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New peripherally-restricted CB1 receptor antagonists, PMG-505-010 and -013 ameliorate obesity-associated NAFLD and
Hyekyung Yang1, Miey Park2, Ji Hye Lee3
1Medical Research Institute, Kangbuk Samsung Hospital, Sungkyunkwan University School of Medicine, Seoul 03181, Republic of Korea.
Abstract:
The endocannabinoid system plays a crucial role in metabolic regulation, prompting the investigation of cannabinoid type 1 receptor (CB1R) antagonists for obesity and its complications like non-alcoholic fatty liver disease (NAFLD). Concerns over psychiatric side effects led to the development of peripheral CB1R antagonists that circumvent the blood-brain barrier (BBB). In this study, we synthesized PMG-505-010 and PMG-505-013 as peripherally restricted CB1 receptor antagonists by modifying rimonabant to minimize BBB penetration. Physicochemical analysis confirmed their reduced lipophilicity and increased polarity compared to rimonabant, indicating limited brain exposure. Molecular docking studies revealed similar binding modes to rimonabant at CB1R, characterized by robust hydrophobic interactions. Functionally, they acted as CB1R antagonists and inverse agonists, effectively reversing CP55,940-induced cAMP inhibition. In a murine model of obesity-related NAFLD, PMG-505-010 and -013 improved metabolic profiles, including fasting blood glucose levels and dyslipidemia. They also ameliorated hepatic injury, steatosis, and inflammation, evidenced by reduced liver enzymes, lipid peroxidation, hepatic lipid levels, and inflammatory cytokine levels. Notably, these compounds inhibited hepatic fibrosis by reducing extracellular matrix (ECM) deposition and altering fibrosis-related gene and protein expressions. In conclusion, PMG-505-010 and PMG-505-013 hold promise for treating obesity-related liver diseases, including NAFLD and fibrosis, through selective peripheral CB1R targeting, potentially avoiding CNS-related side effects seen with earlier CB1R antagonists.
Insights
New peripherally acting CB1 receptor antagonists, PMG-505-010 and PMG-505-013, show promise in treating obesity-related liver diseases like non-alcoholic fatty liver disease (NAFLD) and fibrosis without central nervous system side effects.
Area of Science:
- Pharmacology
- Hepatology
- Metabolic Regulation
Background:
- The endocannabinoid system regulates metabolism, making CB1 receptor antagonists potential treatments for obesity and non-alcoholic fatty liver disease (NAFLD).
- Previous CB1 receptor antagonists caused psychiatric side effects due to blood-brain barrier (BBB) penetration.
- Development of peripherally restricted antagonists aims to mitigate these side effects.
Purpose of the Study:
- To synthesize and evaluate novel peripherally restricted CB1 receptor antagonists, PMG-505-010 and PMG-505-013.
- To assess their efficacy in a murine model of obesity-related NAFLD and hepatic fibrosis.
Main Methods:
- Synthesis of PMG-505-010 and PMG-505-013, modified rimonabant analogs with reduced lipophilicity.
- Physicochemical analysis, molecular docking, and in vitro functional assays (cAMP inhibition).
- In vivo studies using a murine model of obesity-related NAFLD to assess metabolic profiles, liver injury, steatosis, inflammation, and fibrosis.
Main Results:
- Compounds PMG-505-010 and PMG-505-013 demonstrated reduced lipophilicity and limited BBB penetration.
- They functioned as CB1 receptor antagonists and inverse agonists in vitro.
- In vivo, they improved metabolic parameters (glucose, lipids), ameliorated liver injury, steatosis, and inflammation, and significantly inhibited hepatic fibrosis by reducing ECM deposition.
Conclusions:
- Peripherally restricted CB1 receptor antagonists PMG-505-010 and PMG-505-013 are effective in treating obesity-related NAFLD and hepatic fibrosis in mice.
- These compounds offer a potential therapeutic strategy for liver diseases associated with metabolic dysfunction, avoiding CNS side effects.

