruletide; Gastrointestinal Agents; Hypertriglyceridemia; In Vitro Techniques; Lipase; Male; Pancreas; Pancreatitis; Pancreatitis, Acute Necrotizing; Rats; Rats, Sprague-Dawley; Taurocholic Acid; Triglycerides | 1996 |
Pathophysiological role of secretory type I and II phospholipase A2 in acute pancreatitis: an experimental study in rats.
Topics: Acute Disease; Animals; Catalysis; Ceruletide; Female; Pancreas; Pancreatitis; Phospholipases A; Phospholipases A2; Rats; Rats, Wistar; Taurocholic Acid | 1997 |
Exocrine pancreatic function in rats after acute pancreatitis.
Topics: Acute Disease; Amylases; Animals; Ceruletide; Cholagogues and Choleretics; Gastrointestinal Agents; Male; Organ Size; Pancreas; Pancreatitis; Rats; Rats, Wistar; Secretin; Taurocholic Acid | 1997 |
Inhibition of bradykinin B2 receptor preserves microcirculation in experimental pancreatitis in rats.
Topics: Acute Disease; Animals; Arterioles; Bradykinin; Bradykinin Receptor Antagonists; Capillaries; Cell Adhesion; Ceruletide; Edema; Female; Hemorrhage; Leukocytes; Microcirculation; Pancreas; Pancreatitis; Rats; Rats, Inbred Lew; Receptor, Bradykinin B2; Regional Blood Flow; Taurocholic Acid; Time Factors; Vasoconstriction; Venules | 1998 |
Effect of methylcarbonylmethyl 2(S)-[4-(4-guanidino-benzoyloxy)phenyl] propionate methanesulfonate (TT-S24) on experimental pancreatitis in rats.
Topics: Amylases; Animals; Ceruletide; Disease Models, Animal; Esters; Gabexate; Guanidines; Male; Pancreatitis; Propionates; Rats; Rats, Wistar; Taurocholic Acid; Trypsin; Trypsin Inhibitors | 1998 |
Experimental study of a novel phospholipase A2 inhibitor in acute pancreatitis.
Topics: Acute Disease; Animals; Ceruletide; Edema; Enzyme Inhibitors; Female; Necrosis; Pancreatitis; Phospholipases A; Phospholipases A2; Rats; Rats, Wistar; Taurocholic Acid | 1998 |
Effects of a new cholecystokinin antagonist, TS-941, on experimental acute pancreatitis in rats.
Topics: Acute Disease; Allylglycine; alpha-Macroglobulins; Amylases; Animals; Benzamidines; Benzodiazepines; Ceruletide; Drug Therapy, Combination; Lipase; Male; Oligopeptides; Organ Size; Pancreas; Pancreatitis; Rats; Rats, Wistar; Receptors, Cholecystokinin; Taurocholic Acid; Trypsin | 1998 |
Nitric oxide is overproduced by peritoneal macrophages in rat taurocholate pancreatitis: the mechanism of inducible nitric oxide synthase expression.
Topics: Acute Disease; Animals; Ascitic Fluid; Ceruletide; Enzyme Inhibitors; Gene Expression; Lipopolysaccharides; Macrophages, Peritoneal; Male; NF-kappa B; Nitrates; Nitric Oxide; Nitric Oxide Synthase; Nitric Oxide Synthase Type II; Nitrites; Pancreatitis; Rats; Rats, Wistar; RNA, Messenger; Taurocholic Acid | 1998 |
The liver ultrastructure in caerulein and taurocholate acute pancreatitis in the rats.
Topics: Acute Disease; Animals; Ceruletide; Culture Techniques; Disease Models, Animal; Gastrointestinal Agents; Liver; Male; Microscopy, Electron; Pancreatitis; Rats; Rats, Wistar; Reference Values; Taurocholic Acid | 1998 |
Activation of adenosine A1-receptor pathway induces edema formation in the pancreas of rats.
Topics: Acute Disease; Adenosine; Amylases; Animals; Ceruletide; Edema; Leukocytes; Male; Pancreas; Pancreatic Diseases; Pancreatitis; Phenethylamines; Purinergic P1 Receptor Agonists; Purinergic P1 Receptor Antagonists; Pyrazoles; Pyridines; Rats; Rats, Wistar; Receptor, Adenosine A3; Receptors, Purinergic P1; Taurocholic Acid | 2000 |
Minor role of oxidative stress during intermediate phase of acute pancreatitis in rats.
Topics: 8-Hydroxy-2'-Deoxyguanosine; Acute Disease; Aldehydes; Animals; Ascorbic Acid; Biomarkers; Ceruletide; Dehydroascorbic Acid; Deoxyguanosine; Glutathione; Glutathione Disulfide; Male; Malondialdehyde; Oxidation-Reduction; Oxidative Stress; Pancreatitis; Rats; Rats, Wistar; Reactive Oxygen Species; Taurocholic Acid | 2001 |
[Enzymatic and histological alterations in the isolated perfused rat pancreas in the taurocholate and cerulein model of acute pancreatitis].
Topics: Acute Disease; Amylases; Animals; Ceruletide; Cholagogues and Choleretics; Detergents; Disease Models, Animal; Gastrointestinal Agents; In Vitro Techniques; L-Lactate Dehydrogenase; Lipase; Male; Necrosis; Pancreas; Pancreatitis; Perfusion; Rats; Rats, Wistar; Taurocholic Acid; Time Factors | 2001 |
Cathepsin B inhibition prevents trypsinogen activation and reduces pancreatitis severity.
Topics: Animals; Cathepsin B; Ceruletide; Cysteine Proteinase Inhibitors; Dipeptides; Infusions, Parenteral; Male; Mice; Mice, Inbred Strains; Pancreatic Ducts; Pancreatitis; Rats; Rats, Wistar; Severity of Illness Index; Taurocholic Acid; Trypsinogen | 2002 |
Pancreatic gene expression during the initiation of acute pancreatitis: identification of EGR-1 as a key regulator.
Topics: Acute Disease; Animals; Cells, Cultured; Ceruletide; DNA-Binding Proteins; Early Growth Response Protein 1; Gene Expression Profiling; Gene Expression Regulation; Immediate-Early Proteins; Inflammation; Male; Pancreas; Pancreatitis; Rats; Rats, Wistar; Reverse Transcriptase Polymerase Chain Reaction; Taurocholic Acid; Transcription Factors | 2003 |
Effects of octreotide pretreatment in experimental acute pancreatitis.
Topics: Acute Disease; Amylases; Animals; Ascitic Fluid; Ceruletide; Disease Models, Animal; Drug Therapy, Combination; Gastrointestinal Agents; Injections, Intravenous; Male; Octreotide; Pancreas; Pancreatic Elastase; Pancreatitis; Pulmonary Edema; Rats; Rats, Wistar; Taurocholic Acid; Trypsin | 2003 |
Infliximab: a new therapeutic agent in acute pancreatitis?
Topics: Acute Disease; Amylases; Animals; Antibodies, Monoclonal; Ceruletide; Edema; Infliximab; Male; Necrosis; Pancreas; Pancreatitis; Pancreatitis, Acute Necrotizing; Peroxidase; Pulmonary Edema; Rats; Rats, Wistar; Severity of Illness Index; Taurocholic Acid; Treatment Outcome; Tumor Necrosis Factor-alpha | 2004 |
Endothelin receptor antagonists are not beneficial in the therapy of acute experimental pancreatitis.
Topics: Animals; Ceruletide; Dose-Response Relationship, Drug; Endothelin Receptor Antagonists; Male; Pancreatitis, Acute Necrotizing; Phenylpropionates; Pyridazines; Pyrimidines; Rats; Rats, Wistar; Taurocholic Acid; Treatment Failure | 2004 |
Pituitary adenylate cyclase activating-peptide and its receptor antagonists in development of acute pancreatitis in rats.
Topics: Acute Disease; Animals; Capillaries; Ceruletide; Cholagogues and Choleretics; Disease Models, Animal; Duodenum; Hormone Antagonists; Male; Nerve Growth Factors; Neuropeptides; Neurotransmitter Agents; Pancreas, Exocrine; Pancreatitis; Peptide Fragments; Pituitary Adenylate Cyclase-Activating Polypeptide; Rats; Rats, Wistar; Receptors, Cell Surface; Receptors, Pituitary Adenylate Cyclase-Activating Polypeptide; Taurocholic Acid; Vasoactive Intestinal Peptide | 2005 |
mRNA for pancreatic uncoupling protein 2 increases in two models of acute experimental pancreatitis in rats and mice.
Topics: Acute Disease; Animals; Ceruletide; Disease Models, Animal; Female; Gene Expression Regulation; Ion Channels; Male; Membrane Transport Proteins; Mice; Mice, Inbred C57BL; Mitochondrial Proteins; Necrosis; Pancreatitis; Rats; Rats, Zucker; Reverse Transcriptase Polymerase Chain Reaction; RNA, Messenger; Taurocholic Acid; Time Factors; Uncoupling Protein 2; Up-Regulation | 2005 |
The therapeutic effect of oxidized 1-palmitoyl-2-arachidonoyl-sn-glycero-3-phosphorylcholine in rodents with acute necrotizing pancreatitis and its mechanism.
Topics: Amylases; Animals; Ceruletide; Drug Evaluation, Preclinical; Endotoxemia; Gene Expression Regulation; Inflammation Mediators; Intracellular Signaling Peptides and Proteins; L-Lactate Dehydrogenase; Lipopolysaccharides; Male; Mice; Mice, Inbred C57BL; Pancreas; Pancreatitis, Acute Necrotizing; Peroxidase; Phosphatidylcholines; Random Allocation; Rats; Rats, Sprague-Dawley; RNA, Messenger; Taurocholic Acid; Transcription Factors | 2007 |
Acinar cell membrane disruption is an early event in experimental acute pancreatitis in rats.
Topics: Acute Disease; Animals; Capillary Permeability; Cell Membrane; Ceruletide; Cytoplasm; Disease Models, Animal; Edema; Immunoglobulin G; Male; Microscopy, Electron, Transmission; Microscopy, Immunoelectron; Pancreas, Exocrine; Pancreatitis; Rats; Rats, Sprague-Dawley; Serum Albumin; Taurocholic Acid; Time Factors; Vacuoles | 2007 |
Glutamate cysteine ligase up-regulation fails in necrotizing pancreatitis.
Topics: Animals; Ceruletide; Edema; Gene Expression Regulation, Enzymologic; Glutamate-Cysteine Ligase; Glutathione; Male; Pancreatitis; Pancreatitis, Acute Necrotizing; Rats; Rats, Wistar; Ribonucleases; RNA Polymerase II; RNA Stability; RNA, Messenger; Taurocholic Acid; Transcription Factors; Up-Regulation | 2008 |
Dexamethasone affects inflammation but not trypsinogen activation in experimental acute pancreatitis.
Topics: Animals; Anti-Inflammatory Agents; Ceruletide; Dexamethasone; Female; Oligopeptides; Pancreatitis; Rats; Rats, Wistar; Taurocholic Acid; Trypsinogen | 2008 |
Taurocholate-induced pancreatitis: a model of severe necrotizing pancreatitis in mice.
Topics: Albumins; Amylases; Animals; Bronchoalveolar Lavage Fluid; Ceruletide; Disease Models, Animal; Dose-Response Relationship, Drug; Feasibility Studies; Inflammation; Injections; Interleukin-6; Lipase; Lung Diseases; Male; Mice; Mice, Inbred BALB C; Pancreas; Pancreatitis, Acute Necrotizing; Reproducibility of Results; Severity of Illness Index; Taurocholic Acid; Time Factors | 2008 |
Statin pretreatment in experimental acute pancreatitis.
Topics: Acute Disease; Animals; Ceruletide; Disease Models, Animal; Hydroxymethylglutaryl-CoA Reductase Inhibitors; Interleukin-10; Interleukin-6; Lung; Male; Pancreatitis; Peroxidase; Rats; Simvastatin; Survival Rate; Taurocholic Acid; Tumor Necrosis Factor-alpha | 2008 |
Caerulein or taurocholate induced enzymatic and histologic alterations in the isolated perfused rat pancreas.
Topics: Amylases; Animals; Ceruletide; Cholagogues and Choleretics; Disease Models, Animal; Dose-Response Relationship, Drug; Gastrointestinal Agents; Humans; In Vitro Techniques; Lipase; Male; Pancreas; Pancreatitis, Acute Necrotizing; Perfusion; Rats; Rats, Wistar; Taurocholic Acid | 2009 |
Effect of platelet-activating factor antagonist WEB 2086 on microcirculatory disorders in acute experimental pancreatitis of graded severity.
Topics: Amylases; Animals; Azepines; Capillaries; Cell Adhesion; Ceruletide; Disease Models, Animal; Edema; Female; Glycodeoxycholic Acid; Leukocytes; Microcirculation; Oligopeptides; Pancreas; Pancreatitis; Pancreatitis, Acute Necrotizing; Platelet Activating Factor; Platelet Aggregation Inhibitors; Rats; Rats, Wistar; Regional Blood Flow; Severity of Illness Index; Taurocholic Acid; Time Factors; Triazoles | 2009 |
Inhibition of renin-angiotensin system in experimental acute pancreatitis in rats: a new therapeutic target?
Topics: Amylases; Angiotensin II Type 1 Receptor Blockers; Angiotensin-Converting Enzyme Inhibitors; Animals; Captopril; Ceruletide; Disease Models, Animal; Imidazoles; Injections, Intraperitoneal; Male; Neutrophil Infiltration; Pancreas; Pancreatitis, Acute Necrotizing; Peroxidase; Rats; Rats, Wistar; Renin-Angiotensin System; Taurocholic Acid; Tetrazoles; Treatment Outcome | 2010 |
Deletion of TRPC3 in mice reduces store-operated Ca2+ influx and the severity of acute pancreatitis.
Topics: Actins; Acute Disease; Animals; Calcium Signaling; Carbachol; Ceruletide; Cholinergic Agonists; Disease Models, Animal; Dose-Response Relationship, Drug; eIF-2 Kinase; Enzyme Activation; Enzyme Inhibitors; Exocytosis; Indoles; Membrane Potentials; Mice; Mice, Knockout; Pancreas; Pancreatitis; Phosphorylation; Sarcoplasmic Reticulum; Sarcoplasmic Reticulum Calcium-Transporting ATPases; Severity of Illness Index; Sincalide; Taurocholic Acid; TRPC Cation Channels; Trypsin | 2009 |
Cathepsin L inactivates human trypsinogen, whereas cathepsin L-deletion reduces the severity of pancreatitis in mice.
Topics: Amylases; Animals; Apoptosis; Cathepsin B; Cathepsin L; Ceruletide; Disease Models, Animal; Humans; Hydrogen-Ion Concentration; Lipase; Mice; Mice, Knockout; Pancreatitis; Severity of Illness Index; Taurocholic Acid; Trypsin; Trypsinogen | 2010 |
Human bone marrow-derived clonal mesenchymal stem cells inhibit inflammation and reduce acute pancreatitis in rats.
Topics: Acute Disease; Animals; Biomarkers; Bone Marrow Transplantation; CD3 Complex; Cell Differentiation; Cell Proliferation; Cells, Cultured; Ceruletide; Coculture Techniques; Cytokines; Disease Models, Animal; Forkhead Transcription Factors; Humans; In Situ Hybridization, Fluorescence; Inflammation Mediators; Mesenchymal Stem Cell Transplantation; Pancreas; Pancreatitis; Rats; Rats, Sprague-Dawley; Rats, Wistar; Regeneration; Severity of Illness Index; T-Lymphocytes; Taurocholic Acid; Time Factors | 2011 |
CD40L is not involved in acute experimental pancreatitis.
Topics: Acute Disease; Animals; CD40 Ligand; Ceruletide; Disease Models, Animal; Male; Mice; Mice, Inbred C57BL; Pancreatitis; Taurocholic Acid | 2011 |
Prophylactic glycine administration attenuates pancreatic damage and inflammation in experimental acute pancreatitis.
Topics: Animals; Ceruletide; Chemoprevention; Cytokines; Disease Models, Animal; Enzymes; Glycine; Glycine Agents; Injections, Intravenous; Male; Necrosis; Pain Measurement; Pancreas; Pancreatitis; Rats; Rats, Sprague-Dawley; Taurocholic Acid | 2011 |
Early organ-specific mitochondrial dysfunction of jejunum and lung found in rats with experimental acute pancreatitis.
Topics: Acute Disease; Animals; Biomarkers; Cell Respiration; Ceruletide; Disease Models, Animal; Energy Metabolism; Jejunum; Lung; Male; Mitochondria; Mitochondrial Diseases; Multiple Organ Failure; Pancreas; Pancreatitis; Rats; Rats, Wistar; Severity of Illness Index; Taurocholic Acid; Time Factors | 2011 |
Peroxisome proliferator-activated receptor β/δ agonist GW0742 ameliorates cerulein- and taurocholate-induced acute pancreatitis in mice.
Topics: Acute Disease; Amylases; Animals; Cell Adhesion Molecules; Cell Movement; Ceruletide; Disease Models, Animal; Dose-Response Relationship, Drug; Lipase; Male; Mice; Mice, Inbred Strains; Neutrophils; Pancreatitis; PPAR delta; PPAR-beta; Taurocholic Acid; Thiazoles; Time Factors | 2012 |
Histone deacetylase regulates trypsin activation, inflammation, and tissue damage in acute pancreatitis in mice.
Topics: Acute Disease; Amylases; Animals; Anti-Inflammatory Agents; Ceruletide; Chemokine CXCL2; Cytoprotection; Disease Models, Animal; Enzyme Activation; Histone Deacetylase Inhibitors; Histone Deacetylases; Hydroxamic Acids; Inflammation Mediators; Injections, Intraperitoneal; Interleukin-6; Lung; Male; Mice, Inbred C57BL; Pancreas; Pancreatitis; Peroxidase; Signal Transduction; Taurocholic Acid; Trypsin | 2015 |
Aprotinin revisited: formulation, characterization, biodistribution and therapeutic potential of new aprotinin microemulsion in acute pancreatitis.
Topics: Administration, Intravenous; Amylases; Animals; Aprotinin; Ceruletide; Emulsions; Male; Pancreatitis; Peroxidase; Radionuclide Imaging; Rats; Serine Proteinase Inhibitors; Taurocholic Acid; Tissue Distribution | 2015 |
Circulating Histone Levels Reflect Disease Severity in Animal Models of Acute Pancreatitis.
Topics: Acute Disease; Analysis of Variance; Animals; Biomarkers; Blotting, Western; Ceruletide; Disease Models, Animal; Histones; Humans; Male; Mice, Inbred C57BL; Pancreatitis; Pancreatitis, Acute Necrotizing; Severity of Illness Index; Taurocholic Acid | 2015 |
BCL3 Reduces the Sterile Inflammatory Response in Pancreatic and Biliary Tissues.
Topics: Acute Disease; Animals; ATP Binding Cassette Transporter, Subfamily B; ATP-Binding Cassette Sub-Family B Member 4; B-Cell Lymphoma 3 Protein; Bile Ducts; Bone Marrow Transplantation; Ceruletide; Cholangitis, Sclerosing; Humans; I-kappa B Proteins; Mice, Inbred C57BL; Mice, Knockout; NF-kappa B p50 Subunit; NF-KappaB Inhibitor alpha; Pancreas; Pancreatitis; Phosphorylation; Proteasome Endopeptidase Complex; Protein Multimerization; Proteolysis; Proto-Oncogene Proteins; Signal Transduction; Taurocholic Acid; Time Factors; Transcription Factor RelA; Transcription Factors; Ubiquitination | 2016 |
Protective Effects of Hydrogen Gas on Experimental Acute Pancreatitis.
Topics: Amylases; Animals; Cell Line; Cell Survival; Ceruletide; Cytokines; Disease Models, Animal; Gene Expression Regulation; Hydrogen; Lipase; Male; Mice; Oxidative Stress; Pancreatitis; Rats; Taurocholic Acid | 2016 |
Experimental Models in Syrian Golden Hamster Replicate Human Acute Pancreatitis.
Topics: Amylases; Animals; Arginine; Ceruletide; Disease Models, Animal; Ethanol; Fatty Acids; Humans; Injections; Mesocricetus; Pancreatitis; Peroxidase; Severity of Illness Index; Taurocholic Acid | 2016 |
Melatonin Attenuates Endoplasmic Reticulum Stress in Acute Pancreatitis.
Topics: Acute Disease; Animals; Antioxidants; Apoptosis; Cell Line; Ceruletide; Cytokines; Endoplasmic Reticulum Stress; Gene Expression; Lipopolysaccharides; Male; Melatonin; Pancreas; Pancreatitis; Rats, Sprague-Dawley; Signal Transduction; Taurocholic Acid | 2018 |
Obesity causes PGC-1α deficiency in the pancreas leading to marked IL-6 upregulation via NF-κB in acute pancreatitis.
Topics: Animals; Ceruletide; Disease Models, Animal; Interleukin-6; Male; Mice, Inbred C57BL; Mice, Knockout; NF-kappa B; Obesity; Pancreas; Pancreatitis; Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha; Phosphorylation; Rats, Zucker; Signal Transduction; Taurocholic Acid; Transcription Factor RelA; Up-Regulation | 2019 |
Dynamic changes of proteasome and protective effect of bortezomib, a proteasome inhibitor, in mice with acute pancreatitis.
Topics: Acinar Cells; Acute Disease; Animals; Bortezomib; Ceruletide; Disease Progression; Male; Mice, Inbred ICR; Necrosis; Pancreas; Pancreatitis; Proteasome Endopeptidase Complex; Proteasome Inhibitors; Protective Agents; Taurocholic Acid; Transcription Factor RelA | 2018 |
Genistein protects against acute pancreatitis via activation of an apoptotic pathway mediated through endoplasmic reticulum stress in rats.
Topics: Acinar Cells; Animals; Anti-Inflammatory Agents, Non-Steroidal; Antioxidants; Apoptosis; Caspase 12; Ceruletide; eIF-2 Kinase; Endoplasmic Reticulum Stress; Eukaryotic Initiation Factor-2; Gene Expression Regulation; Genistein; Heat-Shock Proteins; JNK Mitogen-Activated Protein Kinases; Male; Pancreas; Pancreatitis, Acute Necrotizing; Rats; Rats, Sprague-Dawley; Signal Transduction; Taurocholic Acid; Transcription Factor CHOP; Unfolded Protein Response | 2019 |
LincRNA-EPS alleviates severe acute pancreatitis by suppressing HMGB1-triggered inflammation in pancreatic macrophages.
Topics: Animals; Ceruletide; Disease Models, Animal; HEK293 Cells; HMGB1 Protein; Humans; Inflammation; Inflammation Mediators; Macrophages; Mice; Mice, Inbred C57BL; Mice, Knockout; Molecular Targeted Therapy; Necrosis; NF-kappa B; Pancreas; Pancreatitis; RNA, Long Noncoding; Severity of Illness Index; Taurocholic Acid | 2021 |
GDF11 ameliorates severe acute pancreatitis through modulating macrophage M1 and M2 polarization by targeting the TGFβR1/SMAD-2 pathway.
Topics: Acute Disease; Animals; Ceruletide; Growth Differentiation Factors; Humans; Inflammation; Macrophage Activation; Macrophages; Mice; Pancreatitis; Rats; RAW 264.7 Cells; Receptor, Transforming Growth Factor-beta Type I; Smad2 Protein; Taurocholic Acid; THP-1 Cells | 2022 |