TGR5 signaling mitigates parenteral nutrition-associated liver disease

Kent A Willis1, Charles K Gomes1,2, Prahlad Rao1

  • 1Department of Pediatrics, University of Tennessee Health Science Center, Memphis, Tennessee.

Insights

Takeda G protein receptor 5 (TGR5) signaling is crucial for liver health during parenteral nutrition (PN). Loss of TGR5 exacerbates PN-associated liver disease by disrupting bile acid homeostasis and increasing inflammation.

Area of Science:

  • Hepatology and Gastroenterology
  • Metabolic and Immune Regulation
  • Microbiome-Bile Acid Interactions

Background:

  • Parenteral nutrition (PN) can lead to progressive liver injury, particularly in newborns, termed PN-associated liver disease (PNALD).
  • The precise mechanisms underlying PNALD remain unclear, but disruptions in bile acid signaling are implicated.
  • Takeda G protein receptor 5 (TGR5) is a key bile acid receptor involved in metabolic and immune functions.

Purpose of the Study:

  • To investigate the role of TGR5 signaling in neonatal liver function during PN exposure.
  • To determine if TGR5 deficiency exacerbates PN-induced hepatic injury and cholestasis.
  • To elucidate the mechanistic links between TGR5, bile acid metabolism, and gut microbiota in PNALD.

Main Methods:

  • Analysis of plasma bile acid profiles in human newborns receiving prolonged PN.
  • Utilized TGR5 receptor-deficient (TGR5-/-) mice and wild-type (WT) controls exposed to PN.
  • Assessed liver parameters (weight, histology, enzymes), bile acid synthesis, serum bile acid composition, hepatic inflammation (IL-6, macrophages), and gut microbiota composition.

Main Results:

  • PN significantly increased liver weight, cholestasis, and hepatic stress enzymes in TGR5-/- mice compared to WT controls.
  • PN reduced bile acid synthesis genes and altered bile acid profiles (increased unconjugated primary and secondary bile acids) in TGR5-/- mice.
  • PN elevated hepatic IL-6 expression and macrophage infiltration in TGR5-/- mice, associated with increased *Bacteroides* and *Parabacteroides* in the gut microbiota.

Conclusions:

  • TGR5 signaling is essential for maintaining liver bile acid homeostasis during PN exposure.
  • Loss of TGR5 function is linked to biochemical evidence of cholestasis and PNALD in both humans and mice.
  • The gut microbiome's role in producing secondary bile acids that signal via TGR5 suggests that early-life or PN-induced microbiome alterations may contribute to PNALD development.