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α-Ketoglutarate mitigates titanium dioxide nanoparticle-induced hepatotoxicity by reinforcing redox balance and
Weimin Wang1, Mengxuan Jia2, Rongrong Zhang2
1Department of Health Management, Yuncheng Central Hospital Affiliated to Shanxi Medical University, No. 3690 Hedong East Street, Yuncheng, Shanxi 044000, China.
Abstract:
The widespread environmental presence of titanium dioxide nanoparticles (TiO2-NPs) has raised growing concern regarding their potential risks to hepatic function and organismal health. This study aimed to systematically elucidate the hepatotoxic mechanisms of TiO2-NPs exposure and to determine whether α-ketoglutarate (α-KG), a central tricarboxylic acid cycle metabolite, could provide metabolic protection. Physicochemical characterization confirmed that the TiO2-NPs exhibited uniform nanoscale morphology, stable hydrodynamic size, defined surface charge, elemental purity, and an anatase crystalline structure. Using a murine exposure model supported by AML12 hepatocyte assays, TiO2-NPs exposure was shown to induce quantitatively measurable, multi-level hepatic injury, including significant suppression of NRF2-dependent antioxidant capacity, attenuation of PI3K-Akt signaling, mitochondrial dysfunction, enhanced inflammatory responses, apoptosis, and early fibrogenic activation. α-KG supplementation significantly mitigated these effects, accompanied by restoration of redox homeostasis and recovery of NRF2 and PI3K-Akt signaling, stabilizing mitochondrial function, and reducing inflammatory and apoptotic injury. These findings demonstrate that α-KG enhances intrinsic metabolic resilience against nanoparticle-induced hepatic toxicity and provide mechanistic and toxicological evidence relevant to environmental nanoparticle risk assessment, highlighting a metabolite-based strategy for mitigating engineered nanomaterial-associated health risks.
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