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Updated: Jun 21, 2025

Kupffer Cell Isolation for Nanoparticle Toxicity Testing
Published on: August 18, 2015
Infection history imprints prolonged changes to the epigenome, transcriptome and function of Kupffer cells
Mohamed Amer Musrati1, Benoit Stijlemans1, Abdulkader Azouz2
1Myeloid Cell Immunology Laboratory, VIB Center for Inflammation Research, Brussels, Belgium; Cellular and Molecular Immunology Lab, Brussels Center for Immunology (BCIM), Vrije Universiteit Brussel, Brussels, Belgium.
Background & Aims:
Liver macrophages fulfill various homeostatic functions and represent an essential line of defense against pathogenic insults. However, it remains unclear whether a history of infectious disease in the liver leads to long-term alterations to the liver macrophage compartment.
Methods:
We utilized a curable model of parasitic infection invoked by the protozoan parasite Trypanosoma brucei brucei to investigate whether infection history can durably reshape hepatic macrophage identity and function. Employing a combination of fate mapping, single-cell CITE-sequencing, single-nuclei multiome analysis, epigenomic analysis, and functional assays, we studied the alterations to the liver macrophage compartment during and after the resolution of infection.
Results:
We show that T. brucei brucei infection alters the composition of liver-resident macrophages, leading to the infiltration of monocytes that differentiate into various infection-associated macrophage populations with divergent transcriptomic profiles. Whereas infection-associated macrophages disappear post-resolution of infection, monocyte-derived macrophages engraft in the liver, assume a Kupffer cell (KC)-like profile and co-exist with embryonic KCs in the long-term. Remarkably, the prior exposure to infection imprinted an altered transcriptional program on post-resolution KCs that was underpinned by an epigenetic remodeling of KC chromatin landscapes and a shift in KC ontogeny, along with transcriptional and epigenetic alterations in their niche cells. This reprogramming altered KC functions and was associated with increased resilience to a subsequent bacterial infection.
Conclusion:
Our study demonstrates that a prior exposure to a parasitic infection induces trained immunity in KCs, reshaping their identity and function in the long-term.
Impact And Implications:
Although the liver is frequently affected during infections, and despite housing a major population of resident macrophages known as Kupffer cells (KCs), it is currently unclear whether infections can durably alter KCs and their niche cells. Our study provides a comprehensive investigation into the long-term impact of a prior, cured parasitic infection, unveiling long-lasting ontogenic, epigenetic, transcriptomic and functional changes to KCs as well as KC niche cells, which may contribute to KC remodeling. Our data suggest that infection history may continuously reprogram KCs throughout life with potential implications for subsequent disease susceptibility in the liver, influencing preventive and therapeutic approaches.
Insights
A prior parasitic infection reprograms liver Kupffer cells (KCs), inducing trained immunity. This long-term immune cell reprogramming enhances resilience to subsequent bacterial infections, impacting liver disease susceptibility.
Area of Science:
- Immunology
- Hepatology
- Cell Biology
Background:
- Liver macrophages, particularly Kupffer cells (KCs), are crucial for liver homeostasis and defense.
- The long-term impact of past liver infections on KC identity and function remains largely unknown.
Purpose of the Study:
- To investigate whether a history of parasitic infection durably reshapes the hepatic macrophage compartment.
- To understand the ontogenic, epigenetic, and transcriptomic changes in KCs and their niche cells post-infection.
Main Methods:
- Utilized a curable parasitic infection model (Trypanosoma brucei brucei).
- Employed fate mapping, single-cell CITE-sequencing, multiome analysis, epigenomic profiling, and functional assays.
- Analyzed macrophage alterations during and after infection resolution.
Main Results:
- Parasitic infection altered liver macrophage composition, with infiltrating monocytes differentiating into infection-associated populations.
- Monocyte-derived macrophages engrafted, adopting a KC-like profile and co-existing with embryonic KCs long-term.
- Prior infection induced lasting transcriptional and epigenetic reprogramming in KCs and niche cells, enhancing resilience to secondary bacterial infection.
Conclusions:
- A prior parasitic infection induces trained immunity in liver Kupffer cells, fundamentally reshaping their long-term identity and function.
- This reprogramming influences KC function and offers increased resilience against subsequent infections.
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