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Article

A Pathophysiological Model of Non-Alcoholic Fatty Liver Disease Using Precision-Cut Liver Slices

by
Grietje H. Prins
1,†,
Theerut Luangmonkong
1,2,†,
Dorenda Oosterhuis
1,
Henricus A. M. Mutsaers
1,
Frank J. Dekker
3 and
Peter Olinga
1,*
1
Department of Pharmaceutical Technology and Biopharmacy, University of Groningen, 9712VM Groningen, The Netherlands
2
Department of Pharmacology, Faculty of Pharmacy, Mahidol University, 10400 Bangkok, Thailand
3
Department of Chemical and Pharmaceutical Biology, University of Groningen, 9712VM Groningen, The Netherlands
*
Author to whom correspondence should be addressed.
Authors contributed equally.
Nutrients 2019, 11(3), 507; https://doi.org/10.3390/nu11030507
Submission received: 30 January 2019 / Revised: 13 February 2019 / Accepted: 20 February 2019 / Published: 27 February 2019

Abstract

Non-alcoholic fatty liver disease (NAFLD) is a common liver disorder closely related to metabolic syndrome. NAFLD can progress to an inflammatory state called non-alcoholic steatohepatitis (NASH), which may result in the development of fibrosis and hepatocellular carcinoma. To develop therapeutic strategies against NAFLD, a better understanding of the molecular mechanism is needed. Current in vitro NAFLD models fail to capture the essential interactions between liver cell types and often do not reflect the pathophysiological status of patients. To overcome limitations of commonly used in vitro and in vivo models, precision-cut liver slices (PCLSs) were used in this study. PCLSs, prepared from liver tissue obtained from male Wistar rats, were cultured in supraphysiological concentrations of glucose, fructose, insulin, and palmitic acid to mimic metabolic syndrome. Accumulation of lipid droplets was visible and measurable after 24 h in PCLSs incubated with glucose, fructose, and insulin, both in the presence and absence of palmitic acid. Upregulation of acetyl-CoA carboxylase 1 and 2, and of sterol responsive element binding protein 1c, suggests increased de novo lipogenesis in PCLSs cultured under these conditions. Additionally, carnitine palmitoyltransferase 1 expression was reduced, which indicates impaired fatty acid transport and disrupted mitochondrial β-oxidation. Thus, steatosis was successfully induced in PCLSs with modified culture medium. This novel ex vivo NAFLD model could be used to investigate the multicellular and molecular mechanisms that drive NAFLD development and progression, and to study potential anti-steatotic drugs.
Keywords: NAFLD; non-alcoholic fatty liver disease; ex vivo; pathophysiological model; metabolism; steatosis NAFLD; non-alcoholic fatty liver disease; ex vivo; pathophysiological model; metabolism; steatosis

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MDPI and ACS Style

Prins, G.H.; Luangmonkong, T.; Oosterhuis, D.; Mutsaers, H.A.M.; Dekker, F.J.; Olinga, P. A Pathophysiological Model of Non-Alcoholic Fatty Liver Disease Using Precision-Cut Liver Slices. Nutrients 2019, 11, 507. https://doi.org/10.3390/nu11030507

AMA Style

Prins GH, Luangmonkong T, Oosterhuis D, Mutsaers HAM, Dekker FJ, Olinga P. A Pathophysiological Model of Non-Alcoholic Fatty Liver Disease Using Precision-Cut Liver Slices. Nutrients. 2019; 11(3):507. https://doi.org/10.3390/nu11030507

Chicago/Turabian Style

Prins, Grietje H., Theerut Luangmonkong, Dorenda Oosterhuis, Henricus A. M. Mutsaers, Frank J. Dekker, and Peter Olinga. 2019. "A Pathophysiological Model of Non-Alcoholic Fatty Liver Disease Using Precision-Cut Liver Slices" Nutrients 11, no. 3: 507. https://doi.org/10.3390/nu11030507

APA Style

Prins, G. H., Luangmonkong, T., Oosterhuis, D., Mutsaers, H. A. M., Dekker, F. J., & Olinga, P. (2019). A Pathophysiological Model of Non-Alcoholic Fatty Liver Disease Using Precision-Cut Liver Slices. Nutrients, 11(3), 507. https://doi.org/10.3390/nu11030507

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