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Published on: May 13, 2016
Phocaeicola coprocola attenuates liver fibrosis by modulating extracellular matrix remodeling
Kyeong Jin Lee1, Jeong Ha Park1, Hyunjoon Park1
1Institute for Liver and Digestive Diseases, Hallym University, Chuncheon, Republic of Korea.
Abstract:
Chronic liver diseases, including metabolic dysfunction-associated steatotic liver disease (MASLD), frequently progress to liver fibrosis, yet effective antifibrotic therapies remain limited. Here, we investigated the therapeutic potential of the commensal bacterium Phocaeicola coprocola using Western diet (WD)-induced MASLD and DDC + TAA-induced fibrosis murine models. In the WD model, P. coprocola administration attenuated hepatic steatosis, reduced lipogenic gene expression, and improved metabolic and histological parameters. In contrast, in the DDC + TAA model of advanced fibrosis, P. coprocola significantly reduced cholestatic markers and fibrosis severity. Mechanistically, these antifibrotic effects occurred independently of broad suppression of inflammatory mediators or upstream TGF-β-Smad signaling, and were instead associated with selective downregulation of extracellular matrix (ECM)-related fibrogenic programs, including Col1a1, Col3a1, and Mmp2. Notably, these effects were observed even in the absence of detectable gut colonization, suggesting that stable engraftment is not required for therapeutic activity. P. coprocola also enhanced colonic epithelial barrier-related gene expression and host-microbial metabolic signaling. In humans, circulating ECM remodeling markers (PIIINP, MMP2, and TIMP1) were associated with fibrosis severity, supporting the translational relevance of ECM-targeted mechanisms. Collectively, these findings identify P. coprocola as a selective modulator of ECM remodeling that uncouples fibrotic output from upstream inflammatory signaling, highlighting its potential as a microbiome-based therapeutic strategy for liver fibrosis across multiple disease etiologies.
Insights
Phocaeicola coprocola shows promise for treating liver fibrosis by selectively reducing extracellular matrix production. This microbiome-based therapy may offer new options for metabolic dysfunction-associated steatotic liver disease and other fibrotic conditions.
Area of Science:
- Microbiology
- Hepatology
- Gastroenterology
Background:
- Chronic liver diseases, including metabolic dysfunction-associated steatotic liver disease (MASLD), often progress to liver fibrosis.
- Effective antifibrotic therapies are currently limited, necessitating novel therapeutic strategies.
Purpose of the Study:
- To investigate the therapeutic potential of the commensal bacterium Phocaeicola coprocola in murine models of MASLD and liver fibrosis.
- To elucidate the mechanisms underlying P. coprocola's antifibrotic effects.
Main Methods:
- Utilized Western diet-induced MASLD and DDC+TAA-induced fibrosis murine models.
- Administered P. coprocola and assessed hepatic steatosis, fibrosis severity, cholestatic markers, and gene expression.
- Analyzed extracellular matrix (ECM) remodeling markers and host-microbial signaling pathways.
Main Results:
- P. coprocola attenuated hepatic steatosis and improved metabolic parameters in the MASLD model.
- In fibrosis models, P. coprocola reduced cholestatic markers and fibrosis severity by selectively downregulating ECM-related fibrogenic programs (Col1a1, Col3a1, Mmp2).
- Therapeutic effects were observed without requiring stable gut colonization, and were associated with enhanced colonic epithelial barrier function and host-microbial signaling.
Conclusions:
- Phocaeicola coprocola demonstrates significant therapeutic potential for liver fibrosis, acting as a selective modulator of ECM remodeling.
- This microbiome-based approach offers a novel strategy for treating liver fibrosis across various etiologies, independent of broad anti-inflammatory or TGF-β-Smad pathway suppression.
- Findings support the translational relevance of ECM-targeted mechanisms in human liver fibrosis.
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