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Hemolysis transforms liver macrophages into antiinflammatory erythrophagocytes
Marc Pfefferlé, Giada Ingoglia, Christian A. Schaer, Ayla Yalamanoglu, Raphael Buzzi, Irina L. Dubach, Ge Tan, Emilio Y. López-Cano, Nadja Schulthess, Kerstin Hansen, Rok Humar, Dominik J. Schaer, Florence Vallelian
Marc Pfefferlé, Giada Ingoglia, Christian A. Schaer, Ayla Yalamanoglu, Raphael Buzzi, Irina L. Dubach, Ge Tan, Emilio Y. López-Cano, Nadja Schulthess, Kerstin Hansen, Rok Humar, Dominik J. Schaer, Florence Vallelian
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Research Article Hematology

Hemolysis transforms liver macrophages into antiinflammatory erythrophagocytes

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Abstract

During hemolysis, macrophages in the liver phagocytose damaged erythrocytes to prevent the toxic effects of cell-free hemoglobin and heme. It remains unclear how this homeostatic process modulates phagocyte functions in inflammatory diseases. Using a genetic mouse model of spherocytosis and single-cell RNA sequencing, we found that erythrophagocytosis skewed liver macrophages into an antiinflammatory phenotype that we defined as MarcohiHmoxhiMHC class IIlo erythrophagocytes. This phenotype transformation profoundly mitigated disease expression in a model of an anti-CD40–induced hyperinflammatory syndrome with necrotic hepatitis and in a nonalcoholic steatohepatitis model, representing 2 macrophage-driven sterile inflammatory diseases. We reproduced the antiinflammatory erythrophagocyte transformation in vitro by heme exposure of mouse and human macrophages, yielding a distinctive transcriptional signature that segregated heme-polarized from M1- and M2-polarized cells. Mapping transposase-accessible chromatin in single cells by sequencing defined the transcription factor NFE2L2/NRF2 as a critical driver of erythrophagocytes, and Nfe2l2/Nrf2 deficiency restored heme-suppressed inflammation. Our findings point to a pathway that regulates macrophage functions to link erythrocyte homeostasis with innate immunity.

Authors

Marc Pfefferlé, Giada Ingoglia, Christian A. Schaer, Ayla Yalamanoglu, Raphael Buzzi, Irina L. Dubach, Ge Tan, Emilio Y. López-Cano, Nadja Schulthess, Kerstin Hansen, Rok Humar, Dominik J. Schaer, Florence Vallelian

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Figure 3

Chromatin accessibility and transcription factor motif enrichment in erythrophagocytes.

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Chromatin accessibility and transcription factor motif enrichment in ery...
Single-cell ATAC sequencing data of nonparenchymal liver cell suspensions enriched for macrophages with F4/80 antibody–coated magnetic Dynabeads from Sptasph/sph and Sptawt/wt mice. (A) UMAP plots showing all cells colored by cell origin (Sptasph/sph red, Sptawt/wt blue). (B) UMAP plots showing all cells colored by cell type. Cell type was attributed based on the pseudogene expression of each cell for specific cell type markers displayed in Supplemental Figure 4B. (C) Volcano plot displaying the results of the motif enrichment analysis in Sptasph/sph erythrophagocytes compared with Sptawt/wt KCs (red, 119 motifs in total) and Sptawt/wt KCs compared with Sptasph/sph erythrophagocytes (blue, 119 motifs in total). (D) Position weight matrix plot of NRF2 motif (MA0150.2), BACH1 motif (MA0591.1), and ARNT motif (MA0004.1) from the JASPAR 2018 database with the corresponding P value from the motif enrichment analysis. (E) Coverage plots around the coding region for 4 MHC class II genes (H2-Ab1, H2-Aa, H2-Eb1, and H2-Eb2), Marco (with 20,000 kb upstream and downstream), and Hmox1 (with 20,000 kb upstream and downstream) in Sptasph/sph erythrophagocytes compared with Sptawt/wt KCs.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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