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Aldo-keto reductase-7A2 protects against atorvastatin-induced hepatotoxicity via Nrf2 activation
Dan Li1, Jiajin Chen1, Fei Zhou1
1Collaborative Innovation Center of Yangtze River Delta Region Green Pharmaceuticals, College of Pharmaceutical Sciences, Zhejiang University of Technology, Hangzhou, 310014, China.
Abstract:
Atorvastatin (ATO), as a cholesterol-lowering drug, was the world's best-selling drug in the early 2000s. However, ATO overdose-induced liver or muscle injury is a threat to many patients, which restricts its application. Previous studies suggest that ATO overdose is accompanied with ROS accumulation and increased lipid peroxidation, which are the leading causes of ATO-induced liver damage. This study is, therefore, carried out to investigate the roles of anti-oxidant pathways and enzymes in protection against ATO-induced hepatotoxicity. Here we show that in ATO-challenged HepG2 cells, the expression levels of transcription factor NFE2L2/Nrf2 (nuclear factor erythroid 2 p45-related factor 2) are significantly upregulated. When Nrf2 is pharmacologically inhibited or genetically inactivated, ATO-induced cytotoxicity is significantly aggravated. Aldo-keto reductase-7A (AKR7A) enzymes, transcriptionally regulated by Nrf2, are important for bioactivation and biodetoxification. Here, we reveal that in response to ATO exposure, mRNA levels of human AKR7A2 are significantly upregulated in HepG2 cells. Furthermore, knockdown of AKR7A2 exacerbates ATO-induced hepatotoxicity, suggesting that AKR7A2 is essential for cellular adaptive response to ATO-induced cell damage. In addition, overexpression of AKR7A2 in HepG2 cells can significantly mitigate ATO-induced cytotoxicity and this process is Nrf2-dependent. Taken together, these findings indicate that Nrf2-mediated AKR7A2 is responsive to high concentrations of ATO and contributes to protection against ATO-induced hepatotoxicity, making it a good candidate for mitigating ATO-induced side effects.
Insights
The study reveals that the Nrf2-mediated AKR7A2 pathway protects liver cells from atorvastatin overdose damage. Upregulation of AKR7A2 mitigates atorvastatin-induced hepatotoxicity, offering a potential strategy against drug side effects.
Area of Science:
- Hepatology
- Molecular Biology
- Pharmacology
Background:
- Atorvastatin (ATO) is a widely used cholesterol-lowering drug.
- ATO overdose can cause liver and muscle injury, linked to oxidative stress and lipid peroxidation.
- Understanding protective mechanisms against ATO-induced hepatotoxicity is crucial for patient safety.
Purpose of the Study:
- To investigate the role of antioxidant pathways and enzymes in protecting against ATO-induced liver damage.
- To elucidate the involvement of the Nrf2 pathway and AKR7A enzymes in cellular response to ATO exposure.
Main Methods:
- Utilized HepG2 cells challenged with atorvastatin.
- Assessed the expression levels of Nrf2 and AKR7A2.
- Employed pharmacological inhibition and genetic inactivation of Nrf2.
- Conducted gene knockdown and overexpression of AKR7A2.
Main Results:
- ATO challenge upregulated Nrf2 expression in HepG2 cells.
- Inhibition or inactivation of Nrf2 aggravated ATO-induced cytotoxicity.
- ATO exposure increased mRNA levels of AKR7A2.
- Knockdown of AKR7A2 worsened ATO-induced hepatotoxicity, while overexpression mitigated it.
- The protective effect of AKR7A2 was dependent on Nrf2.
Conclusions:
- The Nrf2-mediated AKR7A2 pathway is activated by high concentrations of atorvastatin.
- AKR7A2 plays a significant role in protecting against ATO-induced hepatotoxicity.
- AKR7A2 is a potential therapeutic target for mitigating atorvastatin-related liver injury.
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