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The effect of enterolactone on sphingolipid pathway and hepatic insulin resistance development in HepG2 cells
Tomasz Charytoniuk1, Nicoletta Iłowska1, Klaudia Berk1
1Department of Physiology, Medical University of Bialystok, Mickiewicza St. 2C, 15-222 Bialystok, Poland.
Aims:
Obesity and type 2 diabetes mellitus, correlate with increased tissue concentration of sphingolipids, which directly interfere with insulin signaling pathway. Phytoestrogens are a group of plant-derived compounds that have been studied in the case of metabolic disorders treatment. Therefore, the aim of this study was to ascertain whether enterolactone (ENL), a commonly known phytoestrogen, may affect sphingolipid metabolism and decrease hepatic insulin resistance development in a lipid overload state.
Main Methods:
The study was conducted on HepG2 cells incubated with ENL and/or palmitic acid (PA) for 16 h. Intra- and extracellular sphingolipid concentrations were assessed by high performance liquid chromatography. The expression of sphingolipid pathway enzymes, apoptosis and insulin signaling pathway proteins and glucose metabolism regulators were evaluated by Western Blot.
Key Findings:
In HepG2 cells, a considerable augmentation of intracellular ceramide and sphingosine concentration in ENL with PA group were indicated with simultaneous increase in extracellular ceramide concentration. The ENL treatment increased expression of selected enzymes from de novo ceramide synthesis pathway with lower expression of ceramide transfer protein. We also observed a decreased expression of insulin-stimulated phosphorylation of AKT and AMPK after exposure to ENL with PA. Our research demonstrated that ENL with PA resulted in an increased expression of caspase-3.
Significance:
Enterolactone, in a higher fatty acids availability, led to the development of hepatic IR in HepG2 cells. This phenomenon may be the result of elevated intracellular ceramide accumulation caused by increased de novo synthesis pathway what led to enhanced apoptosis of HepG2 cells.
Insights
Phytoestrogen enterolactone (ENL) exacerbated hepatic insulin resistance in HepG2 cells by increasing ceramide accumulation and apoptosis, particularly under high fatty acid conditions. This suggests ENL may worsen metabolic disorders when combined with lipid overload.
Area of Science:
- Biochemistry
- Cell Biology
- Metabolic Research
Background:
- Obesity and type 2 diabetes mellitus are linked to elevated sphingolipids that impair insulin signaling.
- Phytoestrogens are plant compounds investigated for metabolic disorder treatment.
- Enterolactone (ENL) is a phytoestrogen with potential metabolic effects.
Purpose of the Study:
- To investigate if enterolactone (ENL) affects sphingolipid metabolism.
- To determine if ENL influences hepatic insulin resistance in a lipid overload state.
Main Methods:
- HepG2 cells were treated with ENL and/or palmitic acid (PA).
- Sphingolipid levels were measured using high-performance liquid chromatography.
- Protein expression related to sphingolipid synthesis, apoptosis, and insulin signaling was assessed via Western Blot.
Main Results:
- ENL with PA increased intracellular ceramide and sphingosine, and extracellular ceramide in HepG2 cells.
- ENL treatment upregulated de novo ceramide synthesis enzymes but downregulated ceramide transfer protein.
- Exposure to ENL and PA decreased insulin-stimulated phosphorylation of AKT and AMPK, and increased caspase-3 expression.
Conclusions:
- Enterolactone promotes hepatic insulin resistance in HepG2 cells under high fatty acid conditions.
- Elevated intracellular ceramide accumulation via increased de novo synthesis appears to drive this insulin resistance.
- Enhanced apoptosis of HepG2 cells is a potential consequence of ENL and lipid overload.
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