L-serine dose-dependently ameliorates high-selenium-induced insulin resistance in mice
- J Nutr Biochem. 2026 May 30:157:110432. doi: 10.1016/j.jnutbio.2026.110432.
- 1. Department of Clinical Nutrition, Huadong Hospital Affiliated to Fudan University, Shanghai, China; Department of Nutrition and Metabolism, Chinese Center for Disease Control and Prevention, National Institute for Nutrition and Health, Beijing, China.
- 2. Department of Nutrition and Metabolism, Chinese Center for Disease Control and Prevention, National Institute for Nutrition and Health, Beijing, China.
- 3. Beijing Advanced Innovation Center for Food Nutrition and Human Health, Department of Nutrition and Health, China Agricultural University, Beijing, China.
- 4. Department of Clinical Nutrition, Huadong Hospital Affiliated to Fudan University, Shanghai, China.
- 5. Department of Clinical Nutrition, Huadong Hospital Affiliated to Fudan University, Shanghai, China. Electronic address: [email protected].
- 6. Department of Nutrition and Metabolism, Chinese Center for Disease Control and Prevention, National Institute for Nutrition and Health, Beijing, China; Key Laboratory of Public Nutrition and Health, National Health Commission of the People's Republic of China, Beijing, China. Electronic address: [email protected].
Supranutritional selenium intake, while potentially oncoprotective, paradoxically elevates the risk of type 2 diabetes through metabolic hijacking of the one-carbon pool. Se-detoxification exhausts S-adenosylmethionine (SAM) and its precursor L‑serine, triggering a maladaptive surge in de novo serine synthesis that impairs Insulin sensitivity. Identifying a precise nutritional countermeasure to decouple Se-driven metabolic risks from its therapeutic benefits remains a critical challenge. We systematically evaluated the dose-response efficacy of dietary L‑serine (0.7%-3.5% of dietary protein) in C57BL/6J mice under high-Se stress (0.8 mg/kg). Systemic glucose homeostasis, tissue-specific Se distribution, hepatic S-adenosylmethionine/S-adenosylhomocysteine (SAM/SAH) methylation index (LC-MS/MS), hepatic malondialdehyde (MDA), PI3K-AKT-mTOR signaling, and plasma hepatic and renal function markers were assessed. The pharmacological PHGDH inhibitor NCT503 was included as a mechanistic comparator rather than as an alternative therapeutic strategy. L‑serine supplementation dose-dependently ameliorated high-Se-induced glucose intolerance and Insulin resistance, with a functional threshold between 0.7% and 1.4% dietary serine (≈96-182 mg/kg/d). Direct LC-MS/MS quantification demonstrated a dose-dependent increase in the hepatic SAM/SAH methylation index, providing direct biochemical evidence of one-carbon pool replenishment; parallel reduction in hepatic MDA indicated attenuation of oxidative stress. Recovery of PI3K-AKT-mTOR signaling was observed across hepatic, muscular, and pancreatic tissues in a tissue-specific, dose-dependent manner. Plasma ALT, AST, and creatinine did not differ significantly across groups at all doses. NCT503 induced hyperhomocysteinemia and produced the lowest hepatic SAM/SAH ratio, indicating that PHGDH suppression under basal serine availability depletes rather than replenishes the one-carbon pool. Dietary L‑serine supplementation ameliorates high-selenium-induced Insulin resistance with a functional threshold between 0.7% and 1.4% dietary serine (≈96-182 mg/kg/d), mechanistically anchored to dose-dependent elevation of the hepatic SAM/SAH methylation index. These findings provide a preclinical framework for precision nutritional interventions in populations chronically exposed to supranutritional selenium environments.
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