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Integrated Multi-Omics and Experimental Validation Reveal Dysregulation of the OXPHOS-NADPH-GSH Axis in Renal
Dongdong Wu1, Jing Zhao2, Xinrui Chang1
1Department of Public Health, Shaanxi University of Chinese Medicine, Xianyang, China.
Abstract:
Chronic renal failure (CRF) is a growing global health burden, with renal fibrosis representing its key pathological feature. However, the metabolic mechanisms linking mitochondrial dysfunction to redox imbalance during fibrogenesis remain incompletely understood. In this study, we investigated the relationship between mitochondrial oxidative phosphorylation (OXPHOS) disruption and alterations in cellular redox metabolism during CRF progression. Integrated proteomic and metabolomic analyses revealed remodeling of mitochondrial respiratory chain components together with reduced expression of NADPH-generating enzymes, including ME1, ME2, and IDH1. These changes were accompanied by decreased NADPH availability, imbalance of the glutathione redox system (GSH/GSSG), and suppression of NRF2-dependent antioxidant defenses, including HO-1 and GPX4. These alterations were associated with increased oxidative stress and extracellular matrix accumulation in fibrotic kidneys. In vitro experiments further showed that N-acetylcysteine (NAC) partially restored redox homeostasis, improved mitochondrial function, and attenuated TGF-β1-induced profibrotic responses in renal fibroblasts. In addition, the mitochondria-targeted antioxidant Mito-TEMPO reduced mitochondrial ROS accumulation and alleviated fibroblast activation. Collectively, these findings suggest that coordinated disruption of mitochondrial OXPHOS, NADPH metabolism, and glutathione-dependent antioxidant defense is associated with redox imbalance during renal fibrosis. Targeting mitochondrial redox metabolism may therefore represent a potential strategy for mitigating fibrotic progression in CRF.
Insights
Chronic renal failure involves kidney fibrosis linked to mitochondrial issues and redox imbalance. Restoring mitochondrial redox metabolism may help treat kidney fibrosis.
Area of Science:
- Nephrology
- Mitochondrial Biology
- Redox Metabolism
Background:
- Chronic renal failure (CRF) is a global health issue, with renal fibrosis as a primary characteristic.
- The metabolic pathways connecting mitochondrial dysfunction, redox imbalance, and fibrogenesis in CRF are not fully understood.
Purpose of the Study:
- To investigate the link between mitochondrial oxidative phosphorylation (OXPHOS) disruption and cellular redox metabolism changes during CRF progression.
- To explore potential therapeutic strategies targeting mitochondrial redox metabolism.
Main Methods:
- Integrated proteomic and metabolomic analyses were performed on fibrotic kidneys.
- In vitro experiments utilized N-acetylcysteine (NAC) and Mito-TEMPO to assess their effects on renal fibroblasts.
Main Results:
- CRF progression showed OXPHOS disruption, reduced NADPH generation, and impaired glutathione redox balance.
- Decreased antioxidant defenses (NRF2-dependent) and increased oxidative stress were observed in fibrotic kidneys.
- NAC and Mito-TEMPO treatments partially restored redox homeostasis and attenuated profibrotic responses in vitro.
Conclusions:
- Coordinated disruption of mitochondrial OXPHOS, NADPH metabolism, and glutathione defense contributes to redox imbalance in renal fibrosis.
- Targeting mitochondrial redox metabolism presents a promising therapeutic avenue for mitigating fibrotic progression in CRF.
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