FXR an emerging therapeutic target for the treatment of atherosclerosis

Andrea Mencarelli1, Stefano Fiorucci

  • 1Dipartimento di Medicina Clinica e Sperimentale, Università Degli Studi di Perugia, Perugia, Italy.

Insights

Farnesoid-X-receptor (FXR) activation impacts bile acid and lipid metabolism, potentially offering therapeutic benefits for atherosclerosis. However, its effects on HDL and bile acid synthesis require further clinical investigation.

Area of Science:

  • Biochemistry
  • Metabolic pathways
  • Cardiovascular disease research

Background:

  • Atherosclerosis is a major cause of mortality, with cholesterol-lowering therapies showing efficacy.
  • The farnesoid-X-receptor (FXR), activated by bile acids, plays a key role in metabolic regulation.
  • FXR influences bile acid synthesis, lipid metabolism, and glucose homeostasis.

Purpose of the Study:

  • To investigate the role of farnesoid-X-receptor (FXR) in atherosclerosis and metabolic regulation.
  • To explore the therapeutic potential of FXR agonists in managing atherosclerosis-related conditions.
  • To identify potential drawbacks of FXR modulation, such as effects on HDL and bile acid synthesis.

Main Methods:

  • Review of FXR's function in entero-hepatic tissues and its signaling pathways.
  • Analysis of FXR's effects on lipoprotein profiles and insulin resistance in murine models.
  • Evaluation of synthetic FXR agonists in preclinical atherosclerosis models.

Main Results:

  • FXR activation influences bile acid synthesis, lipogenesis, and lipoprotein clearance in rodents.
  • FXR deficiency leads to a pro-atherogenetic profile and insulin resistance in mice.
  • Synthetic FXR agonists show protective effects against atherosclerosis in mice but reduce HDL levels.

Conclusions:

  • FXR plays a complex role in metabolic regulation and atherosclerosis.
  • FXR agonists demonstrate potential in preclinical atherosclerosis models.
  • Clinical studies are needed to address the impact of FXR ligands on HDL and bile acid synthesis in humans due to species-specific metabolic differences.

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