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Published on: November 27, 2019
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.
Abstract:
Bile acid receptors regulate the metabolic and immune functions of circulating enterohepatic bile acids. This process is disrupted by administration of parenteral nutrition (PN), which may induce progressive hepatic injury for unclear reasons, especially in the newborn, leading to PN-associated liver disease. To explore the role of bile acid signaling on neonatal hepatic function, we initially observed that Takeda G protein receptor 5 (TGR5)-specific bile acids were negatively correlated with worsening clinical disease markers in the plasma of human newborns with prolonged PN exposure. To test our resulting hypothesis that TGR5 regulates critical liver functions to PN exposure, we used TGR5 receptor deficient mice (TGR5-/-). We observed PN significantly increased liver weight, cholestasis, and serum hepatic stress enzymes in TGR5-/- mice compared with controls. Mechanistically, PN reduced bile acid synthesis genes in TGR5-/-. Serum bile acid composition revealed that PN increased unconjugated primary bile acids and secondary bile acids in TGR5-/- mice, while increasing conjugated primary bile acid levels in TGR5-competent mice. Simultaneously, PN elevated hepatic IL-6 expression and infiltrating macrophages in TGR5-/- mice. However, the gut microbiota of TGR5-/- mice compared with WT mice following PN administration displayed highly elevated levels of Bacteroides and Parabacteroides, and possibly responsible for the elevated levels of secondary bile acids in TGR5-/- animals. Intestinal bile acid transporters expression was unchanged. Collectively, this suggests TGR5 signaling specifically regulates fundamental aspects of liver bile acid homeostasis during exposure to PN. Loss of TGR5 is associated with biochemical evidence of cholestasis in both humans and mice on PN.NEW & NOTEWORTHY Parenteral nutrition is associated with deleterious metabolic outcomes in patients with prolonged exposure. Here, we demonstrate that accelerated cholestasis and parental nutrition-associated liver disease (PNALD) may be associated with deficiency of Takeda G protein receptor 5 (TGR5) signaling. The microbiome is responsible for production of secondary bile acids that signal through TGR5. Therefore, collectively, these data support the hypothesis that a lack of established microbiome in early life or under prolonged parenteral nutrition may underpin disease development and PNALD.

