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Published on: May 18, 2021
Differential effects of OATP2B1 on statin accumulation and toxicity in a beta cell model
Jihoon Kwon1, Michelle S Kim1, Christina Blagojevic1
1Department of Physiology and Pharmacology, Schulich School of Medicine and Dentistry, Western University, London, Ontario, Canada.
Abstract:
An increased risk of new-onset diabetes mellitus has been recently reported for statin therapy, and experimental studies have shown reduced glucose-stimulated insulin secretion (GSIS) and mitochondrial dysfunction in beta cells with effects differing among agents. Organic anion transporting polypeptide (OATP) 2B1 contributes to hepatic uptake of rosuvastatin, atorvastatin and pravastatin, three known substrates. Since OATP2B1 is present in beta cells of the human pancreas, we investigated if OATP2B1 facilitates the local accumulation of statins in a rat beta cell model INS-1 832/13 (INS-1) thereby amplifying statin-induced toxicity. OATP2B1 overexpression in INS-1 cells via adenoviral transduction showed 2.5-, 1.8- and 1.4-fold higher cellular retention of rosuvastatin, atorvastatin and pravastatin, respectively, relative to LacZ control, while absolute intracellular concentration was about twice as high for the lipophilic atorvastatin compared to the more hydrophilic rosuvastatin and pravastatin. After 24 h statin treatment at high concentrations, OATP2B1 enhanced statin toxicity involving activation of intrinsic apoptosis (caspase 3/7 activation) and mitochondrial dysfunction (NADH dehydrogenase activity) following rosuvastatin and atorvastatin, which was partly reversed by isoprenoids. OATP2B1 had no effect on statin-induced reduction in GSIS, mitochondrial electron transport chain complex expression or caspase 9 activation. We confirmed a dose-dependent reduction in insulin secretion by rosuvastatin and atorvastatin in native INS-1 with a modest change in cellular ATP. Collectively, our results indicate a role of OATP2B1, which is abundant in human beta cells, in statin accumulation and statin-induced toxicity but not insulin secretion of rosuvastatin and atorvastatin in INS-1 cells.
Insights
Organic anion transporting polypeptide 2B1 (OATP2B1) enhances statin accumulation in beta cells, increasing toxicity. However, OATP2B1 does not affect statin-induced reduction in glucose-stimulated insulin secretion.
Area of Science:
- Pharmacology
- Cell Biology
- Endocrinology
Background:
- Statin therapy is linked to increased diabetes risk, with potential effects on beta cell function.
- Organic anion transporting polypeptide 2B1 (OATP2B1) mediates hepatic uptake of several statins.
- OATP2B1 is expressed in human pancreatic beta cells, suggesting a role in local statin handling.
Purpose of the Study:
- To investigate if OATP2B1 facilitates statin accumulation in rat beta cells (INS-1).
- To determine if OATP2B1 amplifies statin-induced toxicity and affects insulin secretion.
- To explore the impact of OATP2B1 on statin-induced mitochondrial dysfunction and apoptosis.
Main Methods:
- Overexpression of OATP2B1 in INS-1 cells using adenoviral vectors.
- Measurement of cellular statin retention for rosuvastatin, atorvastatin, and pravastatin.
- Assessment of apoptosis (caspase 3/7), mitochondrial function (NADH dehydrogenase), and insulin secretion (GSIS).
Main Results:
- OATP2B1 overexpression significantly increased cellular retention of rosuvastatin, atorvastatin, and pravastatin.
- OATP2B1 enhanced statin-induced apoptosis and mitochondrial dysfunction with rosuvastatin and atorvastatin.
- OATP2B1 did not affect statin-induced reduction in glucose-stimulated insulin secretion or ATP levels.
Conclusions:
- OATP2B1 plays a role in the local accumulation of statins within beta cells.
- OATP2B1 contributes to statin-induced toxicity, including apoptosis and mitochondrial dysfunction.
- OATP2B1 does not appear to mediate statin-induced impairment of glucose-stimulated insulin secretion in this model.
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