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Published on: March 15, 2024
Sulforaphane prevents diabetes-induced hepatic ferroptosis by activating Nrf2 signaling axis
Nevena Savic1, Milica Markelic2, Ana Stancic1
1Department of Molecular Biology, Institute for Biological Research "Siniša Stanković," National Institute of Republic of Serbia, University of Belgrade, Belgrade, Serbia.
Abstract:
Recently, we characterized the ferroptotic phenotype in the liver of diabetic mice and revealed nuclear factor (erythroid-derived-2)-related factor 2 (Nrf2) inactivation as an integral part of hepatic injury. Here, we aim to investigate whether sulforaphane, an Nrf2 activator and antioxidant, prevents diabetes-induced hepatic ferroptosis and the mechanisms involved. Male C57BL/6 mice were divided into four groups: control (vehicle-treated), diabetic (streptozotocin-induced; 40 mg/kg, from Days 1 to 5), diabetic sulforaphane-treated (2.5 mg/kg from Days 1 to 42) and non-diabetic sulforaphane-treated group (2.5 mg/kg from Days 1 to 42). Results showed that diabetes-induced inactivation of Nrf2 and decreased expression of its downstream antiferroptotic molecules critical for antioxidative defense (catalase, superoxide dismutases, thioredoxin reductase), iron metabolism (ferritin heavy chain (FTH1), ferroportin 1), glutathione (GSH) synthesis (cystine-glutamate antiporter system, cystathionase, glutamate-cysteine ligase catalitic subunit, glutamate-cysteine ligase modifier subunit, glutathione synthetase), and GSH recycling - glutathione reductase (GR) were reversed/increased by sulforaphane treatment. In addition, we found that the ferroptotic phenotype in diabetic liver is associated with increased ferritinophagy and decreased FTH1 immunopositivity. The antiferroptotic effect of sulforaphane was further evidenced through the increased level of GSH, decreased accumulation of labile iron and lipid peroxides (4-hydroxy-2-nonenal, lipofuscin), decreased ferritinophagy and liver damage (decreased fibrosis, alanine aminotransferase, and aspartate aminotransferase). Finally, diabetes-induced increase in serum glucose and triglyceride level was significantly reduced by sulforaphane. Regardless of the fact that this study is limited by the use of one model of experimentally induced diabetes, the results obtained demonstrate for the first time that sulforaphane prevents diabetes-induced hepatic ferroptosis in vivo through the activation of Nrf2 signaling pathways. This nominates sulforaphane as a promising phytopharmaceutical for the prevention/alleviation of ferroptosis in diabetes-related pathologies.
Insights
Sulforaphane, an Nrf2 activator, prevents liver damage in diabetic mice by counteracting ferroptosis. This study shows sulforaphane protects against diabetes-induced hepatic ferroptosis via Nrf2 pathways.
Area of Science:
- Hepatology
- Metabolic Diseases
- Oxidative Stress Research
Background:
- Diabetic liver injury involves ferroptosis, a regulated cell death pathway.
- Nuclear factor (erythroid-derived-2)-related factor 2 (Nrf2) inactivation is linked to hepatic injury in diabetes.
Purpose of the Study:
- To investigate if sulforaphane, a known Nrf2 activator, can prevent diabetes-induced hepatic ferroptosis.
- To elucidate the underlying mechanisms of sulforaphane's protective effects against ferroptosis in diabetic livers.
Main Methods:
- Streptozotocin-induced diabetic mouse model.
- Administration of sulforaphane to diabetic and non-diabetic mice.
- Analysis of Nrf2 signaling pathway, ferroptosis markers, iron metabolism, glutathione levels, and liver damage indicators.
Main Results:
- Sulforaphane treatment reversed diabetes-induced Nrf2 inactivation and normalized expression of key antiferroptotic molecules.
- Sulforaphane decreased ferritinophagy, labile iron, lipid peroxides, and liver damage markers (fibrosis, ALT, AST).
- Sulforaphane significantly reduced serum glucose and triglyceride levels in diabetic mice.
Conclusions:
- Sulforaphane effectively prevents and alleviates diabetes-induced hepatic ferroptosis in vivo.
- The protective effects are mediated through the activation of Nrf2 signaling pathways.
- Sulforaphane shows potential as a phytopharmaceutical for managing ferroptosis in diabetes-related liver conditions.

