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N-Acetylcysteine Mitigates Renal Fibrosis by Modulating Inflammasome and Gluconeogenic Pathways Under Cardiometabolic
Ching-Chun Chen1, Hui-Pei Huang2,3, I-Ning Tsai1
1Institute of Medicine, Chung Shan Medical University, Taichung 40201, Taiwan.
Abstract:
Cardio-renal metabolic (CRM) syndrome, characterized by insulin resistance and dyslipidemia, disrupts renal insulin signaling, enhances oxidative stress, and activates inflammasome pathways, ultimately promoting renal fibrosis and kidney dysfunction. Aberrant renal gluconeogenesis has emerged as a critical contributor to tubular injury under cardiometabolic stress; however, its mechanistic linkage to inflammatory and fibrotic remodeling remains incompletely defined. In this study, ApoE-/- mice subjected to streptozotocin administration and a high-fat diet developed pronounced cardiometabolic dysfunction, accompanied by elevated blood urea nitrogen, creatinine, uric acid, and glycated hemoglobin levels, as well as severe renal histopathological alterations. N-Acetylcysteine (NAC) supplementation significantly improved metabolic abnormalities and attenuated tubular dilation, glomerular hypertrophy, and mesangial expansion. Mechanistically, NAC suppressed renal gluconeogenesis by downregulating glucose-6-phosphatase and phosphoenolpyruvate carboxykinase expression and mitigated epithelial-mesenchymal transition by restoring E-cadherin and reducing vimentin expression, thereby limiting fibrotic remodeling. Consistent with in vivo findings, NAC reduced reactive oxygen species production, restored PI3K/Akt-dependent insulin signaling, and inhibited inflammasome activation in NRK-52E renal tubular cells exposed to high glucose and oleic acid, resulting in attenuation of inflammatory signaling and gluconeogenic activity. Collectively, these results demonstrate that NAC mitigates cardiometabolic stress-induced renal injury by modulating inflammasome activation and gluconeogenic reprogramming, highlighting its potential as a mechanistic modulator of renal fibrosis under CRM conditions.
Insights
N-Acetylcysteine (NAC) combats kidney damage from cardio-renal metabolic syndrome by reducing inflammation and abnormal sugar production in the kidneys. This antioxidant therapy improves kidney function and limits fibrosis in affected mice.
Area of Science:
- Nephrology
- Metabolic Syndrome
- Pharmacology
Background:
- Cardio-renal metabolic (CRM) syndrome involves insulin resistance and dyslipidemia, leading to kidney dysfunction via disrupted insulin signaling, oxidative stress, and inflammasome activation.
- Aberrant renal gluconeogenesis contributes to tubular injury in cardiometabolic stress, but its link to inflammation and fibrosis is unclear.
Purpose of the Study:
- To investigate the protective effects of N-Acetylcysteine (NAC) on kidney injury induced by cardiometabolic stress.
- To elucidate the mechanisms by which NAC mitigates renal fibrosis and dysfunction in a mouse model of CRM syndrome.
Main Methods:
- ApoE-/- mice fed a high-fat diet and treated with streptozotocin were used to model CRM syndrome.
- N-Acetylcysteine (NAC) was administered to assess its impact on metabolic parameters, renal histopathology, and molecular pathways.
- In vitro studies using NRK-52E renal tubular cells exposed to high glucose and oleic acid were performed to examine NAC's cellular effects.
Main Results:
- NAC supplementation improved metabolic abnormalities and attenuated renal histopathological damage, including tubular dilation and glomerular hypertrophy.
- NAC suppressed renal gluconeogenesis by downregulating key enzyme expression and mitigated epithelial-mesenchymal transition, reducing fibrotic markers.
- In vitro, NAC reduced reactive oxygen species, restored insulin signaling, and inhibited inflammasome activation in renal tubular cells.
Conclusions:
- NAC mitigates cardiometabolic stress-induced renal injury by modulating inflammasome activation and renal gluconeogenesis.
- NAC demonstrates potential as a therapeutic agent for renal fibrosis in the context of cardio-renal metabolic syndrome.
