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TNF-α represses fibroblast to myofibroblast transition through the histone methyltransferase Setdb2
Tyler M. Bauer, Kevin D. Mangum, Samuel D. Buckley, James Shadiow, Amrita D. Joshi, Christopher O. Audu, Jadie Y. Moon, Lindsey D. Hughes, Rachel Bogel, Lam C. Tsoi, Qinmennge Li, He Zhang, Steven Kunkel, Johann E. Gudjonsson, Frank M. Davis, Katherine A. Gallagher
Tyler M. Bauer, Kevin D. Mangum, Samuel D. Buckley, James Shadiow, Amrita D. Joshi, Christopher O. Audu, Jadie Y. Moon, Lindsey D. Hughes, Rachel Bogel, Lam C. Tsoi, Qinmennge Li, He Zhang, Steven Kunkel, Johann E. Gudjonsson, Frank M. Davis, Katherine A. Gallagher
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Research Article Dermatology Immunology

TNF-α represses fibroblast to myofibroblast transition through the histone methyltransferase Setdb2

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Abstract

Fibroblast to myofibroblast transition is a critical event required for effective tissue repair. In pathologic wound repair processes, such as type 2 diabetes (T2D), fibroblast to myofibroblast transition is impaired. The exact factors that control this transition in wounds are unclear. Here, using human tissue and murine transgenic models, we show that the histone methyltransferase SETDB2 is elevated in diabetic wound fibroblasts and TNF-α represses fibroblast to myofibroblast transition via Setdb2. We identified that TNF-α increases Setdb2 in fibroblasts via a JAK1,3/STAT3 signaling pathway, where pharmacologic or genetic manipulation of this pathway altered Setdb2 in fibroblasts. We also found that fibroblasts treated with pro-inflammatory macrophage supernatants displayed increased Setdb2 and downregulated myofibroblast genes; inhibition of the TNF-α receptor reduced the upregulation of Setdb2. In diabetes, we showed that TNF-α signaling was increased in wound fibroblasts, which functions to increase Setdb2 expression and represses fibroblast to myofibroblast transition. Fibroblast-specific knockdown of SETDB2 and therapeutic inhibition of JAK1,3/STAT3 improved diabetic wound repair, where wound fibroblasts expressed increased myofibroblast genes. This study is the first to our knowledge to identify an epigenetic mechanism for reduced fibroblast to myofibroblast transition in diabetic wounds. Therapeutic targeting of the TNF-α/STAT3/SETDB2 axis in wound fibroblasts may improve diabetic wound healing.

Authors

Tyler M. Bauer, Kevin D. Mangum, Samuel D. Buckley, James Shadiow, Amrita D. Joshi, Christopher O. Audu, Jadie Y. Moon, Lindsey D. Hughes, Rachel Bogel, Lam C. Tsoi, Qinmennge Li, He Zhang, Steven Kunkel, Johann E. Gudjonsson, Frank M. Davis, Katherine A. Gallagher

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Figure 5

TNF-α signaling is higher in diabetic wounds, driving Setdb2 expression.

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TNF-α signaling is higher in diabetic wounds, driving Setdb2 expression....
(A) Wound expression of TNF-α harvested on day 7 following tissue injury (DIO and littermate controls) (n = 4 mice/group, run in triplicate). (B) Setdb2 expression in fibroblasts isolated day 7 following tissue injury (DIO and littermate controls) (n = 4 mice/group, run in triplicate). (C) Cluster analysis UMAP of single-cell RNA-Seq from human T2D and non-T2D wounds. Dot plot comparing Setdb2 expression in human T2D with non-T2D wound fibroblasts (n = 10). (D) Wound healing curve for DIO Setdb2fl/fl ColCreERTfl/fl mice. Mice were wounded via 6 mm punch biopsy and images were taken daily. Scale bar is 4 mm (n = 10/group for Setdb2fl/fl ColCreERT–/– and 5 for Setdb2fl/fl ColCreER+/+). (E) Wound healing curve for DIO mice injected daily with tofacitinib (1 mg/kg) or DMSO control. Tofacitinib injections were started on day 1. Scale bar is 4 mm (n = 6/group). (F) Acta2, Tagln, Myl9, and Cald1 gene expression from wound fibroblasts isolated from mice injected daily with tofacitinib or DMSO control following wounding (n = 5 mice/group, run in triplicate). (G) Setdb2 gene expression from wound fibroblasts isolated from mice injected daily with tofacitinib or DMSO control following wounding, following stimulation with TNF-α for 6 hours (n = 5 mice/group, run in triplicate). (H) Receptor-ligand plots depicting TNF-α receptor-ligand interactions in human scRNA-Seq between wound macrophage and wound fibroblast subtypes (n = 10). (I) Significantly downregulated pathways in human T2D wound fibroblasts compared with non-T2D wound fibroblasts. Red box indicates most strongly downregulated pathways (n = 10). *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001. Data are presented as the mean ± SEM. Data were first analyzed for normal distribution, and if data passed the normality test, 2-tailed Student’s t test was used. Representative figures are displayed for panel A, B, F, and G, which were repeated 3 times independently.

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