Rosmarinic acid plus deferasirox inhibits ferroptosis to alleviate crush syndrome-related AKI via Nrf2/Keap1 pathway

•Ferroptosis in renal tubular epithelial cells (RETCs) was the main cause of CS-AKI.•Mb induced ferroptosis in RETCs.•Rosmarinic acid combined with Deferasirox resisted ferroptosis by activating the Nrf2/KEAP1 pathway.•Rosmarinic acid combined with Deferasirox ameliorated AKI in CS mice. Myoglobin (...

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Veröffentlicht in:Phytomedicine (Stuttgart) 2024-07, Vol.129, p.155700, Article 155700
Hauptverfasser: Qiao, Ou, Zhang, Li, Han, Lu, Wang, Xinyue, Li, Zizheng, Bao, Fengjiao, Hao, Herui, Hou, Yingjie, Duan, Xiaohong, Li, Ning, Gong, Yanhua
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Sprache:eng
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Zusammenfassung:•Ferroptosis in renal tubular epithelial cells (RETCs) was the main cause of CS-AKI.•Mb induced ferroptosis in RETCs.•Rosmarinic acid combined with Deferasirox resisted ferroptosis by activating the Nrf2/KEAP1 pathway.•Rosmarinic acid combined with Deferasirox ameliorated AKI in CS mice. Myoglobin (Mb) induced death of renal tubular epithelial cells (RTECs) is a major pathological factor in crush syndrome-related acute kidney injury (CS-AKI). It is unclear whether ferroptosis is involved and could be a target for treatment. This study aimed to evaluate the potential therapeutic effects of combining the natural small molecule rosemarinic acid (RA) and the iron chelator deferasirox (Dfe) on CS-AKI through inhibition of ferroptosis. Sequencing data were downloaded from the GEO database, and differential expression analysis was performed using the R software limma package. The CS-AKI mouse model was constructed by squeezing the bilateral thighs of mice for 16 h with 1.5 kg weight. TCMK1 and NRK-52E cells were induced with 200 μM Mb and then treated with RA combined with Dfe (Dfe + RA, both were 10 μM). Functional and pathological changes in mouse kidney were evaluated by glomerular filtration rate (GFR) and HE pathology. Immunofluorescence assay was used to detect Mb levels in kidney tissues. The expression levels of ACSL4, GPX4, Keap1, and Nrf2 were analyzed by WB. We found that AKI mice in the GSE44925 cohort highly expressed the ferroptosis markers ACSL4 and PTGS2. CS-AKI mice showed a rapid decrease in GFR, up-regulation of ACSL4 expression in kidney tissue, and down-regulation of GPX4 expression, indicating activation of the ferroptosis pathway. Mb was found to deposit in renal tubules, and it has been proven to cause ferroptosis in TCMK1 and NRK-52E cells in vitro. We found that Dfe had a strong iron ion scavenging effect and inhibited ACSL4 expression. RA could disrupt the interaction between Keap1 andNrf2, stabilize Nrf2, and promote its nuclear translocation, thereby exerting antioxidant effects. The combination of Dfe and RA effectively reversed Mb induced ferroptosis in RTECs. In conclusion, we found that RA combined with Dfe attenuated CS-AKI by inhibiting Mb-induced ferroptosis in RTECs via activating the Nrf2/Keap1 pathway. [Display omitted]
ISSN:0944-7113
1618-095X
1618-095X
DOI:10.1016/j.phymed.2024.155700