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Updated: May 23, 2025

Real Time Monitoring of Intracellular Bile Acid Dynamics Using a Genetically Encoded FRET-based Bile Acid Sensor
Published on: January 4, 2016
Disentangling Organ-Specific Roles of Farnesoid X Receptor in Bile Acid and Glucolipid Metabolism
Tingting Li1,2, Chenyang Fu1,2, Zhongzheng Tang1,2
1Department of Endocrine and Metabolic Diseases, Shanghai Institute of Endocrine and Metabolic Diseases, Ruijin Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Background And Aims:
The farnesoid X receptor (FXR) is an attractive pharmaceutical target for metabolic dysfunction-associated steatotic liver disease (MASLD). However, its tissue-specific roles in energy metabolism remain controversial, hindering the development of effective therapies. To address this, new approaches are required.
Methods:
A novel mouse model was developed to facilitate the re-expression of endogenous FXR in specific tissues on a global FXR-null background. Liver-specific and gut-specific FXR re-expression models were generated. Mice were subjected to a high-fat diet (HFD) for 12 weeks, after which metabolic indices, bile acid (BA) profiles, and gut microbiota composition were analysed. Antibiotic treatment was used to mimic germ-free conditions.
Results:
The resistance of FXR-null mice to MASLD and most HFD-induced metabolic disorders, including increased body weight, adiposity, hepatic triglyceride (TG) accumulation, and hyperglycemia, was reversed by liver, but not gut, FXR re-expression. Gut FXR re-expression restored the increased intestinal TG absorption in FXR-null mice by limiting 12OH BA synthesis and inhibiting intestinal microsomal triglyceride transfer protein (MTTP). Moreover, gut FXR activity was essential for gut microbiota-driven promotion of diet-induced obesity (DIO) and MASLD.
Conclusions:
Our study overcomes the limitations of traditional tissue-specific knockout models, providing a more comprehensive understanding of FXR's complex roles in metabolic homeostasis, encouraging the development of organ-specific FXR targeting strategy.
Insights
Farnesoid X receptor (FXR) liver re-expression reversed metabolic dysfunction-associated steatotic liver disease (MASLD) in mice. Gut FXR re-expression was crucial for regulating gut microbiota and preventing diet-induced obesity and MASLD.
Area of Science:
- Metabolic disease research
- Hepatology
- Gut microbiome studies
Background:
- Farnesoid X receptor (FXR) is a key regulator of metabolism.
- Its precise tissue-specific functions in metabolic dysfunction-associated steatotic liver disease (MASLD) are not fully understood.
- Developing targeted therapies for MASLD requires clarifying FXR's roles.
Purpose of the Study:
- To investigate the tissue-specific roles of FXR in diet-induced metabolic disorders.
- To develop a novel mouse model for studying FXR re-expression in specific tissues.
- To elucidate FXR's contribution to MASLD pathogenesis and energy metabolism.
Main Methods:
- Generated liver-specific and gut-specific FXR re-expression mouse models on a global FXR-null background.
- Administered a high-fat diet (HFD) for 12 weeks.
- Analyzed metabolic indices, bile acid profiles, gut microbiota, and used antibiotic treatment to mimic germ-free conditions.
Main Results:
- Liver-specific FXR re-expression reversed MASLD and HFD-induced metabolic disorders in FXR-null mice.
- Gut FXR re-expression normalized intestinal triglyceride absorption by modulating bile acid synthesis and inhibiting MTTP.
- Gut FXR activity was essential for gut microbiota-driven obesity and MASLD.
Conclusions:
- Novel mouse models enabled detailed investigation of tissue-specific FXR functions.
- FXR plays distinct, critical roles in both the liver and gut for metabolic homeostasis.
- Findings support the development of organ-specific FXR-targeting strategies for MASLD treatment.
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