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Published on: October 26, 2020
(Pro)Renin Receptor Antagonism Attenuates High-Fat-Diet-Induced Hepatic Steatosis
Ariana Julia B Gayban1,2, Lucas A C Souza1,2, Silvana G Cooper1,2
1Departments of Pharmacology and Physiology & Cell Biology, School of Medicine, University of Nevada, Reno, NV 89557, USA.
Abstract:
Non-alcoholic fatty liver disease (NAFLD) comprises a spectrum of liver damage directly related to diabetes, obesity, and metabolic syndrome. The (pro)renin receptor (PRR) has recently been demonstrated to play a role in glucose and lipid metabolism. Here, we test the hypothesis that the PRR regulates the development of diet-induced hepatic steatosis and fibrosis. C57Bl/6J mice were fed a high-fat diet (HFD) or normal-fat diet (NFD) with matching calories for 6 weeks. An 8-week methionine choline-deficient (MCD) diet was used to induce fibrosis. Two weeks following diet treatment, mice were implanted with a subcutaneous osmotic pump delivering either the peptide PRR antagonist, PRO20, or scrambled peptide for 4 or 6 weeks. Mice fed a 6-week HFD exhibited increased liver lipid accumulation and liver triglyceride content compared with NFD-fed mice. Importantly, PRO20 treatment reduced hepatic lipid accumulation in HFD-fed mice without affecting body weight or blood glucose. Furthermore, PRR antagonism attenuated HFD-induced steatosis, particularly microvesicular steatosis. In the MCD diet model, the percentage of collagen area was reduced in PRO20-treated compared with control mice. PRO20 treatment also significantly decreased levels of liver alanine aminotransferase, an indicator of liver damage, in MCD-fed mice compared with controls. Mechanistically, we found that PRR antagonism prevented HFD-induced increases in PPARγ and glycerol-3-phosphate acyltransferase 3 expression in the liver. Taken together, our findings establish the involvement of the PRR in liver triglyceride synthesis and suggest the therapeutic potential of PRR antagonism for the treatment of liver steatosis and fibrosis in NAFLD.
Insights
Blocking the (pro)renin receptor (PRR) with PRO20 reduced liver fat accumulation and fibrosis in mouse models of non-alcoholic fatty liver disease (NAFLD). This suggests PRR antagonism as a potential therapy for NAFLD.
Area of Science:
- Metabolic disease research
- Liver disease mechanisms
- Pharmacological intervention studies
Background:
- Non-alcoholic fatty liver disease (NAFLD) is linked to metabolic disorders like diabetes and obesity.
- The (pro)renin receptor (PRR) is implicated in glucose and lipid metabolism.
- Understanding PRR's role in NAFLD pathogenesis is crucial for developing new treatments.
Purpose of the Study:
- To investigate the role of the (pro)renin receptor (PRR) in diet-induced non-alcoholic fatty liver disease (NAFLD).
- To evaluate the therapeutic potential of PRR antagonism in preclinical models of hepatic steatosis and fibrosis.
Main Methods:
- Mice were fed high-fat diets (HFD) or normal-fat diets (NFD) to induce steatosis.
- Methionine choline-deficient (MCD) diet was used to induce liver fibrosis.
- Mice received a PRR antagonist (PRO20) or control peptide via osmotic pumps.
- Liver lipid accumulation, triglyceride content, collagen area, and enzyme levels were assessed.
Main Results:
- HFD feeding increased liver lipid and triglyceride levels.
- PRO20 treatment significantly reduced hepatic lipid accumulation in HFD mice without altering body weight or blood glucose.
- PRR antagonism attenuated HFD-induced steatosis and MCD diet-induced fibrosis.
- PRO20 decreased liver alanine aminotransferase levels in MCD-fed mice.
Conclusions:
- The (pro)renin receptor (PRR) is involved in regulating liver triglyceride synthesis.
- PRR antagonism demonstrates therapeutic potential for treating liver steatosis and fibrosis in NAFLD.
- Targeting PRR offers a promising strategy for managing non-alcoholic fatty liver disease.
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