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Published on: September 7, 2017
DNA methylation of Ad4BP/SF-1 suppresses Cyp11a1 and StAR transcripts in C2C12 myoblasts
Jumpei Fujiki1, Naoyuki Maeda2, Kosuke Yamaguchi1
1Laboratory of Veterinary Biochemistry, Department of Veterinary Medicine, Rakuno Gakuen University, Ebetsu, Hokkaido, Japan.
Abstract:
Steroidogenesis occurs locally in peripheral tissues and via adrenal and gonadal glands' biosynthesis. The C2C12 mouse myoblast cell line and rat skeletal muscles harbor a local steroidogenesis pathway for glucocorticoids, and corticosterone is biosynthesized from skeletal muscle cells. However, Cyp11a1 and StAR protein expressions are not observed in C2C12 cells or rat muscular tissues. In this context, this study investigated the relationship between DNA methylation and key steroidogenic genes. Bioinformatics analysis of methylated DNA immune precipitation showed that C2C12 myoblasts and myotubes did not have remarkable DNA methylated regions in the gene-body of Cyp11a1. However, a highly methylated region in the CpG island was detected in the intronic enhancer of Ad4BP/SF-1, known as the transcriptional factor for steroidogenic genes. After C2C12 myoblasts treatment with 5-aza-2-deoxycytidine, the gene expressions of Ad4BP/SF-1, Cyp11a1, and StAR were significantly time- and concentration-dependent upregulated. To clarify the contribution of Ad4BP/SF-1 on Cyp11a1 and StAR transcripts, we silenced Ad4BP/SF-1 during the 5-aza-2-deoxycytidine treatment in C2C12 myoblasts, resulting in significant suppression of both Cyp11a1 and StAR. Additionally, pregnenolone levels in the supernatants of C2C12 cells were enhanced by 5-aza-2-deoxycytidine treatment, whereas pregnenolone production by C2C12 myoblasts was significantly suppressed by Ad4BP/SF-1 knockdown. These results indicate that DNA methylation of Ad4BP/SF-1 might be involved in the downregulation of steroidogenic genes, such as Cyp11a1 and StAR in C2C12 myoblasts.
Insights
DNA methylation regulates steroidogenesis in C2C12 myoblasts. Demethylation of Ad4BP/SF-1 upregulates steroidogenic genes Cyp11a1 and StAR, impacting corticosterone biosynthesis.
Area of Science:
- Endocrinology
- Molecular Biology
- Epigenetics
Background:
- Steroidogenesis occurs in peripheral tissues and endocrine glands.
- C2C12 mouse myoblasts and rat skeletal muscles possess local glucocorticoid pathways.
- Key steroidogenic gene expressions (Cyp11a1, StAR) are absent in these tissues.
Purpose of the Study:
- Investigate the role of DNA methylation in regulating steroidogenic genes.
- Examine the relationship between Ad4BP/SF-1 methylation and steroidogenic gene expression.
- Determine the impact of demethylation on steroidogenesis in C2C12 myoblasts.
Main Methods:
- Bioinformatics analysis of methylated DNA immunoprecipitation.
- Treatment of C2C12 myoblasts with 5-aza-2-deoxycytidine (a demethylating agent).
- Ad4BP/SF-1 gene silencing via knockdown.
- Quantification of gene expression (Ad4BP/SF-1, Cyp11a1, StAR) and pregnenolone levels.
Main Results:
- Cyp11a1 gene body showed no significant DNA methylation, but Ad4BP/SF-1 intronic enhancer had a methylated CpG island.
- 5-aza-2-deoxycytidine treatment upregulated Ad4BP/SF-1, Cyp11a1, and StAR gene expressions in a time- and dose-dependent manner.
- Ad4BP/SF-1 knockdown suppressed Cyp11a1 and StAR expression and pregnenolone production, even after demethylation treatment.
Conclusions:
- DNA methylation of Ad4BP/SF-1 likely downregulates steroidogenic genes (Cyp11a1, StAR) in C2C12 myoblasts.
- Ad4BP/SF-1 is a crucial transcriptional factor for Cyp11a1 and StAR expression in this model.
- Epigenetic regulation via DNA methylation plays a significant role in local steroidogenesis.
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