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Updated: Jun 3, 2026

Real Time Monitoring of Intracellular Bile Acid Dynamics Using a Genetically Encoded FRET-based Bile Acid Sensor
Published on: January 4, 2016
Proteomics for the discovery of nuclear bile acid receptor FXR targets
Cissi Gardmo1, Antonio Tamburro, Salvatore Modica
1Department of Translational Pharmacology, Consorzio Mario Negri Sud, Santa Maria Imbaro (CH), 66030, Italy. gardmo@negrisud.it
Abstract:
Nuclear receptors (NRs) are important pharmacological targets for a number of diseases, including cancer and metabolic disorders. To unmask the direct role of NR function it is fundamental to find the NR targets. During the last few years several NRs have been shown to affect microRNA expression, thereby modulating protein levels. The farnesoid X receptor (FXR), the main regulator of bile acid (BA) homeostasis, also regulates cholesterol, lipid and glucose metabolism. Here we used, for the first time, a proteomics approach on mice treated with a FXR ligand to find novel hepatic FXR targets. Nineteen spots with a more than two-fold difference in protein amounts were found by 2D-DIGE and 20 proteins were identified by MALDI-TOF MS as putative novel FXR targets. The most striking feature of the protein list was the great number of mitochondrial proteins, indicating a substantial impact of FXR activation on mitochondrial function in the liver. To examine if the differences found in the proteomics assay reflected differences at the mRNA level, a microarray assay was generated on hepatic samples from wild type and FXR(-/-) mice treated with a FXR ligand and compared to vehicle treatment. At least six proteins were shown to be regulated only at a post-transcriptional level. In conclusion, our study provides the impetus to include proteomic analysis for the identification of novel targets of transcription factors, such as NRs. This article is part of a Special Issue entitled: Translating nuclear receptors from health to disease.
Insights
Proteomics identified novel liver targets for the farnesoid X receptor (FXR), revealing its significant impact on mitochondrial function. This highlights proteomics as crucial for discovering nuclear receptor targets.
Area of Science:
- Endocrinology and Metabolism
- Molecular Biology
- Proteomics
Background:
- Nuclear receptors (NRs) are key drug targets for diseases like cancer and metabolic disorders.
- Identifying direct NR targets is crucial for understanding their function.
- FXR regulates bile acid, cholesterol, lipid, and glucose metabolism.
Purpose of the Study:
- To identify novel hepatic FXR targets using a proteomics approach.
- To investigate the impact of FXR activation on liver protein expression.
- To explore post-transcriptional regulation by FXR.
Main Methods:
- Proteomics analysis using 2D-DIGE and MALDI-TOF MS on mice treated with an FXR ligand.
- Microarray analysis of hepatic samples from wild type and FXR(-/-) mice.
- Comparison of protein and mRNA levels to identify post-transcriptional regulation.
Main Results:
- Identified 20 putative novel FXR targets, with a notable enrichment of mitochondrial proteins.
- Demonstrated a significant impact of FXR activation on hepatic mitochondrial function.
- Found at least six proteins regulated solely at the post-transcriptional level.
Conclusions:
- Proteomic analysis is valuable for discovering novel NR targets.
- FXR significantly influences liver mitochondrial function.
- FXR exerts post-transcriptional control over specific protein targets.
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