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.

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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