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.

Abstract

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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