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TNF-α regulates diabetic macrophage function through the histone acetyltransferase MOF
Aaron D. denDekker, Frank M. Davis, Amrita D. Joshi, Sonya J. Wolf, Ronald Allen, Jay Lipinski, Brenda Nguyen, Joseph Kirma, Dylan Nycz, Jennifer Bermick, Bethany B. Moore, Johann E. Gudjonsson, Steven L. Kunkel, Katherine A. Gallagher
Aaron D. denDekker, Frank M. Davis, Amrita D. Joshi, Sonya J. Wolf, Ronald Allen, Jay Lipinski, Brenda Nguyen, Joseph Kirma, Dylan Nycz, Jennifer Bermick, Bethany B. Moore, Johann E. Gudjonsson, Steven L. Kunkel, Katherine A. Gallagher
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Research Article Immunology Inflammation

TNF-α regulates diabetic macrophage function through the histone acetyltransferase MOF

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Abstract

A critical component of wound healing is the transition from the inflammatory phase to the proliferation phase to initiate healing and remodeling of the wound. Macrophages are critical for the initiation and resolution of the inflammatory phase during wound repair. In diabetes, macrophages display a sustained inflammatory phenotype in late wound healing characterized by elevated production of inflammatory cytokines, such as TNF-α. Previous studies have shown that an altered epigenetic program directs diabetic macrophages toward a proinflammatory phenotype, contributing to a sustained inflammatory phase. Males absent on the first (MOF) is a histone acetyltransferase (HAT) that has been shown be a coactivator of TNF-α signaling and promote NF-κB–mediated gene transcription in prostate cancer cell lines. Based on MOF’s role in TNF-α/NF-κB–mediated gene expression, we hypothesized that MOF influences macrophage-mediated inflammation during wound repair. We used myeloid-specific Mof-knockout (Lyz2Cre Moffl/fl) and diet-induced obese (DIO) mice to determine the function of MOF in diabetic wound healing. MOF-deficient mice exhibited reduced inflammatory cytokine gene expression. Furthermore, we found that wound macrophages from DIO mice had elevated MOF levels and higher levels of acetylated histone H4K16, MOF’s primary substrate of HAT activity, on the promoters of inflammatory genes. We further identified that MOF expression could be stimulated by TNF-α and that treatment with etanercept, an FDA-approved TNF-α inhibitor, reduced MOF levels and improved wound healing in DIO mice. This report is the first to our knowledge to define an important role for MOF in regulating macrophage-mediated inflammation in wound repair and identifies TNF-α inhibition as a potential therapy for the treatment of chronic inflammation in diabetic wounds.

Authors

Aaron D. denDekker, Frank M. Davis, Amrita D. Joshi, Sonya J. Wolf, Ronald Allen, Jay Lipinski, Brenda Nguyen, Joseph Kirma, Dylan Nycz, Jennifer Bermick, Bethany B. Moore, Johann E. Gudjonsson, Steven L. Kunkel, Katherine A. Gallagher

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Figure 2

Macrophages from myeloid-deficient MOF mice demonstrate decreased NF-κB inflammatory genes.

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Macrophages from myeloid-deficient MOF mice demonstrate decreased NF-κB ...
(A) Representative figures showing Mof deletion in BMDMs and wound macrophages from Lyz2Cre Moffl/fl mice. BMDMs were derived from Lyz2Cre Moffl/fl or Moffl/fl mice. Wound macrophages were sorted by magnetic-activated cell sorting (MACS) from Lyz2Cre Moffl/fl or Moffl/fl mice on day 5 after wounding. Mof gene expression was measured by qPCR (n = 3 × 4 mice pooled/replicate, repeated twice). (B) Representative figures showing inflammatory cytokine gene expression in LPS-stimulated BMDMs. BMDMs were isolated from Lyz2Cre Moffl/fl or Moffl/fl mice and treated with LPS or vehicle control for 8 hours. Il1b, Tnf, and Nos2 gene expression was measured by qPCR (n = 3, repeated twice). (C) Representative figures showing baseline inflammatory cytokine gene expression in wound macrophages. Wound macrophages (CD11b+CD3–CD19–Ly6G–) were isolated from Lyz2Cre Moffl/fl or Moffl/fl mice on day 5 after wounding. Il1b (n = 3), Tnf (n = 3), and Nos2 (n = 4) expression was measured by qPCR (n = 3 mice pooled/replicate, repeated twice). (D) Representative figures showing antiinflammatory gene expression in wound macrophages. Wound macrophages (CD11b+CD3–CD19–Ly6G–) were isolated from Lyz2Cre Moffl/fl or Moffl/fl mice on day 5 after wounding. Il10, Arg1, and Ym1 expression was measured by qPCR (n = 3 × 3 mice pooled/replicate, repeated twice). A, C, and D were analyzed using a 2-tailed Student’s t test. B was analyzed using 2-way ANOVA followed by Holm-Šídák test for multiple comparisons.

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