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Updated: Jul 29, 2026

Bioenergetic Profile Experiment using C2C12 Myoblast Cells
Published on: December 6, 2010
Areca nut extract exposure disrupts myogenesis and metabolism in C2C12 cells
Chi-Wei Chen1, Tsung-Teng Huang2, Yan-Ru Chen3
1Department of Biology, College of Arts and Sciences, Appalachian State University, Boone, NC, USA.
Abstract:
Areca nut (AN), which is commonly consumed in Southeast Asia, contains bioactive compounds that may influence cellular functions. Accumulating evidence has revealed several health impacts of AN consumption, but the toxicological effects of areca nut extract (ANE) on muscle cells remain largely unexplored. Myogenesis, a critical process for muscle development and regeneration, is closely tied to metabolic activity, which governs the differentiation and function of myocytes. This study aimed to evaluate the effects of ANE on myogenesis in murine C2C12 myoblasts and differentiated myotubes. In ANE-treated C2C12 myoblasts, we observed a significant decrease in the intracellular glutamine level that was accompanied by decreased GSH levels, decreased mTOR signaling, and increased autophagy in myoblasts but not in differentiated myotubes. ANE treatment decreased glutamine and 6-phosphogluconate levels in both myoblasts and myotubes, suggesting the widespread suppression of amino acid and redox-related metabolic pathways. Moreover, ANE significantly altered the metabolomic profile, upregulating the levels of glycolysis and TCA cycle intermediates but reducing ATP levels, indicating impaired energy metabolism in differentiated myotubes. ANE also downregulated the expression of key metabolic genes, including those involved in glycolysis (AKR1B3 and LDHA), glycerol metabolism (GPD1 and GPD2), and nitrogen metabolism (GLUD1, ARG1, GS, and GLS1), indicating that ANE disrupts critical pathways involved in muscle cell metabolism and myogenesis. This study provides new insights into the mechanisms by which AN consumption affects muscle development, emphasizing the need for further research into the dietary and environmental factors influencing myogenesis.
Insights
Areca nut extract (ANE) impairs muscle cell development by disrupting metabolic pathways crucial for myogenesis. This study reveals ANE negatively impacts glutamine levels, energy production, and gene expression in muscle cells.
Area of Science:
- Muscle cell biology
- Toxicology
- Metabolomics
Background:
- Areca nut (AN) consumption is widespread in Southeast Asia, with known health impacts.
- The toxicological effects of areca nut extract (ANE) on muscle cells and myogenesis are not well understood.
- Myogenesis, vital for muscle development and repair, is linked to cellular metabolic activity.
Purpose of the Study:
- To investigate the effects of ANE on myogenesis in murine C2C12 myoblasts and differentiated myotubes.
- To elucidate the underlying metabolic and molecular mechanisms affected by ANE exposure.
Main Methods:
- Treatment of C2C12 myoblasts and myotubes with ANE.
- Metabolomic profiling to analyze changes in intracellular metabolites.
- Measurement of intracellular glutamine, GSH, and ATP levels.
- Analysis of mTOR signaling and autophagy.
- Gene expression analysis of key metabolic genes.
Main Results:
- ANE decreased intracellular glutamine and GSH levels, and mTOR signaling, while increasing autophagy in myoblasts.
- ANE suppressed amino acid and redox-related metabolic pathways, indicated by reduced glutamine and 6-phosphogluconate levels in both cell types.
- ANE impaired energy metabolism in differentiated myotubes, with increased glycolysis and TCA cycle intermediates but reduced ATP levels.
- ANE downregulated critical metabolic genes involved in glycolysis, glycerol metabolism, and nitrogen metabolism.
Conclusions:
- ANE disrupts key metabolic pathways essential for muscle cell metabolism and myogenesis.
- ANE negatively impacts glutamine metabolism, energy production, and gene expression in muscle cells.
- Further research is needed to understand the influence of AN consumption on muscle development and regeneration.
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