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Myeloid Cell-Derived HB-EGF Drives Tissue Recovery After Pancreatitis
Hui-Ju Wen1, Shan Gao2, Yin Wang3
1Department of Molecular and Integrative Physiology, University of Michigan, Ann Arbor, Michigan.
Background & Aims:
Pancreatitis is a major cause of morbidity and mortality and is a risk factor for pancreatic tumorigenesis. Upon tissue damage, an inflammatory response, made up largely of macrophages, provides multiple growth factors that promote repair. Here, we examine the molecular pathways initiated by macrophages to promote pancreas recovery from pancreatitis.
Methods:
To induce organ damage, mice were subjected to cerulein-induced experimental pancreatitis and analyzed at various times of recovery. CD11b-DTR mice were used to deplete myeloid cells. Hbegff/f;LysM-Cre mice were used to ablate myeloid cell-derived heparin-binding epidermal growth factor (EGF)-like growth factor (HB-EGF). To ablate EGFR specifically during recovery, pancreatitis was induced in Egfrf/f;Ptf1aFlpO/+;FSF-Rosa26CAG-CreERT2 mice followed by tamoxifen treatment.
Results:
Macrophages infiltrating the pancreas in experimental pancreatitis make high levels of HB-EGF. Both depletion of myeloid cells and ablation of myeloid cell HB-EGF delayed recovery from experimental pancreatitis, resulting from a decrease in cell proliferation and an increase in apoptosis. Mechanistically, ablation of myeloid cell HB-EGF impaired epithelial cell DNA repair, ultimately leading to cell death. Soluble HB-EGF induced EGFR nuclear translocation and methylation of histone H4, facilitating resolution of DNA damage in pancreatic acinar cells in vitro. Consistent with its role as the primary receptor of HB-EGF, in vivo ablation of EGFR from pancreatic epithelium during recovery from pancreatitis resulted in accumulation of DNA damage.
Conclusions:
By using novel conditional knockout mouse models, we determined that HB-EGF derived exclusively from myeloid cells induces epithelial cell proliferation and EGFR-dependent DNA repair, facilitating pancreas healing after injury.
Insights
Macrophages promote pancreas healing after injury by releasing HB-EGF, which aids epithelial cell proliferation and DNA repair. This discovery offers new insights into pancreatitis recovery and potential therapeutic targets.
Area of Science:
- Gastroenterology
- Cell Biology
- Molecular Medicine
Background:
- Pancreatitis significantly contributes to illness and death, and it elevates the risk of pancreatic cancer.
- Macrophages are key players in the inflammatory response to tissue damage, releasing growth factors essential for organ repair.
- Understanding macrophage-driven molecular pathways is crucial for promoting pancreas recovery from pancreatitis.
Purpose of the Study:
- To investigate the role of macrophage-derived factors in pancreas recovery following pancreatitis.
- To elucidate the specific molecular mechanisms by which macrophages facilitate pancreas healing.
Main Methods:
- Cerulein-induced experimental pancreatitis in mice.
- Utilized CD11b-DTR mice for myeloid cell depletion.
- Generated Hbegff/f;LysM-Cre mice to ablate myeloid cell HB-EGF.
- Employed Egfrf/f;Ptf1aFlpO/+;FSF-Rosa26CAG-CreERT2 mice for conditional EGFR ablation during recovery.
Main Results:
- Myeloid cells in pancreatitis models produce high levels of HB-EGF.
- Depleting myeloid cells or ablating HB-EGF in these cells delayed pancreas recovery, reducing proliferation and increasing apoptosis.
- Myeloid cell-derived HB-EGF is essential for epithelial cell DNA repair, preventing cell death.
- HB-EGF signaling via EGFR promotes DNA repair in pancreatic acinar cells.
Conclusions:
- Myeloid cell-derived HB-EGF is critical for inducing epithelial cell proliferation and EGFR-dependent DNA repair.
- This process facilitates pancreas healing after injury, as demonstrated by conditional knockout mouse models.
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