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Updated: Apr 19, 2026

Bile Duct Ligation in Mice: Induction of Inflammatory Liver Injury and Fibrosis by Obstructive Cholestasis
Published on: February 10, 2015
Microbial Monotherapy With Leuconostoc sp LB-P8 Improves Inflammation and Fibrosis in Mouse Primary Sclerosing
Kihyoun Park1, Joon Yong Kim1, Seong Woon Roh1
1R&D Center, LISCure Bioscience, Seongnam-si, Republic of Korea.
Background & Aims:
Primary sclerosing cholangitis (PSC) is a prototypical disease with an impaired gut-liver axis, frequently associated with inflammatory bowel disease, and linked to microbial dysbiosis. However, how microbes influence PSC progression remains unclear. We identified a novel L sp. (LB-P8) with potential anti-fibrotic properties via inhibition of transforming growth factor beta-1 (TGF-β)/SMAD signaling and investigated its therapeutic efficacy and mechanisms in mouse PSC models.
Methods:
Human intestinal cells were cultured with or without LB-P8 to assess metabolite profiles (untargeted ultra-performance liquid chromatography-tandem mass spectrometry) and gene expression in co-cultured myofibroblasts and macrophages (reverse transcription-quantitative polymerase chain reaction). LB-P8 was orally gavaged following disease onset in three cholestatic models: bile duct ligation (BDL), 3,5-diethoxycarbonyl-1,4-dihydrocollidine (DDC) feeding, and the Mdr2-/- mouse. Hepatic injury, inflammation, and fibrosis were assessed by serum alanine aminotransferase and alkaline phosphatase, histology, immunofluorescence, Picrosirius red staining, and reverse transcription-quantitative polymerase chain reaction. Nanostring GeoMX spatial transcriptomic analysis was performed on DDC-fed liver. LB-P8 was also tested in dextran sodium sulfate (DSS)-induced colitis.
Results:
Metabolomic profiling of LB-P8 cultures revealed increased detection of 10 metabolites involved in anti-fibrosis and anti-inflammation. RNA sequencing analysis of hepatic stellate cells showed downregulation of TGF-β, epithelial-mesenchymal transition (EMT,) and integrin signaling pathways. LB-P8 reduced liver fibrosis in BDL, DDC-fed, and Mdr2-/- mouse models as evident by ∼50% lower Picrosirius red staining and decreased expression of Col1a1 and Timp1. In Mdr2-/- and DDC-fed mice, LB-P8 reduced periportal macrophage number (F4/80; ∼30%). GeoMX spatial transcriptomics revealed reduced TGF-β1 in cholangiocyte and myofibroblast regions. Finally, LB-P8 suppressed expression of colonic markers of inflammation and fibrosis in the DSS model of bowel injury.
Conclusions:
LB-P8 ameliorates cholestatic liver disease progression by reducing TGF-β-mediated fibroblast activation, and periportal accumulation of macrophages. Targeting the gut-liver axis with LB-P8 may represent a novel therapeutic strategy for PSC.
Insights
A novel bacterium, Leuconostoc sp. (LB-P8), shows promise in treating primary sclerosing cholangitis (PSC) by reducing liver fibrosis and inflammation. This gut-liver axis therapy targets key fibrotic pathways, offering a new therapeutic avenue for PSC patients.
Area of Science:
- Microbiology
- Hepatology
- Immunology
Background:
- Primary sclerosing cholangitis (PSC) involves gut-liver axis dysfunction and microbial dysbiosis.
- The precise role of microbes in PSC progression remains incompletely understood.
Purpose of the Study:
- To identify novel microbial therapeutics for PSC.
- To investigate the anti-fibrotic and anti-inflammatory mechanisms of Leuconostoc sp. (LB-P8).
Main Methods:
- Assessed metabolite profiles and gene expression in human intestinal cells treated with LB-P8.
- Administered LB-P8 orally to mouse models of cholestatic liver disease (BDL, DDC, Mdr2-/-).
- Evaluated liver injury, inflammation, fibrosis, and gut inflammation (DSS model).
Main Results:
- LB-P8 treatment increased anti-fibrotic/anti-inflammatory metabolites and downregulated pro-fibrotic signaling in liver cells.
- LB-P8 significantly reduced liver fibrosis and periportal macrophage accumulation in multiple cholestatic mouse models.
- Spatial transcriptomics revealed reduced TGF-β1 signaling in key liver cell regions.
Conclusions:
- LB-P8 ameliorates cholestatic liver disease by inhibiting TGF-β-mediated fibroblast activation and macrophage accumulation.
- Targeting the gut-liver axis with LB-P8 presents a potential novel therapeutic strategy for PSC.

