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Reverse Yeast Two-hybrid System to Identify Mammalian Nuclear Receptor Residues that Interact with Ligands and/or Antagonists
Published on: November 16, 2013
Natural structural variants of the nuclear receptor farnesoid X receptor affect transcriptional activation
Yanqiao Zhang1, Heidi R Kast-Woelbern, Peter A Edwards
1Department of Biological Chemistry, University of California, Los Angeles, California 90095, USA.
Abstract:
The Farnesoid X receptor (FXR) is a member of the nuclear hormone receptor superfamily that has been shown to play an important role in bile acid and cholesterol homeostasis. Here we identify four murine FXR transcripts, derived from a single gene, that encode four isoforms, FXRalpha1, FXRalpha2, FXRbeta1, and FXRbeta2. FXRalpha and FXRbeta differ at their amino terminus, and FXRalpha1 and FXRbeta1 have a four-amino acid residue insertion in the hinge region immediately adjacent to the DNA binding domain. Real time PCR and 5'-rapid amplification of cDNA ends followed by Southern blotting reveal that these four transcripts are expressed differentially in liver, intestine, kidney, adrenals, stomach, fat, and heart. Electrophoretic mobility shift assays demonstrate that FXRalpha2 and FXRbeta2 bind to FXR response elements with a higher affinity as compared with FXRalpha1 and FXRbeta1, suggesting that the four-amino acid insert may affect FXR function. Consistent with this idea, the results of transient transfection experiments demonstrate that the four FXR isoforms differentially transactivated a number of promoter-reporter genes; activation of an ileal bile acid-binding protein promoter-reporter gene varied 20-fold depending on the FXR isoform; the rank order of activation was FXRbeta2 > FXRalpha2 FXRalpha1 = FXRbeta1. In contrast, SHP reporter or BSEP reporter genes were activated to similar degrees by each of the FXR isoforms. Finally, NIH3T3 cells were stably infected with individual murine FXR isoforms, and the cells were treated with FXR ligands. The endogenous ileal bile acid-binding protein gene was activated by the four FXR isoforms with the same rank order as seen in transfections. This effect was gene-specific, since induction of bile salt export pump mRNA was independent of the FXR isoform. These observations suggest that there are four distinct murine FXR isoforms that differentially regulate gene expression in numerous tissues in vivo.
Insights
Researchers discovered four distinct mouse Farnesoid X receptor (FXR) isoforms. These isoforms differentially regulate gene expression, impacting bile acid and cholesterol homeostasis in various tissues.
Area of Science:
- Molecular Biology
- Endocrinology
- Genetics
Background:
- The Farnesoid X receptor (FXR) is a nuclear hormone receptor crucial for bile acid and cholesterol metabolism.
- FXR plays a significant role in maintaining metabolic homeostasis.
Purpose of the Study:
- To identify and characterize distinct murine FXR isoforms.
- To investigate the functional differences and tissue-specific expression of these FXR isoforms.
Main Methods:
- Identification of four murine FXR transcripts (FXRalpha1, FXRalpha2, FXRbeta1, FXRbeta2) from a single gene.
- Analysis of differential gene expression using real-time PCR and 5'-RACE.
- Assessment of DNA binding affinity via electrophoretic mobility shift assays.
- Functional analysis of isoform-specific transactivation using transient transfection and stable cell line experiments.
Main Results:
- Four FXR isoforms (FXRalpha1, FXRalpha2, FXRbeta1, FXRbeta2) were identified, differing in their amino terminus and hinge regions.
- Isoforms FXRalpha2 and FXRbeta2 exhibited higher DNA binding affinity compared to FXRalpha1 and FXRbeta1.
- Differential transactivation of target genes, including the ileal bile acid-binding protein (IBABP) promoter, with varying potency among isoforms.
- Gene-specific regulation, with IBABP induction showing isoform-dependent effects, while bile salt export pump (BSEP) induction was isoform-independent.
Conclusions:
- There are four distinct murine FXR isoforms with unique functional properties.
- These isoforms exhibit differential regulation of gene expression in multiple tissues.
- The observed isoform-specific effects contribute to the complex regulation of bile acid and cholesterol homeostasis.
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