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Transcriptional Control of Trpm6 by the Nuclear Receptor FXR
Eun Young Kim1, Jae Man Lee1,2
1Department of Biochemistry and Cell Biology, Cell and Matrix Research Institute, School of Medicine, Kyungpook National University, Daegu 41944, Korea.
Abstract:
Farnesoid x receptor (FXR) is a nuclear bile acid receptor that belongs to the nuclear receptor superfamily. It plays an essential role in bile acid biosynthesis, lipid and glucose metabolism, liver regeneration, and vertical sleeve gastrectomy. A loss of the FXR gene or dysregulations of FXR-mediated gene expression are associated with the development of progressive familial intrahepatic cholestasis, tumorigenesis, inflammation, and diabetes mellitus. Magnesium ion (Mg2+) is essential for mammalian physiology. Over 600 enzymes are dependent on Mg2+ for their activity. Here, we show that the Trpm6 gene encoding a Mg2+ channel is a direct FXR target gene in the intestinal epithelial cells of mice. FXR expressed in the intestinal epithelial cells is absolutely required for sustaining a basal expression of intestinal Trpm6 that can be robustly induced by the treatment of GW4064, a synthetic FXR agonist. Analysis of FXR ChIP-seq data revealed that intron regions of Trpm6 contain two prominent FXR binding peaks. Among them, the proximal peak from the transcription start site contains a functional inverted repeat 1 (IR1) response element that directly binds to the FXR-RXRα heterodimer. Based on these results, we proposed that an intestinal FXR-TRPM6 axis may link a bile acid signaling to Mg2+ homeostasis.
Insights
The farnesoid X receptor (FXR) directly regulates the Trpm6 gene in mouse intestines. This discovery reveals a novel FXR-TRPM6 pathway connecting bile acid signaling to magnesium homeostasis.
Area of Science:
- Molecular Biology
- Physiology
- Genetics
Background:
- Farnesoid X receptor (FXR) is a nuclear bile acid receptor crucial for bile acid biosynthesis, lipid/glucose metabolism, and liver regeneration.
- FXR dysregulation is linked to cholestasis, tumorigenesis, inflammation, and diabetes.
- Magnesium ions (Mg2+) are vital for mammalian physiology, with over 600 enzymes requiring Mg2+.
Purpose of the Study:
- To investigate the role of FXR in regulating magnesium homeostasis.
- To identify direct FXR target genes involved in Mg2+ transport in the intestine.
Main Methods:
- Analysis of FXR ChIP-seq data in mouse intestinal epithelial cells.
- Investigating the effect of a synthetic FXR agonist (GW4064) on Trpm6 expression.
- Identifying FXR binding sites and response elements within the Trpm6 gene.
Main Results:
- The Trpm6 gene, encoding a Mg2+ channel, was identified as a direct FXR target in mouse intestinal epithelial cells.
- FXR is essential for basal Trpm6 expression, which can be induced by GW4064.
- FXR binds to specific intron regions of Trpm6, including a functional inverted repeat 1 (IR1) response element.
Conclusions:
- An intestinal FXR-TRPM6 axis is proposed, linking bile acid signaling to magnesium (Mg2+) homeostasis.
- This finding provides new insights into the regulation of mineral balance by nuclear receptors.
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