Skip to main content
Top
Published in: Digestive Diseases and Sciences 3/2022

01-03-2022 | Acute Pancreatitis | Review

Hypertriglyceridemia Acute Pancreatitis: Animal Experiment Research

Authors: Lu Wang, Ting Xu, Ruifeng Wang, Xiaobing Wang, Dong Wu

Published in: Digestive Diseases and Sciences | Issue 3/2022

Login to get access

Abstract

In recent years, the number of acute pancreatitis cases caused by hypertriglyceridemia has increased gradually, which has caught the attention of the medical community. However, because the exact mechanism of hypertriglyceridemic acute pancreatitis (HTG-AP) is not clear, treatment and prevention in clinical practice face enormous challenges. Animal models are useful for elucidating the pathogenesis of diseases and developing and testing novel interventions. Therefore, animal experiments have become the key research means for us to understand and treat this disease. We searched almost all HTG-AP animal models by collecting many studies and finally collated common animals such as rats, mice and included some rare animals that are not commonly used, summarizing the methods to model spontaneous pancreatitis and induce pancreatitis. We sorted them on the basis of three aspects, including the selection of different animals, analyzed the characteristics of different animals, different approaches to establish hypertriglyceridemic pancreatitis and their relative advantages and disadvantages, and introduced the applications of these models in studies of pathogenesis and drug therapy. We hope this review can provide relevant comparisons and analyses for researchers who intend to carry out animal experiments and will help researchers to select and establish more suitable animal experimental models according to their own experimental design.
Literature
1.
go back to reference Peery AF, Crockett SD, Barritt AS et al. Burden of Gastrointestinal, Liver, and Pancreatic Diseases in the United States. Gastroenterology. 2015;149:1731-1741.e3PubMedCrossRef Peery AF, Crockett SD, Barritt AS et al. Burden of Gastrointestinal, Liver, and Pancreatic Diseases in the United States. Gastroenterology. 2015;149:1731-1741.e3PubMedCrossRef
2.
go back to reference Koutroumpakis E, Slivka A, Furlan A et al. Management and outcomes of acute pancreatitis patients over the last decade: A US tertiary-center experience. Pancreatology. 2017;17:32–40PubMedCrossRef Koutroumpakis E, Slivka A, Furlan A et al. Management and outcomes of acute pancreatitis patients over the last decade: A US tertiary-center experience. Pancreatology. 2017;17:32–40PubMedCrossRef
3.
4.
go back to reference Fortson MR, Freedman SN, Webster PD 3rd. Clinical assessment of hyperlipidemic pancreatitis. Am J Gastroenterol 1995;90:2134–2139PubMed Fortson MR, Freedman SN, Webster PD 3rd. Clinical assessment of hyperlipidemic pancreatitis. Am J Gastroenterol 1995;90:2134–2139PubMed
5.
go back to reference Adiamah A, Psaltis E, Crook M, Lobo DN. A systematic review of the epidemiology, pathophysiology and current management of hyperlipidaemic pancreatitis. Clin Nutr. 2018;37:1810–1822PubMedCrossRef Adiamah A, Psaltis E, Crook M, Lobo DN. A systematic review of the epidemiology, pathophysiology and current management of hyperlipidaemic pancreatitis. Clin Nutr. 2018;37:1810–1822PubMedCrossRef
6.
go back to reference Athyros VG, Giouleme OI, Nikolaidis NL et al. Long-term follow-up of patients with acute hypertriglyceridemia-induced pancreatitis. J Clin Gastroenterol 2002;34:472–475PubMedCrossRef Athyros VG, Giouleme OI, Nikolaidis NL et al. Long-term follow-up of patients with acute hypertriglyceridemia-induced pancreatitis. J Clin Gastroenterol 2002;34:472–475PubMedCrossRef
7.
go back to reference Carr RA, Rejowski BJ, Cote GA et al. Systematic review of hypertriglyceridemia-induced acute pancreatitis: a more virulent etiology. Pancreatology. 2016;16:469–476PubMedCrossRef Carr RA, Rejowski BJ, Cote GA et al. Systematic review of hypertriglyceridemia-induced acute pancreatitis: a more virulent etiology. Pancreatology. 2016;16:469–476PubMedCrossRef
8.
go back to reference Zhu Y, Pan X, Zeng H et al. A study on the etiology, severity, and mortality of 3260 patients with acute pancreatitis according to the revised Atlanta classification in Jiangxi, China over an 8-year period. Pancreas 2017;46:504–509PubMedCrossRef Zhu Y, Pan X, Zeng H et al. A study on the etiology, severity, and mortality of 3260 patients with acute pancreatitis according to the revised Atlanta classification in Jiangxi, China over an 8-year period. Pancreas 2017;46:504–509PubMedCrossRef
9.
go back to reference Zheng Y, Zhou Z, Li H et al. A multicenter study on etiology of acute pancreatitis in Beijing during 5 years. Pancreas. 2015;44:409–414PubMedCrossRef Zheng Y, Zhou Z, Li H et al. A multicenter study on etiology of acute pancreatitis in Beijing during 5 years. Pancreas. 2015;44:409–414PubMedCrossRef
10.
go back to reference Jin M, Bai X, Chen X et al. A 16-year trend of etiology in acute pancreatitis: the increasing proportion of hypertriglyceridemia-associated acute pancreatitis and its adverse effect on prognosis. J Clin Lipidol. 2019;13:947-953.e1PubMedCrossRef Jin M, Bai X, Chen X et al. A 16-year trend of etiology in acute pancreatitis: the increasing proportion of hypertriglyceridemia-associated acute pancreatitis and its adverse effect on prognosis. J Clin Lipidol. 2019;13:947-953.e1PubMedCrossRef
11.
go back to reference Fan J, Ding L, Lu Y, Zheng J, Zeng Y, Huang C. Epidemiology and Etiology of Acute Pancreatitis in Urban and Suburban Areas in Shanghai: A Retrospective Study. Gastroenterol Res Pract. 2018;2018:1420590PubMedPubMedCentralCrossRef Fan J, Ding L, Lu Y, Zheng J, Zeng Y, Huang C. Epidemiology and Etiology of Acute Pancreatitis in Urban and Suburban Areas in Shanghai: A Retrospective Study. Gastroenterol Res Pract. 2018;2018:1420590PubMedPubMedCentralCrossRef
12.
go back to reference Sezgin O, Özdoğan O, Yaraş S, Üçbilek E, Altıntaş E. Evaluation of hypertriglyceridemia-induced acute pancreatitis: a single tertiary care unit experience from Turkey. Turk J Gastroenterol. 2019;30:271–277PubMedCrossRef Sezgin O, Özdoğan O, Yaraş S, Üçbilek E, Altıntaş E. Evaluation of hypertriglyceridemia-induced acute pancreatitis: a single tertiary care unit experience from Turkey. Turk J Gastroenterol. 2019;30:271–277PubMedCrossRef
13.
go back to reference Valdivielso P, Ramírez-Bueno A, Ewald N. Current knowledge of hypertriglyceridemic pancreatitis. Eur J Intern Med 2014;25:689–694PubMedCrossRef Valdivielso P, Ramírez-Bueno A, Ewald N. Current knowledge of hypertriglyceridemic pancreatitis. Eur J Intern Med 2014;25:689–694PubMedCrossRef
14.
go back to reference Tai WP, Lin XC, Liu H et al. A Retrospective Research of the Characteristic of Hypertriglyceridemic Pancreatitis in Beijing, China. Gastroenterol Res Pract. 2016;2016:6263095PubMedPubMedCentralCrossRef Tai WP, Lin XC, Liu H et al. A Retrospective Research of the Characteristic of Hypertriglyceridemic Pancreatitis in Beijing, China. Gastroenterol Res Pract. 2016;2016:6263095PubMedPubMedCentralCrossRef
15.
go back to reference Pascual I, Sanahuja A, García N et al. Association of elevated serum triglyceride levels with a more severe course of acute pancreatitis: cohort analysis of 1457 patients. Pancreatology 2019;19:623–629PubMedCrossRef Pascual I, Sanahuja A, García N et al. Association of elevated serum triglyceride levels with a more severe course of acute pancreatitis: cohort analysis of 1457 patients. Pancreatology 2019;19:623–629PubMedCrossRef
16.
go back to reference Qiu L, Sun RQ, Jia RR et al. Comparison of existing clinical scoring systems in predicting severity and prognoses of hyperlipidemic acute pancreatitis in Chinese patients: a retrospective study. Medicine (Baltimore) 2015;94:e957CrossRef Qiu L, Sun RQ, Jia RR et al. Comparison of existing clinical scoring systems in predicting severity and prognoses of hyperlipidemic acute pancreatitis in Chinese patients: a retrospective study. Medicine (Baltimore) 2015;94:e957CrossRef
17.
go back to reference Huang YX, Jia L, Jiang SM et al. Incidence and clinical features of hyperlipidemic acute pancreatitis from Guangdong, China: a retrospective multicenter study. Pancreas 2014;43:548–552PubMedCrossRef Huang YX, Jia L, Jiang SM et al. Incidence and clinical features of hyperlipidemic acute pancreatitis from Guangdong, China: a retrospective multicenter study. Pancreas 2014;43:548–552PubMedCrossRef
18.
go back to reference Hamada S, Masamune A, Kikuta K et al. Clinical impact of elevated serum triglycerides in acute pancreatitis: validation from the nationwide epidemiological survey in Japan. Am J Gastroenterol. 2016;111:575–576PubMedCrossRef Hamada S, Masamune A, Kikuta K et al. Clinical impact of elevated serum triglycerides in acute pancreatitis: validation from the nationwide epidemiological survey in Japan. Am J Gastroenterol. 2016;111:575–576PubMedCrossRef
19.
go back to reference Wang Q, Wang G, Qiu Z et al. Elevated serum triglycerides in the prognostic assessment of acute pancreatitis: a systematic review and meta-analysis of observational studies. J Clin Gastroenterol. 2017;51:586–593PubMedCrossRef Wang Q, Wang G, Qiu Z et al. Elevated serum triglycerides in the prognostic assessment of acute pancreatitis: a systematic review and meta-analysis of observational studies. J Clin Gastroenterol. 2017;51:586–593PubMedCrossRef
20.
go back to reference Hofbauer B, Friess H, Weber A et al. Hyperlipaemia intensifies the course of acute oedematous and acute necrotising pancreatitis in the rat. Gut 1996;38:753–758PubMedPubMedCentralCrossRef Hofbauer B, Friess H, Weber A et al. Hyperlipaemia intensifies the course of acute oedematous and acute necrotising pancreatitis in the rat. Gut 1996;38:753–758PubMedPubMedCentralCrossRef
21.
go back to reference Czakó L, Szabolcs A, Vajda A et al. Hyperlipidemia induced by a cholesterol-rich diet aggravates necrotizing pancreatitis in rats. Eur J Pharmacol. 2007;572:74–81PubMedCrossRef Czakó L, Szabolcs A, Vajda A et al. Hyperlipidemia induced by a cholesterol-rich diet aggravates necrotizing pancreatitis in rats. Eur J Pharmacol. 2007;572:74–81PubMedCrossRef
22.
go back to reference Wang YJ, Sun JB, Li F, Zhang SW. Hyperlipidemia intensifies cerulein-induced acute pancreatitis associated with activation of protein kinase C in rats. World J Gastroenterol. 2006;12:2908–2913PubMedPubMedCentralCrossRef Wang YJ, Sun JB, Li F, Zhang SW. Hyperlipidemia intensifies cerulein-induced acute pancreatitis associated with activation of protein kinase C in rats. World J Gastroenterol. 2006;12:2908–2913PubMedPubMedCentralCrossRef
23.
go back to reference Baranyai T, Terzin V, Vajda A et al. Hypertriglyceridemia causes more severe course of acute pancreatitis. Clin Lipidol. 2012;7:731CrossRef Baranyai T, Terzin V, Vajda A et al. Hypertriglyceridemia causes more severe course of acute pancreatitis. Clin Lipidol. 2012;7:731CrossRef
24.
go back to reference Dellinger EP, Forsmark CE, Layer P et al. Determinant-based classification of acute pancreatitis severity: an international multidisciplinary consultation. Ann Surg. 2012;256:875–880PubMedCrossRef Dellinger EP, Forsmark CE, Layer P et al. Determinant-based classification of acute pancreatitis severity: an international multidisciplinary consultation. Ann Surg. 2012;256:875–880PubMedCrossRef
25.
go back to reference Banks PA, Bollen TL, Dervenis C et al. Classification of acute pancreatitis–2012: revision of the Atlanta classification and definitions by international consensus. Gut 2013;62:102–111PubMedCrossRef Banks PA, Bollen TL, Dervenis C et al. Classification of acute pancreatitis–2012: revision of the Atlanta classification and definitions by international consensus. Gut 2013;62:102–111PubMedCrossRef
26.
go back to reference van Geenen EJ, van der Peet DL, Bhagirath P et al. Etiology and diagnosis of acute biliary pancreatitis. Nat Rev Gastroenterol Hepatol. 2010;7:495–502PubMedCrossRef van Geenen EJ, van der Peet DL, Bhagirath P et al. Etiology and diagnosis of acute biliary pancreatitis. Nat Rev Gastroenterol Hepatol. 2010;7:495–502PubMedCrossRef
28.
go back to reference Berglund L, Brunzell JD, Goldberg AC et al. Evaluation and treatment of hypertriglyceridemia: an Endocrine Society clinical practice guideline. J Clin Endocrinol Metab. 2012;97:2969–2989PubMedPubMedCentralCrossRef Berglund L, Brunzell JD, Goldberg AC et al. Evaluation and treatment of hypertriglyceridemia: an Endocrine Society clinical practice guideline. J Clin Endocrinol Metab. 2012;97:2969–2989PubMedPubMedCentralCrossRef
29.
go back to reference Guo YY, Li HX, Zhang Y, He WH. Hypertriglyceridemia-induced acute pancreatitis: progress on disease mechanisms and treatment modalities. Discov Med. 2019;27:101–109PubMed Guo YY, Li HX, Zhang Y, He WH. Hypertriglyceridemia-induced acute pancreatitis: progress on disease mechanisms and treatment modalities. Discov Med. 2019;27:101–109PubMed
30.
go back to reference Havel RJ. Pathogenesis, differentiation and management of hypertriglyceridemia. Adv Intern Med. 1969;15:117–154PubMed Havel RJ. Pathogenesis, differentiation and management of hypertriglyceridemia. Adv Intern Med. 1969;15:117–154PubMed
31.
go back to reference Yan MX, Li YQ, Meng M et al. Long-term high-fat diet induces pancreatic injuries via pancreatic microcirculatory disturbances and oxidative stress in rats with hyperlipidemia. Biochem Biophys Res Commun. 2006;347:192–199PubMedCrossRef Yan MX, Li YQ, Meng M et al. Long-term high-fat diet induces pancreatic injuries via pancreatic microcirculatory disturbances and oxidative stress in rats with hyperlipidemia. Biochem Biophys Res Commun. 2006;347:192–199PubMedCrossRef
33.
go back to reference Yang F, Wang Y, Sternfeld L et al. The role of free fatty acids, pancreatic lipase and Ca+ signalling in injury of isolated acinar cells and pancreatitis model in lipoprotein lipase-deficient mice. Acta Physiol (Oxf). 2009;195:13–28PubMedCrossRef Yang F, Wang Y, Sternfeld L et al. The role of free fatty acids, pancreatic lipase and Ca+ signalling in injury of isolated acinar cells and pancreatitis model in lipoprotein lipase-deficient mice. Acta Physiol (Oxf). 2009;195:13–28PubMedCrossRef
34.
go back to reference Lun Y, Sun X, Wang P et al. Severe hypertriglyceridemia due to two novel loss-of-function lipoprotein lipase gene mutations (C310R/E396V) in a Chinese family associated with recurrent acute pancreatitis. Oncotarget 2017;8:47741–47754PubMedPubMedCentralCrossRef Lun Y, Sun X, Wang P et al. Severe hypertriglyceridemia due to two novel loss-of-function lipoprotein lipase gene mutations (C310R/E396V) in a Chinese family associated with recurrent acute pancreatitis. Oncotarget 2017;8:47741–47754PubMedPubMedCentralCrossRef
35.
go back to reference Saharia P, Margolis S, Zuidema GD, Cameron JL. Acute pancreatitis with hyperlipemia: studies with an isolated perfused canine pancreas. Surgery 1977;82:60–67PubMed Saharia P, Margolis S, Zuidema GD, Cameron JL. Acute pancreatitis with hyperlipemia: studies with an isolated perfused canine pancreas. Surgery 1977;82:60–67PubMed
36.
go back to reference Chan YC, Leung PS. Acute pancreatitis: animal models and recent advances in basic research. Pancreas. 2007;34:1–14PubMedCrossRef Chan YC, Leung PS. Acute pancreatitis: animal models and recent advances in basic research. Pancreas. 2007;34:1–14PubMedCrossRef
37.
go back to reference Petters RM, Sommer JR. Transgenic animals as models for human disease; discussion 3456. Transgenic Res. 2000;9:347–351PubMedCrossRef Petters RM, Sommer JR. Transgenic animals as models for human disease; discussion 3456. Transgenic Res. 2000;9:347–351PubMedCrossRef
38.
go back to reference Yang R, Guo P, Song X, Liu F, Gao N. Hyperlipidemic guinea pig model: mechanisms of triglyceride metabolism disorder and comparison to rat. Biol Pharm Bull. 2011;34:1046–1051PubMedCrossRef Yang R, Guo P, Song X, Liu F, Gao N. Hyperlipidemic guinea pig model: mechanisms of triglyceride metabolism disorder and comparison to rat. Biol Pharm Bull. 2011;34:1046–1051PubMedCrossRef
39.
go back to reference Niyaz B, Zhao KL, Liu LM et al. Rosiglitazone attenuates the severity of hyperlipidemic severe acute pancreatitis in rats. Exp Ther Med. 2013;6:989–994PubMedPubMedCentralCrossRef Niyaz B, Zhao KL, Liu LM et al. Rosiglitazone attenuates the severity of hyperlipidemic severe acute pancreatitis in rats. Exp Ther Med. 2013;6:989–994PubMedPubMedCentralCrossRef
40.
go back to reference Ponzo O, Schreier L, Resnik R et al. Endogenous hypertriglyceridemia intensifies the course of cerulein-induced pancreatitis in rat: relation with changes in the VLDL composition. Ann Nutr Metab. 2006;50:37–44PubMedCrossRef Ponzo O, Schreier L, Resnik R et al. Endogenous hypertriglyceridemia intensifies the course of cerulein-induced pancreatitis in rat: relation with changes in the VLDL composition. Ann Nutr Metab. 2006;50:37–44PubMedCrossRef
41.
go back to reference Yang X, Zhao K, Deng W et al. Apocynin Attenuates Acute Kidney Injury and Inflammation in Rats with Acute Hypertriglyceridemic Pancreatitis. Dig Dis Sci. 2020;65:1735–1747PubMedCrossRef Yang X, Zhao K, Deng W et al. Apocynin Attenuates Acute Kidney Injury and Inflammation in Rats with Acute Hypertriglyceridemic Pancreatitis. Dig Dis Sci. 2020;65:1735–1747PubMedCrossRef
42.
go back to reference Yan Z, Zang B, Gong X, Ren J, Wang R. MiR-214-3p exacerbates kidney damages and inflammation induced by hyperlipidemic pancreatitis complicated with acute renal injury. Life Sci. 2020;241:117118PubMedCrossRef Yan Z, Zang B, Gong X, Ren J, Wang R. MiR-214-3p exacerbates kidney damages and inflammation induced by hyperlipidemic pancreatitis complicated with acute renal injury. Life Sci. 2020;241:117118PubMedCrossRef
43.
go back to reference Huang C, Chen J, Wang J et al. Dysbiosis of intestinal microbiota and decreased antimicrobial peptide level in paneth cells during hypertriglyceridemia-related acute necrotizing pancreatitis in rats. Front Microbiol. 2017;8:776PubMedPubMedCentralCrossRef Huang C, Chen J, Wang J et al. Dysbiosis of intestinal microbiota and decreased antimicrobial peptide level in paneth cells during hypertriglyceridemia-related acute necrotizing pancreatitis in rats. Front Microbiol. 2017;8:776PubMedPubMedCentralCrossRef
44.
go back to reference Zeng Y, Wang X, Zhang W, Wu K, Ma J. Hypertriglyceridemia aggravates ER stress and pathogenesis of acute pancreatitis. Hepatogastroenterology. 2012;59:2318–2326PubMed Zeng Y, Wang X, Zhang W, Wu K, Ma J. Hypertriglyceridemia aggravates ER stress and pathogenesis of acute pancreatitis. Hepatogastroenterology. 2012;59:2318–2326PubMed
45.
go back to reference Paye F, Chariot J, Molas G, Benessiano J, Rozé C. Release of nonesterified fatty acids during cerulein-induced pancreatitis in rats. Dig Dis Sci. 1996;41:1959–1965PubMedCrossRef Paye F, Chariot J, Molas G, Benessiano J, Rozé C. Release of nonesterified fatty acids during cerulein-induced pancreatitis in rats. Dig Dis Sci. 1996;41:1959–1965PubMedCrossRef
46.
go back to reference Zheng J, Wu J, Chen J et al. Therapeutic effects of quercetin on early inflammation in hypertriglyceridemia-related acute pancreatitis and its mechanism. Pancreatology. 2016;16:200–210PubMedCrossRef Zheng J, Wu J, Chen J et al. Therapeutic effects of quercetin on early inflammation in hypertriglyceridemia-related acute pancreatitis and its mechanism. Pancreatology. 2016;16:200–210PubMedCrossRef
47.
go back to reference Wang R, Yan Z, Wu X, Ji K, Wang H, Zang B. Rosiglitazone attenuates renal injury caused by hyperlipidemic pancreatitis. Int J Clin Exp Pathol. 2015;8:4332–4343PubMedPubMedCentral Wang R, Yan Z, Wu X, Ji K, Wang H, Zang B. Rosiglitazone attenuates renal injury caused by hyperlipidemic pancreatitis. Int J Clin Exp Pathol. 2015;8:4332–4343PubMedPubMedCentral
48.
go back to reference Zhu F, Guan Y, Zhang R. Inhibition of JAK2 signaling alleviates hyperlipidemia-intensified caerulin-induced acute pancreatitis in vivo. Curr Mol Med. 2017;17:381–387PubMed Zhu F, Guan Y, Zhang R. Inhibition of JAK2 signaling alleviates hyperlipidemia-intensified caerulin-induced acute pancreatitis in vivo. Curr Mol Med. 2017;17:381–387PubMed
49.
go back to reference Gao Y, Li K, Tang S, Xiao Y. Study on animal models for hyperlipidemia. Wei Sheng Yan Jiu. 2002;31:97–99PubMed Gao Y, Li K, Tang S, Xiao Y. Study on animal models for hyperlipidemia. Wei Sheng Yan Jiu. 2002;31:97–99PubMed
50.
go back to reference Udomkasemsab A, Prangthip P. High fat diet for induced dyslipidemia and cardiac pathological alterations in Wistar rats compared to Sprague Dawley rats. Clin Investig Arterioscler. 2019;31:56–62PubMed Udomkasemsab A, Prangthip P. High fat diet for induced dyslipidemia and cardiac pathological alterations in Wistar rats compared to Sprague Dawley rats. Clin Investig Arterioscler. 2019;31:56–62PubMed
51.
go back to reference Marotti KR, Castle CK, Boyle TP, Lin AH, Murray RW, Melchior GW. Severe atherosclerosis in transgenic mice expressing simian cholesteryl ester transfer protein. Nature 1993;364:73–75PubMedCrossRef Marotti KR, Castle CK, Boyle TP, Lin AH, Murray RW, Melchior GW. Severe atherosclerosis in transgenic mice expressing simian cholesteryl ester transfer protein. Nature 1993;364:73–75PubMedCrossRef
53.
go back to reference Tang M, Zong P, Zhang T, Wang D, Wang Y, Zhao Y. Lipoprotein lipase gene-deficient mice with hypertriglyceridaemia associated with acute pancreatitis. Acta Cir Bras. 2016;31:655–660PubMedCrossRef Tang M, Zong P, Zhang T, Wang D, Wang Y, Zhao Y. Lipoprotein lipase gene-deficient mice with hypertriglyceridaemia associated with acute pancreatitis. Acta Cir Bras. 2016;31:655–660PubMedCrossRef
54.
go back to reference Wang Y, Sternfeld L, Yang F et al. Enhanced susceptibility to pancreatitis in severe hypertriglyceridaemic lipoprotein lipase-deficient mice and agonist-like function of pancreatic lipase in pancreatic cells. Gut. 2009;58:422–430PubMedCrossRef Wang Y, Sternfeld L, Yang F et al. Enhanced susceptibility to pancreatitis in severe hypertriglyceridaemic lipoprotein lipase-deficient mice and agonist-like function of pancreatic lipase in pancreatic cells. Gut. 2009;58:422–430PubMedCrossRef
55.
go back to reference Liu J, Xu P, Zhang L et al. FTY720 attenuates acute pancreatitis in hypertriglyceridemic apolipoprotein CIII transgenic mice. Shock 2015;44:280–286PubMedCrossRef Liu J, Xu P, Zhang L et al. FTY720 attenuates acute pancreatitis in hypertriglyceridemic apolipoprotein CIII transgenic mice. Shock 2015;44:280–286PubMedCrossRef
56.
go back to reference Wu C, Zou L, Shi S et al. The role of hypertriglyceridemia for acute kidney injury in the course of acute pancreatitis and an animal model. Pancreatology 2017;17:561–566PubMedCrossRef Wu C, Zou L, Shi S et al. The role of hypertriglyceridemia for acute kidney injury in the course of acute pancreatitis and an animal model. Pancreatology 2017;17:561–566PubMedCrossRef
57.
go back to reference Ehx G, Gérin S, Mathy G et al. Liver proteomic response to hypertriglyceridemia in human-apolipoprotein C-III transgenic mice at cellular and mitochondrial compartment levels. Lipids Health Dis 2014;13:116PubMedPubMedCentralCrossRef Ehx G, Gérin S, Mathy G et al. Liver proteomic response to hypertriglyceridemia in human-apolipoprotein C-III transgenic mice at cellular and mitochondrial compartment levels. Lipids Health Dis 2014;13:116PubMedPubMedCentralCrossRef
58.
go back to reference Goldberg IJ. Lipoprotein lipase and lipolysis: central roles in lipoprotein metabolism and atherogenesis. J Lipid Res. 1996;37:693–707PubMedCrossRef Goldberg IJ. Lipoprotein lipase and lipolysis: central roles in lipoprotein metabolism and atherogenesis. J Lipid Res. 1996;37:693–707PubMedCrossRef
59.
go back to reference Ross CJ, Liu G, Kuivenhoven JA et al. Complete rescue of lipoprotein lipase-deficient mice by somatic gene transfer of the naturally occurring LPLS447X beneficial mutation. Arterioscler Thromb Vasc Biol. 2005;25:2143–2150PubMedCrossRef Ross CJ, Liu G, Kuivenhoven JA et al. Complete rescue of lipoprotein lipase-deficient mice by somatic gene transfer of the naturally occurring LPLS447X beneficial mutation. Arterioscler Thromb Vasc Biol. 2005;25:2143–2150PubMedCrossRef
60.
go back to reference Ginsberg HN, Le NA, Goldberg IJ et al. Apolipoprotein B metabolism in subjects with deficiency of apolipoproteins CIII and AI. Evidence that apolipoprotein CIII inhibits catabolism of triglyceride-rich lipoproteins by lipoprotein lipase in vivo. J Clin Invest. 1986;78:1287–1295PubMedPubMedCentralCrossRef Ginsberg HN, Le NA, Goldberg IJ et al. Apolipoprotein B metabolism in subjects with deficiency of apolipoproteins CIII and AI. Evidence that apolipoprotein CIII inhibits catabolism of triglyceride-rich lipoproteins by lipoprotein lipase in vivo. J Clin Invest. 1986;78:1287–1295PubMedPubMedCentralCrossRef
61.
go back to reference Maeda N, Li H, Lee D, Oliver P, Quarfordt SH, Osada J. Targeted disruption of the apolipoprotein C-III gene in mice results in hypotriglyceridemia and protection from postprandial hypertriglyceridemia. J Biol Chem. 1994;269:23610–23616PubMedCrossRef Maeda N, Li H, Lee D, Oliver P, Quarfordt SH, Osada J. Targeted disruption of the apolipoprotein C-III gene in mice results in hypotriglyceridemia and protection from postprandial hypertriglyceridemia. J Biol Chem. 1994;269:23610–23616PubMedCrossRef
62.
go back to reference Yao Z, Wang Y. Apolipoprotein C-III and hepatic triglyceride-rich lipoprotein production. Curr Opin Lipidol. 2012;23:206–212PubMedCrossRef Yao Z, Wang Y. Apolipoprotein C-III and hepatic triglyceride-rich lipoprotein production. Curr Opin Lipidol. 2012;23:206–212PubMedCrossRef
63.
go back to reference Jong MC, Rensen PC, Dahlmans VE, van der Boom H, van Berkel TJ, Havekes LM. Apolipoprotein C-III deficiency accelerates triglyceride hydrolysis by lipoprotein lipase in wild-type and apoE knockout mice. J Lipid Res. 2001;42:1578–1585PubMedCrossRef Jong MC, Rensen PC, Dahlmans VE, van der Boom H, van Berkel TJ, Havekes LM. Apolipoprotein C-III deficiency accelerates triglyceride hydrolysis by lipoprotein lipase in wild-type and apoE knockout mice. J Lipid Res. 2001;42:1578–1585PubMedCrossRef
64.
go back to reference Mann CJ, Troussard AA, Yen FT et al. Inhibitory effects of specific apolipoprotein C-III isoforms on the binding of triglyceride-rich lipoproteins to the lipolysis-stimulated receptor. J Biol Chem. 1997;272:31348–31354PubMedCrossRef Mann CJ, Troussard AA, Yen FT et al. Inhibitory effects of specific apolipoprotein C-III isoforms on the binding of triglyceride-rich lipoproteins to the lipolysis-stimulated receptor. J Biol Chem. 1997;272:31348–31354PubMedCrossRef
65.
go back to reference Reaven GM, Mondon CE, Chen YD, Breslow JL. Hypertriglyceridemic mice transgenic for the human apolipoprotein C-III gene are neither insulin resistant nor hyperinsulinemic. J Lipid Res. 1994;35:820–824PubMedCrossRef Reaven GM, Mondon CE, Chen YD, Breslow JL. Hypertriglyceridemic mice transgenic for the human apolipoprotein C-III gene are neither insulin resistant nor hyperinsulinemic. J Lipid Res. 1994;35:820–824PubMedCrossRef
66.
go back to reference Amaral ME, Oliveira HC, Carneiro EM et al. Plasma glucose regulation and insulin secretion in hypertriglyceridemic mice. Horm Metab Res. 2002;34:21–26PubMedCrossRef Amaral ME, Oliveira HC, Carneiro EM et al. Plasma glucose regulation and insulin secretion in hypertriglyceridemic mice. Horm Metab Res. 2002;34:21–26PubMedCrossRef
67.
go back to reference Christophersen B, Nordstoga K, Shen Y, Olivecrona T, Olivecrona G. Lipoprotein lipase deficiency with pancreatitis in mink: biochemical characterization and pathology. J Lipid Res. 1997;38:837–846PubMedCrossRef Christophersen B, Nordstoga K, Shen Y, Olivecrona T, Olivecrona G. Lipoprotein lipase deficiency with pancreatitis in mink: biochemical characterization and pathology. J Lipid Res. 1997;38:837–846PubMedCrossRef
68.
go back to reference Lindberg A, Nordstoga K, Christophersen B, Savonen R, van Tol A, Olivecrona G. A mutation in the lipoprotein lipase gene associated with hyperlipoproteinemia type I in mink: studies on lipid and lipase levels in heterozygotes. Int J Mol Med. 1998;1:529–538PubMed Lindberg A, Nordstoga K, Christophersen B, Savonen R, van Tol A, Olivecrona G. A mutation in the lipoprotein lipase gene associated with hyperlipoproteinemia type I in mink: studies on lipid and lipase levels in heterozygotes. Int J Mol Med. 1998;1:529–538PubMed
69.
go back to reference Nordstoga K, Sørby R, Olivecrona G, Smith AJ, Christophersen B. Pancreatitis in hyperlipemic mink (Mustela vison). Vet Pathol. 2012;49:557–561PubMedCrossRef Nordstoga K, Sørby R, Olivecrona G, Smith AJ, Christophersen B. Pancreatitis in hyperlipemic mink (Mustela vison). Vet Pathol. 2012;49:557–561PubMedCrossRef
70.
go back to reference Nordstoga K, Christophersen B, Ytrehus B et al. Pancreatitis associated with hyperlipoproteinaemia type I in mink (Mustela vison): earliest detectable changes occur in mitochondria of exocrine cells. J Comp Pathol. 2006;134:320–328PubMedCrossRef Nordstoga K, Christophersen B, Ytrehus B et al. Pancreatitis associated with hyperlipoproteinaemia type I in mink (Mustela vison): earliest detectable changes occur in mitochondria of exocrine cells. J Comp Pathol. 2006;134:320–328PubMedCrossRef
71.
go back to reference Stein Y, Dabach Y, Hollander G, Stein O. Cholesteryl ester transfer activity in hamster plasma: increase by fat and cholesterol rich diets. Biochim Biophys Acta. 1990;1042:138–141PubMedCrossRef Stein Y, Dabach Y, Hollander G, Stein O. Cholesteryl ester transfer activity in hamster plasma: increase by fat and cholesterol rich diets. Biochim Biophys Acta. 1990;1042:138–141PubMedCrossRef
72.
go back to reference Dietschy JM, Turley SD, Spady DK. Role of liver in the maintenance of cholesterol and low density lipoprotein homeostasis in different animal species, including humans. J Lipid Res. 1993;34:1637–1659PubMedCrossRef Dietschy JM, Turley SD, Spady DK. Role of liver in the maintenance of cholesterol and low density lipoprotein homeostasis in different animal species, including humans. J Lipid Res. 1993;34:1637–1659PubMedCrossRef
74.
go back to reference Ali AE, Rutishauser SC, Case RM. Pancreatic and biliary secretion in the anesthetized Syrian golden hamster in response to secretin, cholecystokinin-octapeptide, bombesin, and carbachol. Pancreas 1990;5:314–322PubMedCrossRef Ali AE, Rutishauser SC, Case RM. Pancreatic and biliary secretion in the anesthetized Syrian golden hamster in response to secretin, cholecystokinin-octapeptide, bombesin, and carbachol. Pancreas 1990;5:314–322PubMedCrossRef
75.
go back to reference Christian JB, Bourgeois N, Snipes R, Lowe KA. Prevalence of severe (500 to 2,000 mg/dl) hypertriglyceridemia in United States adults. Am J Cardiol. 2011;107:891–897PubMedCrossRef Christian JB, Bourgeois N, Snipes R, Lowe KA. Prevalence of severe (500 to 2,000 mg/dl) hypertriglyceridemia in United States adults. Am J Cardiol. 2011;107:891–897PubMedCrossRef
76.
go back to reference Hu G, Zhao Y, Tang Y et al. Development of a novel model of hypertriglyceridemic acute pancreatitis in hamsters: protective effects of probucol. Pancreas. 2012;41:845–848PubMedCrossRef Hu G, Zhao Y, Tang Y et al. Development of a novel model of hypertriglyceridemic acute pancreatitis in hamsters: protective effects of probucol. Pancreas. 2012;41:845–848PubMedCrossRef
77.
go back to reference Sullivan MP, Cerda JJ, Robbins FL, Burgin CW, Beatty RJ. The gerbil, hamster, and guinea pig as rodent models for hyperlipidemia. Lab Anim Sci. 1993;43:575–578PubMed Sullivan MP, Cerda JJ, Robbins FL, Burgin CW, Beatty RJ. The gerbil, hamster, and guinea pig as rodent models for hyperlipidemia. Lab Anim Sci. 1993;43:575–578PubMed
78.
79.
go back to reference Rogers WA, Donovan EF, Kociba GJ. Idiopathic hyperlipoproteinemia in dogs. J Am Vet Med Assoc. 1975;166:1087–1091PubMed Rogers WA, Donovan EF, Kociba GJ. Idiopathic hyperlipoproteinemia in dogs. J Am Vet Med Assoc. 1975;166:1087–1091PubMed
80.
go back to reference Xenoulis PG, Suchodolski JS, Ruaux CG, Steiner JM. Association between serum triglyceride and canine pancreatic lipase immunoreactivity concentrations in miniature schnauzers. J Am Anim Hosp Assoc. 2010;46:229–234PubMedCrossRef Xenoulis PG, Suchodolski JS, Ruaux CG, Steiner JM. Association between serum triglyceride and canine pancreatic lipase immunoreactivity concentrations in miniature schnauzers. J Am Anim Hosp Assoc. 2010;46:229–234PubMedCrossRef
82.
go back to reference Xenoulis PG, Suchodolski JS, Levinski MD, Steiner JM. Investigation of hypertriglyceridemia in healthy Miniature Schnauzers. J Vet Intern Med. 2007;21:1224–1230PubMedCrossRef Xenoulis PG, Suchodolski JS, Levinski MD, Steiner JM. Investigation of hypertriglyceridemia in healthy Miniature Schnauzers. J Vet Intern Med. 2007;21:1224–1230PubMedCrossRef
83.
go back to reference Xenoulis PG, Levinski MD, Suchodolski JS, Steiner JM. Association of hypertriglyceridemia with insulin resistance in healthy Miniature Schnauzers. J Am Vet Med Assoc. 2011;238:1011–1016PubMedCrossRef Xenoulis PG, Levinski MD, Suchodolski JS, Steiner JM. Association of hypertriglyceridemia with insulin resistance in healthy Miniature Schnauzers. J Am Vet Med Assoc. 2011;238:1011–1016PubMedCrossRef
84.
go back to reference Kim H, Kang JH, Heo TY et al. Evaluation of hypertriglyceridemia as a mediator between endocrine diseases and pancreatitis in dogs. J Am Anim Hosp Assoc. 2019;55:92–100PubMedCrossRef Kim H, Kang JH, Heo TY et al. Evaluation of hypertriglyceridemia as a mediator between endocrine diseases and pancreatitis in dogs. J Am Anim Hosp Assoc. 2019;55:92–100PubMedCrossRef
85.
go back to reference Hess RS, Kass PH, Shofer FS, Van Winkle TJ, Washabau RJ. Evaluation of risk factors for fatal acute pancreatitis in dogs. J Am Vet Med Assoc. 1999;214:46–51PubMed Hess RS, Kass PH, Shofer FS, Van Winkle TJ, Washabau RJ. Evaluation of risk factors for fatal acute pancreatitis in dogs. J Am Vet Med Assoc. 1999;214:46–51PubMed
86.
go back to reference Rogers WA, Donovan EF, Kociba GJ. Lipids and lipoproteins in normal dogs and in dogs with secondary hyperlipoproteinemia. J Am Vet Med Assoc. 1975;166:1092–1100PubMed Rogers WA, Donovan EF, Kociba GJ. Lipids and lipoproteins in normal dogs and in dogs with secondary hyperlipoproteinemia. J Am Vet Med Assoc. 1975;166:1092–1100PubMed
87.
go back to reference Case RM. Is the rat pancreas an appropriate model of the human pancreas. Pancreatology 2006;6:180–190PubMedCrossRef Case RM. Is the rat pancreas an appropriate model of the human pancreas. Pancreatology 2006;6:180–190PubMedCrossRef
88.
go back to reference Ginzinger DG, Lewis ME, Ma Y, Jones BR, Liu G, Jones SD. A mutation in the lipoprotein lipase gene is the molecular basis of chylomicronemia in a colony of domestic cats. J Clin Invest. 1996;97:1257–1266PubMedPubMedCentralCrossRef Ginzinger DG, Lewis ME, Ma Y, Jones BR, Liu G, Jones SD. A mutation in the lipoprotein lipase gene is the molecular basis of chylomicronemia in a colony of domestic cats. J Clin Invest. 1996;97:1257–1266PubMedPubMedCentralCrossRef
89.
go back to reference Gunn-Moore DA, Watson TD, Dodkin SJ, Blaxter AC, Crispin SM, Gruffydd-Jones TJ. Transient hyperlipidaemia and anaemia in kittens. Vet Rec. 1997;140:355–359PubMedCrossRef Gunn-Moore DA, Watson TD, Dodkin SJ, Blaxter AC, Crispin SM, Gruffydd-Jones TJ. Transient hyperlipidaemia and anaemia in kittens. Vet Rec. 1997;140:355–359PubMedCrossRef
90.
go back to reference Ginzinger DG, Clee SM, Dallongeville J et al. Lipid and lipoprotein analysis of cats with lipoprotein lipase deficiency. Eur J Clin Invest. 1999;29:17–26PubMedCrossRef Ginzinger DG, Clee SM, Dallongeville J et al. Lipid and lipoprotein analysis of cats with lipoprotein lipase deficiency. Eur J Clin Invest. 1999;29:17–26PubMedCrossRef
91.
go back to reference Carlsson HE, Schapiro SJ, Farah I, Hau J. Use of primates in research: a global overview. Am J Primatol. 2004;63:225–237PubMedCrossRef Carlsson HE, Schapiro SJ, Farah I, Hau J. Use of primates in research: a global overview. Am J Primatol. 2004;63:225–237PubMedCrossRef
92.
go back to reference Wei J, Ouyang H, Wang Y et al. Characterization of a hypertriglyceridemic transgenic miniature pig model expressing human apolipoprotein CIII. FEBS J. 2012;279:91–99PubMedCrossRef Wei J, Ouyang H, Wang Y et al. Characterization of a hypertriglyceridemic transgenic miniature pig model expressing human apolipoprotein CIII. FEBS J. 2012;279:91–99PubMedCrossRef
93.
go back to reference Hostetler KY, Pappu AS, Witztum JL. Diethylaminoethoxyhexestrol causes hypertriglyceridemia in guinea pigs. Biochim Biophys Acta. 1985;833:165–169PubMedCrossRef Hostetler KY, Pappu AS, Witztum JL. Diethylaminoethoxyhexestrol causes hypertriglyceridemia in guinea pigs. Biochim Biophys Acta. 1985;833:165–169PubMedCrossRef
94.
go back to reference Dornas WC, Oliveira TT, Augusto LE, Nagem TJ. Experimental atherosclerosis in rabbits. Arq Bras Cardiol. 2010;95:272–278PubMedCrossRef Dornas WC, Oliveira TT, Augusto LE, Nagem TJ. Experimental atherosclerosis in rabbits. Arq Bras Cardiol. 2010;95:272–278PubMedCrossRef
95.
go back to reference Ding Y, Wang Y, Zhu H et al. Hypertriglyceridemia and delayed clearance of fat load in transgenic rabbits expressing human apolipoprotein CIII. Transgenic Res. 2011;20:867–875PubMedCrossRef Ding Y, Wang Y, Zhu H et al. Hypertriglyceridemia and delayed clearance of fat load in transgenic rabbits expressing human apolipoprotein CIII. Transgenic Res. 2011;20:867–875PubMedCrossRef
96.
go back to reference Klimes I, Vrána A, Kunes J et al. Hereditary hypertriglyceridemic rat: a new animal model of metabolic alterations in hypertension. Blood Press. 1995;4:137–142PubMedCrossRef Klimes I, Vrána A, Kunes J et al. Hereditary hypertriglyceridemic rat: a new animal model of metabolic alterations in hypertension. Blood Press. 1995;4:137–142PubMedCrossRef
97.
go back to reference Liu C, Gates KP, Fang L et al. Apoc2 loss-of-function zebrafish mutant as a genetic model of hyperlipidemia. Dis Model Mech. 2015;8:989–998PubMedPubMedCentral Liu C, Gates KP, Fang L et al. Apoc2 loss-of-function zebrafish mutant as a genetic model of hyperlipidemia. Dis Model Mech. 2015;8:989–998PubMedPubMedCentral
98.
go back to reference Xenoulis PG, Levinski MD, Suchodolski JS, Steiner JM. Serum triglyceride concentrations in Miniature Schnauzers with and without a history of probable pancreatitis. J Vet Intern Med. 2011;25:20–25PubMedCrossRef Xenoulis PG, Levinski MD, Suchodolski JS, Steiner JM. Serum triglyceride concentrations in Miniature Schnauzers with and without a history of probable pancreatitis. J Vet Intern Med. 2011;25:20–25PubMedCrossRef
99.
go back to reference Bao H, Chen L, Yang F et al. Hereditary extremely hypertriglyceridemic mice are more susceptible to acute pancreatitis. Chin J Pathophy Siol. 2006;2006:1277–1281 Bao H, Chen L, Yang F et al. Hereditary extremely hypertriglyceridemic mice are more susceptible to acute pancreatitis. Chin J Pathophy Siol. 2006;2006:1277–1281
100.
go back to reference Kaprinay B, Lipták B, Slovák L et al. Hypertriglyceridemic rats fed high fat diet as a model of metabolic syndrome. Physiol Res. 2016;65:S515–S518PubMedCrossRef Kaprinay B, Lipták B, Slovák L et al. Hypertriglyceridemic rats fed high fat diet as a model of metabolic syndrome. Physiol Res. 2016;65:S515–S518PubMedCrossRef
101.
go back to reference Marcus Y, Shefer G, Sasson K et al. Angiotensin 1–7 as means to prevent the metabolic syndrome: lessons from the fructose-fed rat model. Diabetes 2013;62:1121–1130PubMedPubMedCentralCrossRef Marcus Y, Shefer G, Sasson K et al. Angiotensin 1–7 as means to prevent the metabolic syndrome: lessons from the fructose-fed rat model. Diabetes 2013;62:1121–1130PubMedPubMedCentralCrossRef
102.
go back to reference Umar A, Iskandar G, Aikemu A et al. Effects of Cydonia oblonga Miller leaf and fruit flavonoids on blood lipids and anti-oxydant potential in hyperlipidemia rats. J Ethnopharmacol. 2015;169:239–243PubMedCrossRef Umar A, Iskandar G, Aikemu A et al. Effects of Cydonia oblonga Miller leaf and fruit flavonoids on blood lipids and anti-oxydant potential in hyperlipidemia rats. J Ethnopharmacol. 2015;169:239–243PubMedCrossRef
103.
go back to reference Lu J, Huang G, Hu S, Wang Z, Guan S. 1,3-Dichloro-2-propanol induced hyperlipidemia in C57BL/6J mice via AMPK signaling pathway. Food Chem Toxicol. 2014;64:403–409PubMedCrossRef Lu J, Huang G, Hu S, Wang Z, Guan S. 1,3-Dichloro-2-propanol induced hyperlipidemia in C57BL/6J mice via AMPK signaling pathway. Food Chem Toxicol. 2014;64:403–409PubMedCrossRef
104.
go back to reference Liu CM, Ma JQ, Sun YZ. Protective role of puerarin on lead-induced alterations of the hepatic glutathione antioxidant system and hyperlipidemia in rats. Food Chem Toxicol. 2011;49:3119–3127PubMedCrossRef Liu CM, Ma JQ, Sun YZ. Protective role of puerarin on lead-induced alterations of the hepatic glutathione antioxidant system and hyperlipidemia in rats. Food Chem Toxicol. 2011;49:3119–3127PubMedCrossRef
105.
go back to reference Kumar VR, Inamdar MN, Viswanatha GL. Protective effect of lemongrass oil against dexamethasone induced hyperlipidemia in rats: possible role of decreased lecithin cholesterol acetyl transferase activity. Asian Pac J Trop Med. 2011;4:658–660PubMedCrossRef Kumar VR, Inamdar MN, Viswanatha GL. Protective effect of lemongrass oil against dexamethasone induced hyperlipidemia in rats: possible role of decreased lecithin cholesterol acetyl transferase activity. Asian Pac J Trop Med. 2011;4:658–660PubMedCrossRef
106.
go back to reference Sharyo S, Kumagai K, Yokota-Ikeda N, Ito K, Ikeda M. Amelioration of renal ischemia-reperfusion injury by inhibition of IL-6 production in the poloxamer 407-induced mouse model of hyperlipidemia. J Pharmacol Sci. 2009;110:47–54PubMedCrossRef Sharyo S, Kumagai K, Yokota-Ikeda N, Ito K, Ikeda M. Amelioration of renal ischemia-reperfusion injury by inhibition of IL-6 production in the poloxamer 407-induced mouse model of hyperlipidemia. J Pharmacol Sci. 2009;110:47–54PubMedCrossRef
107.
go back to reference Takahashi Y, Inaba N, Kuwahara S, Kuki W. Effects of gamma-terpinene on lipid concentrations in serum using Triton WR1339-treated rats. Biosci Biotechnol Biochem. 2003;67:2448–2450PubMedCrossRef Takahashi Y, Inaba N, Kuwahara S, Kuki W. Effects of gamma-terpinene on lipid concentrations in serum using Triton WR1339-treated rats. Biosci Biotechnol Biochem. 2003;67:2448–2450PubMedCrossRef
108.
go back to reference Acker CI, Nogueira CW. Chlorpyrifos acute exposure induces hyperglycemia and hyperlipidemia in rats. Chemosphere. 2012;89:602–608PubMedCrossRef Acker CI, Nogueira CW. Chlorpyrifos acute exposure induces hyperglycemia and hyperlipidemia in rats. Chemosphere. 2012;89:602–608PubMedCrossRef
109.
go back to reference Makni M, Fetoui H, Gargouri NK, el Garoui M, Zeghal N. Antidiabetic effect of flax and pumpkin seed mixture powder: effect on hyperlipidemia and antioxidant status in alloxan diabetic rats. J Diabetes Complications. 2011;25:339–345PubMedCrossRef Makni M, Fetoui H, Gargouri NK, el Garoui M, Zeghal N. Antidiabetic effect of flax and pumpkin seed mixture powder: effect on hyperlipidemia and antioxidant status in alloxan diabetic rats. J Diabetes Complications. 2011;25:339–345PubMedCrossRef
110.
go back to reference Kelley GL, Allan G, Azhar S. High dietary fructose induces a hepatic stress response resulting in cholesterol and lipid dysregulation. Endocrinology. 2004;145:548–555PubMedCrossRef Kelley GL, Allan G, Azhar S. High dietary fructose induces a hepatic stress response resulting in cholesterol and lipid dysregulation. Endocrinology. 2004;145:548–555PubMedCrossRef
111.
go back to reference Hu HM, Zhu YC, Zhu QQ et al. Analysis on animal models of experimental hyperlipidemia. Zhongguo Zhong Yao Za Zhi. 2016;41:3709–3714PubMed Hu HM, Zhu YC, Zhu QQ et al. Analysis on animal models of experimental hyperlipidemia. Zhongguo Zhong Yao Za Zhi. 2016;41:3709–3714PubMed
112.
go back to reference Jürgens H, Haass W, Castañeda TR et al. Consuming fructose-sweetened beverages increases body adiposity in mice. Obes Res. 2005;13:1146–1156PubMedCrossRef Jürgens H, Haass W, Castañeda TR et al. Consuming fructose-sweetened beverages increases body adiposity in mice. Obes Res. 2005;13:1146–1156PubMedCrossRef
113.
go back to reference Novelli EL, Diniz YS, Galhardi CM et al. Anthropometrical parameters and markers of obesity in rats. Lab Anim. 2007;41:111–119PubMedCrossRef Novelli EL, Diniz YS, Galhardi CM et al. Anthropometrical parameters and markers of obesity in rats. Lab Anim. 2007;41:111–119PubMedCrossRef
114.
go back to reference Koroleva VI, Gorelova NA, Vinogradova LV. The electrophysiological characteristics and behavioral manifestations of hippocampal and thalamic spreading depression. Zh Vyssh Nerv Deiat Im I P Pavlova 1991;41:1019–1032PubMed Koroleva VI, Gorelova NA, Vinogradova LV. The electrophysiological characteristics and behavioral manifestations of hippocampal and thalamic spreading depression. Zh Vyssh Nerv Deiat Im I P Pavlova 1991;41:1019–1032PubMed
115.
go back to reference Qi Z, Xue J, Zhang Y et al. Osthole ameliorates insulin resistance by increment of adiponectin release in high-fat and high-sucrose-induced fatty liver rats. Planta Med. 2011;77:231–235PubMedCrossRef Qi Z, Xue J, Zhang Y et al. Osthole ameliorates insulin resistance by increment of adiponectin release in high-fat and high-sucrose-induced fatty liver rats. Planta Med. 2011;77:231–235PubMedCrossRef
116.
go back to reference Johnston TP. The P-407-induced murine model of dose-controlled hyperlipidemia and atherosclerosis: a review of findings to date. J Cardiovasc Pharmacol. 2004;43:595–606PubMedCrossRef Johnston TP. The P-407-induced murine model of dose-controlled hyperlipidemia and atherosclerosis: a review of findings to date. J Cardiovasc Pharmacol. 2004;43:595–606PubMedCrossRef
117.
go back to reference Johnston TP, Palmer WK. Mechanism of poloxamer 407-induced hypertriglyceridemia in the rat. Biochem Pharmacol. 1993;46:1037–1042PubMedCrossRef Johnston TP, Palmer WK. Mechanism of poloxamer 407-induced hypertriglyceridemia in the rat. Biochem Pharmacol. 1993;46:1037–1042PubMedCrossRef
118.
go back to reference Borensztajn J, Rone MS, Kotlar TJ. The inhibition in vivo of lipoprotein lipase (clearing-factor lipase) activity by triton WR-1339. Biochem J 1976;156:539–543PubMedPubMedCentralCrossRef Borensztajn J, Rone MS, Kotlar TJ. The inhibition in vivo of lipoprotein lipase (clearing-factor lipase) activity by triton WR-1339. Biochem J 1976;156:539–543PubMedPubMedCentralCrossRef
119.
go back to reference Harnafi H, Bouanani Nel H, Aziz M, Serghini Caid H, Ghalim N, Amrani S. The hypolipidaemic activity of aqueous Erica multiflora flowers extract in Triton WR-1339 induced hyperlipidaemic rats: a comparison with fenofibrate. J Ethnopharmacol. 2007;109:156–160PubMedCrossRef Harnafi H, Bouanani Nel H, Aziz M, Serghini Caid H, Ghalim N, Amrani S. The hypolipidaemic activity of aqueous Erica multiflora flowers extract in Triton WR-1339 induced hyperlipidaemic rats: a comparison with fenofibrate. J Ethnopharmacol. 2007;109:156–160PubMedCrossRef
120.
go back to reference Loginova VM, Tuzikov FV, Tuzikova NA et al. Comparative characteristics of lipemia models induced by injections of Triton WR-1339 and poloxamer 407 in mice. Bull Exp Biol Med. 2013;155:284–287PubMedCrossRef Loginova VM, Tuzikov FV, Tuzikova NA et al. Comparative characteristics of lipemia models induced by injections of Triton WR-1339 and poloxamer 407 in mice. Bull Exp Biol Med. 2013;155:284–287PubMedCrossRef
121.
go back to reference Anastasi A, Erspamer V, Endean R. Isolation and structure of caerulein, an active decapeptide from the skin of Hyla caerulea. Experientia. 1967;23:699–700PubMedCrossRef Anastasi A, Erspamer V, Endean R. Isolation and structure of caerulein, an active decapeptide from the skin of Hyla caerulea. Experientia. 1967;23:699–700PubMedCrossRef
122.
go back to reference Lampel M, Kern HF. Acute interstitial pancreatitis in the rat induced by excessive doses of a pancreatic secretagogue. Virchows Arch A Pathol Anat Histol. 1977;373:97–117PubMedCrossRef Lampel M, Kern HF. Acute interstitial pancreatitis in the rat induced by excessive doses of a pancreatic secretagogue. Virchows Arch A Pathol Anat Histol. 1977;373:97–117PubMedCrossRef
123.
go back to reference Niederau C, Ferrell LD, Grendell JH. Caerulein-induced acute necrotizing pancreatitis in mice: protective effects of proglumide, benzotript, and secretin. Gastroenterology 1985;88:1192–1204PubMedCrossRef Niederau C, Ferrell LD, Grendell JH. Caerulein-induced acute necrotizing pancreatitis in mice: protective effects of proglumide, benzotript, and secretin. Gastroenterology 1985;88:1192–1204PubMedCrossRef
124.
go back to reference Steer ML, Meldolesi J. The cell biology of experimental pancreatitis. N Engl J Med. 1987;316:144–150PubMedCrossRef Steer ML, Meldolesi J. The cell biology of experimental pancreatitis. N Engl J Med. 1987;316:144–150PubMedCrossRef
125.
go back to reference Konturek SJ, Dembinski A, Konturek PJ et al. Role of platelet activating factor in pathogenesis of acute pancreatitis in rats. Gut. 1992;33:1268–1274PubMedPubMedCentralCrossRef Konturek SJ, Dembinski A, Konturek PJ et al. Role of platelet activating factor in pathogenesis of acute pancreatitis in rats. Gut. 1992;33:1268–1274PubMedPubMedCentralCrossRef
126.
go back to reference Mareninova OA, Hermann K, French SW et al. Impaired autophagic flux mediates acinar cell vacuole formation and trypsinogen activation in rodent models of acute pancreatitis. J Clin Invest. 2009;119:3340–3355PubMedPubMedCentral Mareninova OA, Hermann K, French SW et al. Impaired autophagic flux mediates acinar cell vacuole formation and trypsinogen activation in rodent models of acute pancreatitis. J Clin Invest. 2009;119:3340–3355PubMedPubMedCentral
127.
go back to reference Zhan X, Wang F, Bi Y, Ji B. Animal models of gastrointestinal and liver diseases. Animal models of acute and chronic pancreatitis. Am J Physiol Gastrointest Liver Physiol. 2016;311:G343–G355PubMedPubMedCentralCrossRef Zhan X, Wang F, Bi Y, Ji B. Animal models of gastrointestinal and liver diseases. Animal models of acute and chronic pancreatitis. Am J Physiol Gastrointest Liver Physiol. 2016;311:G343–G355PubMedPubMedCentralCrossRef
128.
go back to reference Owyang C, Logsdon CD. New insights into neurohormonal regulation of pancreatic secretion. Gastroenterology. 2004;127:957–969PubMedCrossRef Owyang C, Logsdon CD. New insights into neurohormonal regulation of pancreatic secretion. Gastroenterology. 2004;127:957–969PubMedCrossRef
129.
go back to reference Bernard C. Memoir on the pancreas and on the role of pancreatic juice in digestive processes, particularly in the digestion of neutral fat. By Claude Bernard 1856. Translated by John Henderson. Monogr Physiol Soc. 1985;42:1–131 Bernard C. Memoir on the pancreas and on the role of pancreatic juice in digestive processes, particularly in the digestion of neutral fat. By Claude Bernard 1856. Translated by John Henderson. Monogr Physiol Soc. 1985;42:1–131
130.
go back to reference Aho HJ, Koskensalo SM, Nevalainen TJ. Experimental pancreatitis in the rat. Sodium taurocholate-induced acute haemorrhagic pancreatitis. Scand J Gastroenterol. 1980;15:411–416PubMedCrossRef Aho HJ, Koskensalo SM, Nevalainen TJ. Experimental pancreatitis in the rat. Sodium taurocholate-induced acute haemorrhagic pancreatitis. Scand J Gastroenterol. 1980;15:411–416PubMedCrossRef
131.
go back to reference Perides G, van Acker GJ, Laukkarinen JM, Steer ML. Experimental acute biliary pancreatitis induced by retrograde infusion of bile acids into the mouse pancreatic duct. Nat Protoc. 2010;5:335–341PubMedCrossRef Perides G, van Acker GJ, Laukkarinen JM, Steer ML. Experimental acute biliary pancreatitis induced by retrograde infusion of bile acids into the mouse pancreatic duct. Nat Protoc. 2010;5:335–341PubMedCrossRef
132.
go back to reference Takács T, Czakó L, Morschl E et al. The role of nitric oxide in edema formation in L-arginine-induced acute pancreatitis. Pancreas. 2002;25:277–282PubMedCrossRef Takács T, Czakó L, Morschl E et al. The role of nitric oxide in edema formation in L-arginine-induced acute pancreatitis. Pancreas. 2002;25:277–282PubMedCrossRef
133.
go back to reference Czakó L, Takács T, Varga IS et al. Involvement of oxygen-derived free radicals in L-arginine-induced acute pancreatitis. Dig Dis Sci. 1998;43:1770–1777PubMedCrossRef Czakó L, Takács T, Varga IS et al. Involvement of oxygen-derived free radicals in L-arginine-induced acute pancreatitis. Dig Dis Sci. 1998;43:1770–1777PubMedCrossRef
134.
go back to reference Mizunuma T, Kawamura S, Kishino Y. Effects of injecting excess arginine on rat pancreas. J Nutr. 1984;114:467–471PubMedCrossRef Mizunuma T, Kawamura S, Kishino Y. Effects of injecting excess arginine on rat pancreas. J Nutr. 1984;114:467–471PubMedCrossRef
135.
go back to reference Dawra R, Sharif R, Phillips P, Dudeja V, Dhaulakhandi D, Saluja AK. Development of a new mouse model of acute pancreatitis induced by administration of L-arginine. Am J Physiol Gastrointest Liver Physiol. 2007;292:G1009–G1018PubMedCrossRef Dawra R, Sharif R, Phillips P, Dudeja V, Dhaulakhandi D, Saluja AK. Development of a new mouse model of acute pancreatitis induced by administration of L-arginine. Am J Physiol Gastrointest Liver Physiol. 2007;292:G1009–G1018PubMedCrossRef
137.
go back to reference Weaver C, Bishop AE, Polak JM. Pancreatic changes elicited by chronic administration of excess L-arginine. Exp Mol Pathol. 1994;60:71–87PubMedCrossRef Weaver C, Bishop AE, Polak JM. Pancreatic changes elicited by chronic administration of excess L-arginine. Exp Mol Pathol. 1994;60:71–87PubMedCrossRef
139.
go back to reference Foster JR. A review of animal models of nonneoplastic pancreatic diseases. Toxicol Pathol. 2014;42:243–259PubMedCrossRef Foster JR. A review of animal models of nonneoplastic pancreatic diseases. Toxicol Pathol. 2014;42:243–259PubMedCrossRef
140.
go back to reference Lerch MM, Gorelick FS. Models of acute and chronic pancreatitis. Gastroenterology. 2013;144:1180–1193PubMedCrossRef Lerch MM, Gorelick FS. Models of acute and chronic pancreatitis. Gastroenterology. 2013;144:1180–1193PubMedCrossRef
141.
go back to reference Niederau C, Lüthen R, Niederau MC, Grendell JH, Ferrell LD. Acute experimental hemorrhagic-necrotizing pancreatitis induced by feeding a choline-deficient, ethionine-supplemented diet. Methodology and standards. Eur Surg Res. 1992;24:40–54PubMedCrossRef Niederau C, Lüthen R, Niederau MC, Grendell JH, Ferrell LD. Acute experimental hemorrhagic-necrotizing pancreatitis induced by feeding a choline-deficient, ethionine-supplemented diet. Methodology and standards. Eur Surg Res. 1992;24:40–54PubMedCrossRef
142.
go back to reference Leli U, Saluja A, Picard L, Zavertnik A, Steer ML. Effects of a choline-deficient ethionine-supplemented diet on phospholipase C activity in mouse pancreatic acinar cell membranes and in electropermeabilized mouse pancreatic acini. J Pharmacol Exp Ther. 1990;253:847–850PubMed Leli U, Saluja A, Picard L, Zavertnik A, Steer ML. Effects of a choline-deficient ethionine-supplemented diet on phospholipase C activity in mouse pancreatic acinar cell membranes and in electropermeabilized mouse pancreatic acini. J Pharmacol Exp Ther. 1990;253:847–850PubMed
143.
go back to reference Rao KN, Eagon PK, Okamura K et al. Acute hemorrhagic pancreatic necrosis in mice. Induction in male mice treated with estradiol. Am J Pathol. 1982;109:8–14PubMedPubMedCentral Rao KN, Eagon PK, Okamura K et al. Acute hemorrhagic pancreatic necrosis in mice. Induction in male mice treated with estradiol. Am J Pathol. 1982;109:8–14PubMedPubMedCentral
144.
go back to reference Wu J, Hu G, Lu Y et al. Palmitic acid aggravates inflammation of pancreatic acinar cells by enhancing unfolded protein response induced CCAAT-enhancer-binding protein β-CCAAT-enhancer-binding protein α activation. Int J Biochem Cell Biol. 2016;79:181–193PubMedCrossRef Wu J, Hu G, Lu Y et al. Palmitic acid aggravates inflammation of pancreatic acinar cells by enhancing unfolded protein response induced CCAAT-enhancer-binding protein β-CCAAT-enhancer-binding protein α activation. Int J Biochem Cell Biol. 2016;79:181–193PubMedCrossRef
145.
go back to reference Broe PJ, Zuidema GD, Cameron JL. The role of ischemia in acute pancreatitis: studies with an isolated perfused canine pancreas. Surgery. 1982;91:377–382PubMed Broe PJ, Zuidema GD, Cameron JL. The role of ischemia in acute pancreatitis: studies with an isolated perfused canine pancreas. Surgery. 1982;91:377–382PubMed
146.
go back to reference Ewald N, Hardt PD, Kloer HU. Severe hypertriglyceridemia and pancreatitis: presentation and management. Curr Opin Lipidol. 2009;20:497–504PubMedCrossRef Ewald N, Hardt PD, Kloer HU. Severe hypertriglyceridemia and pancreatitis: presentation and management. Curr Opin Lipidol. 2009;20:497–504PubMedCrossRef
147.
go back to reference Jeong YK, Kim H. A mini-review on the effect of docosahexaenoic acid (DHA) on cerulein-induced and hypertriglyceridemic acute pancreatitis. Int J Mol Sci. 2017;2017:18 Jeong YK, Kim H. A mini-review on the effect of docosahexaenoic acid (DHA) on cerulein-induced and hypertriglyceridemic acute pancreatitis. Int J Mol Sci. 2017;2017:18
148.
go back to reference Chang YT, Chang MC, Tung CC et al. Distinctive roles of unsaturated and saturated fatty acids in hyperlipidemic pancreatitis. World J Gastroenterol. 2015;21:9534–9543PubMedPubMedCentralCrossRef Chang YT, Chang MC, Tung CC et al. Distinctive roles of unsaturated and saturated fatty acids in hyperlipidemic pancreatitis. World J Gastroenterol. 2015;21:9534–9543PubMedPubMedCentralCrossRef
149.
go back to reference Zhang Q, Qin M, Liang Z et al. The relationship between serum triglyceride levels and acute pancreatitis in an animal model and a 14-year retrospective clinical study. Lipids Health Dis. 2019;18:183PubMedPubMedCentralCrossRef Zhang Q, Qin M, Liang Z et al. The relationship between serum triglyceride levels and acute pancreatitis in an animal model and a 14-year retrospective clinical study. Lipids Health Dis. 2019;18:183PubMedPubMedCentralCrossRef
150.
go back to reference Mole DJ, Webster SP, Uings I et al. Kynurenine-3-monooxygenase inhibition prevents multiple organ failure in rodent models of acute pancreatitis. Nat Med. 2016;22:202–209PubMedPubMedCentralCrossRef Mole DJ, Webster SP, Uings I et al. Kynurenine-3-monooxygenase inhibition prevents multiple organ failure in rodent models of acute pancreatitis. Nat Med. 2016;22:202–209PubMedPubMedCentralCrossRef
151.
go back to reference Petejova N, Martinek A. Acute kidney injury following acute pancreatitis: a review. Biomed Pap Med Fac Univ Palacky Olomouc Czech Repub. 2013;157:105–113PubMedCrossRef Petejova N, Martinek A. Acute kidney injury following acute pancreatitis: a review. Biomed Pap Med Fac Univ Palacky Olomouc Czech Repub. 2013;157:105–113PubMedCrossRef
152.
go back to reference Schönfeld P, Wieckowski MR, Lebiedzińska M, Wojtczak L. Mitochondrial fatty acid oxidation and oxidative stress: lack of reverse electron transfer-associated production of reactive oxygen species. Biochim Biophys Acta 2010;1797:929–938PubMedCrossRef Schönfeld P, Wieckowski MR, Lebiedzińska M, Wojtczak L. Mitochondrial fatty acid oxidation and oxidative stress: lack of reverse electron transfer-associated production of reactive oxygen species. Biochim Biophys Acta 2010;1797:929–938PubMedCrossRef
153.
go back to reference Wu C, Ke L, Tong Z et al. Hypertriglyceridemia is a risk factor for acute kidney injury in the early phase of acute pancreatitis. Pancreas 2014;43:1312–1316PubMedCrossRef Wu C, Ke L, Tong Z et al. Hypertriglyceridemia is a risk factor for acute kidney injury in the early phase of acute pancreatitis. Pancreas 2014;43:1312–1316PubMedCrossRef
Metadata
Title
Hypertriglyceridemia Acute Pancreatitis: Animal Experiment Research
Authors
Lu Wang
Ting Xu
Ruifeng Wang
Xiaobing Wang
Dong Wu
Publication date
01-03-2022
Publisher
Springer US
Published in
Digestive Diseases and Sciences / Issue 3/2022
Print ISSN: 0163-2116
Electronic ISSN: 1573-2568
DOI
https://doi.org/10.1007/s10620-021-06928-0

Other articles of this Issue 3/2022

Digestive Diseases and Sciences 3/2022 Go to the issue
Live Webinar | 27-06-2024 | 18:00 (CEST)

Keynote webinar | Spotlight on medication adherence

Live: Thursday 27th June 2024, 18:00-19:30 (CEST)

WHO estimates that half of all patients worldwide are non-adherent to their prescribed medication. The consequences of poor adherence can be catastrophic, on both the individual and population level.

Join our expert panel to discover why you need to understand the drivers of non-adherence in your patients, and how you can optimize medication adherence in your clinics to drastically improve patient outcomes.

Prof. Kevin Dolgin
Prof. Florian Limbourg
Prof. Anoop Chauhan
Developed by: Springer Medicine
Obesity Clinical Trial Summary

At a glance: The STEP trials

A round-up of the STEP phase 3 clinical trials evaluating semaglutide for weight loss in people with overweight or obesity.

Developed by: Springer Medicine