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Activated cholangiocytes release macrophage-polarizing extracellular vesicles bearing the DAMP S100A11
Tomohiro Katsumi1, Maria Eugenia Guicciardi1, Adiba Azad1
1Division of Gastroenterology and Hepatology and the Mayo Clinic Center for Cell Signaling in Gastroenterology, Mayo Clinic, Rochester, Michigan.
Abstract:
In mouse models of biliary tract diseases, macrophages are recruited to the periductal milieu and promote injury and cholestasis. Although cell necrosis with release of biomolecules termed damage-associated molecular patterns (DAMPs) promotes recruitment and activation of macrophages, necrosis was not observed in these studies. Because extracellular vesicles (EVs) are important in cell-to-cell communication, we postulated that activated cholangiocytes may release EVs containing DAMPs as cargo. Both the human (NHC) and mouse cholangiocyte (603B) cell lines display constitutive activation with mRNA expression of chemokines. Proteomic analysis revealed that EVs from both cell lines contained the DAMP S100A11, a ligand for the receptor for advanced glycation end products (RAGE). Bone marrow-derived macrophages (BMDM) incubated with EVs derived from the mouse 603B cell line increased mRNA expression of proinflammatory cytokines. Genetic or pharmacologic inhibition of RAGE reduced BMDM expression of proinflammatory cytokines treated with EVs. RAGE signaling resulted in activation of the canonical NF-κB pathway, and consistently, proinflammatory cytokine expression was blunted by the IKKα/β inhibitor TPCA-1 in BMDM incubated with EVs. We also demonstrated that primary mouse cholangiocyte-derived organoids express chemokines indicating cholangiocyte activation, release EVs containing S100A11, and stimulate proinflammatory cytokine expression in BMDM by a RAGE-dependent pathway. In conclusion, these observations identify a non-cell death mechanism for cellular release of DAMPs by activated cholangiocytes, namely by releasing DAMPs as EV cargo. These data also suggest RAGE inhibitors may be salutary in macrophage-associated inflammatory diseases of the bile ducts.
Insights
Activated cholangiocytes release extracellular vesicles (EVs) carrying damage-associated molecular patterns (DAMPs), like S100A11, to activate macrophages via the receptor for advanced glycation end products (RAGE). This pathway promotes bile duct inflammation without cell death.
Area of Science:
- Hepatology
- Immunology
- Cell Biology
Background:
- Macrophages promote biliary tract diseases by responding to damage-associated molecular patterns (DAMPs).
- Cholangiocyte activation and macrophage recruitment are key features, but the mechanism of DAMP release without cell necrosis was unclear.
Purpose of the Study:
- To investigate if activated cholangiocytes release extracellular vesicles (EVs) containing DAMPs.
- To determine the role of these EVs and the receptor for advanced glycation end products (RAGE) in macrophage activation and biliary inflammation.
Main Methods:
- Proteomic analysis of EVs from human and mouse cholangiocyte cell lines.
- Incubation of bone marrow-derived macrophages (BMDM) with EVs and assessment of cytokine expression.
- Genetic and pharmacologic inhibition of RAGE and NF-κB pathway signaling.
- Analysis of primary mouse cholangiocyte-derived organoids.
Main Results:
- EVs from activated cholangiocytes contained the DAMP S100A11, a RAGE ligand.
- EVs stimulated proinflammatory cytokine expression in BMDM.
- RAGE inhibition and NF-κB pathway blockade reduced this inflammatory response.
- Primary cholangiocyte organoids released S100A11-containing EVs that activated BMDM via RAGE.
Conclusions:
- Activated cholangiocytes release DAMPs, such as S100A11, via EVs, representing a non-cell death mechanism.
- This EV-mediated DAMP release activates macrophages through RAGE signaling, contributing to biliary inflammation.
- RAGE inhibitors may offer a therapeutic strategy for macrophage-associated biliary diseases.
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