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Blockade of aryl hydrocarbon receptor restricts omeprazole-induced chronic kidney disease
Nan Sun1,2, Yimeng Zhang2, Lin Ding2
1Laboratory of Basic Medical Sciences, Qilu Hospital of Shandong University, Jinan, Shandong, China.
Abstract:
Chronic kidney disease (CKD) is the 16th leading cause of mortality worldwide. Clinical studies have raised that long-term use of omeprazole (OME) is associated with the morbidity of CKD. OME is commonly used in clinical practice to treat peptic ulcers and gastroesophageal reflux disease. However, the mechanism underlying renal failure following OME treatment remains mostly unknown and the rodent model of OME-induced CKD is yet to be established. We described the process of renal injury after exposure to OME in mice; the early renal injury markers were increased in renal tubular epithelial cells (RTECs). And after long-term OME treatment, the OME-induced CKD mice model was established. Herein, aryl hydrocarbon receptor (AHR) translocation appeared after exposure to OME in HK-2 cells. Then for both in vivo and in vitro, we found that Ahr-knockout (KO) and AHR small interfering RNA (siRNA) substantially alleviated the OME-induced renal function impairment and tubular cell damage. Furthermore, our data demonstrate that antagonists of AHR and CYP1A1 could attenuate OME-induced tubular cell impairment in HK-2 cells. Taken together, these data indicate that OME induces CKD through the activation of the AHR-CYP axis in RTECs. Our findings suggest that blocking the AHR-CYP1A1 pathway acts as a potential strategy for the treatment of CKD caused by OME. KEY MESSAGES: We provide an omeprazole-induced chronic kidney disease (CKD) mice model. AHR activation and translocation process was involved in renal tubular damage and promoted the occurrence of CKD. The process of omeprazole nephrotoxicity can be ameliorated by blockade of the AHR-CYP1A1 axis.
Insights
Long-term omeprazole use can cause chronic kidney disease (CKD) by activating the aryl hydrocarbon receptor (AHR) pathway in kidney cells. Blocking this AHR-CYP1A1 pathway offers a potential treatment strategy for omeprazole-induced kidney damage.
Area of Science:
- Nephrology
- Pharmacology
- Toxicology
Background:
- Chronic kidney disease (CKD) is a significant global health concern.
- Long-term omeprazole (OME) use is linked to CKD, but the underlying mechanisms are unclear.
- A rodent model for OME-induced CKD is lacking.
Purpose of the Study:
- To establish a mouse model of OME-induced CKD.
- To elucidate the mechanism of OME-induced renal injury.
- To identify potential therapeutic targets for OME nephrotoxicity.
Main Methods:
- Established a mouse model of chronic kidney disease (CKD) through long-term omeprazole (OME) administration.
- Investigated the role of aryl hydrocarbon receptor (AHR) activation and translocation in renal tubular epithelial cells (RTECs) using in vitro (HK-2 cells) and in vivo (Ahr-knockout mice, AHR siRNA) models.
- Assessed the impact of AHR and CYP1A1 antagonists on OME-induced renal damage.
Main Results:
- Long-term OME treatment successfully established a mouse model of CKD, with increased early renal injury markers in RTECs.
- OME exposure induced AHR translocation in HK-2 cells.
- Ahr-knockout and AHR siRNA significantly alleviated OME-induced renal dysfunction and tubular damage.
- AHR and CYP1A1 antagonists attenuated OME-induced tubular cell injury in HK-2 cells.
Conclusions:
- Omeprazole induces CKD by activating the AHR-CYP axis in renal tubular epithelial cells.
- AHR activation and translocation are critical mediators of OME-induced renal tubular damage and CKD.
- Blocking the AHR-CYP1A1 pathway presents a promising therapeutic strategy for preventing or treating omeprazole-induced CKD.
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