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Sodium aescinate protects renal ischemia-reperfusion and pyroptosis through AKT/NLRP3 signaling pathway
Liu Xin1, Ning Kanghao2, Li Jiacheng1
1The First Affiliated Hospital of Hebei North University, Hebei Province, China.
Abstract:
Renal ischemia-reperfusion injury (RIRI) is a common cause of acute renal injury. Studies have shown that sodium aescinate (SA) may serve as a potential therapeutic agent, although its exact mechanism remains unclear. This study first evaluated the efficacy of SA using a mouse renal ischemia-reperfusion model. Subsequently, its mechanism was elucidated through systematic bioinformatics, and finally validated through in vitro and in vivo experiments. The results demonstrated that SA has a protective effect on renal function in mice with RIRI. Bioinformatic analysis indicated that the pyroptosis pathway is significantly activated during renal ischemia-reperfusion injury, and immunohistochemistry showed that the level of renal pyroptosis is upregulated during ischemia-reperfusion injury. Administration of SA was able to reduce the expression of pyroptosis-related proteins (GSDMD, NLRP3, IL-1β) in RIRI. In vitro and in vivo experiments further confirmed that SA exerts an anti-pyroptotic effect by inhibiting the AKT/NLRP3 signaling pathway. Ultimately, SA mitigates kidney injury in IRI mice by suppressing renal failure through inhibition of the AKT/NLRP3 signaling pathway.
Insights
Sodium aescinate (SA) protects kidney function against renal ischemia-reperfusion injury (RIRI) by inhibiting pyroptosis. This study reveals SA’s therapeutic potential by targeting the AKT/NLRP3 signaling pathway to reduce kidney damage.
Area of Science:
- Nephrology
- Pharmacology
- Molecular Biology
Background:
- Renal ischemia-reperfusion injury (RIRI) is a primary cause of acute kidney injury.
- Sodium aescinate (SA) shows potential therapeutic benefits for RIRI, but its mechanism is not fully understood.
Purpose of the Study:
- To evaluate the efficacy of SA in a mouse RIRI model.
- To elucidate the underlying mechanism of SA's protective effects against RIRI.
Main Methods:
- Mouse RIRI model establishment and SA treatment.
- Bioinformatic analysis to identify key pathways.
- In vitro and in vivo validation of SA's mechanism of action.
Main Results:
- SA demonstrated a protective effect on renal function in RIRI mice.
- Bioinformatic analysis identified pyroptosis pathway activation in RIRI.
- SA administration reduced pyroptosis markers (GSDMD, NLRP3, IL-1β) and inhibited the AKT/NLRP3 signaling pathway.
Conclusions:
- SA mitigates kidney injury in RIRI by suppressing pyroptosis via the AKT/NLRP3 pathway.
- SA represents a promising therapeutic agent for RIRI, offering protection against renal failure.
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