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Ox40-Cre–mediated deletion of BRD4 reveals an unexpected phenotype of hair follicle stem cells in alopecia
Mou Wen, Yuanlin Ying, Xiang Xiao, Preston R. Arnold, Guangchuan Wang, Xiufeng Chu, Rafik M. Ghobrial, Xian C. Li
Mou Wen, Yuanlin Ying, Xiang Xiao, Preston R. Arnold, Guangchuan Wang, Xiufeng Chu, Rafik M. Ghobrial, Xian C. Li
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Research Article Immunology

Ox40-Cre–mediated deletion of BRD4 reveals an unexpected phenotype of hair follicle stem cells in alopecia

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Abstract

BRD4 is a bromodomain extraterminal domain family member and functions primarily as a chromatin reader regulating genes involved in cell-fate decisions. Here, we bred Brd4fl/fl Ox40-Cre mice in which Brd4 was conditionally deleted in OX40-expressing cells to examine the role of BRD4 in regulating immune responses. We found that the Brd4fl/fl Ox40-Cre mice developed profound alopecia and dermatitis, while other organs and tissues were not affected. Surprisingly, lineage-tracing experiments using the Rosa26fl/fl-Yfp mice identified a subset of hair follicle stem cells (HFSCs) that constitutively express OX40, and deletion of Brd4 specifically in such HFSCs resulted in cell death and a complete loss of skin hair growth. We also found that death of HFSCs triggered massive activation of the intradermal γδ T cells, which induced epidermal hyperplasia and dermatitis by producing the inflammatory cytokine IL-17. Interestingly, deletion of Brd4 in Foxp3+ Tregs, which also constitutively express OX40, compromised their suppressive functions, and this, in turn, contributed to the enhanced activation of γδ T cells, as well as the severity of dermatitis and hair follicle destruction. Thus, our data demonstrate an unexpected role of BRD4 in regulating skin follicle stem cells and skin inflammation.

Authors

Mou Wen, Yuanlin Ying, Xiang Xiao, Preston R. Arnold, Guangchuan Wang, Xiufeng Chu, Rafik M. Ghobrial, Xian C. Li

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Figure 6

Activation of γδ T cells in dermatitis and hair follicle destruction.

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Activation of γδ T cells in dermatitis and hair follicle destruction.
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(A) Flow cytometry analysis of IL-17 and IFN-γ expression in γδ+ T cells from the skin of control Ox40-Cre and Brd4fl/fl Ox40-Cre mice on P84 (top), and tabulated data from all mice as indicated (bottom). n = 5. (B) Immunofluorescence staining of IL-17A (red) stain together with DAPI (blue) and keratin 14 (green) in dorsal skin sections from control Ox40-Cre and Brd4fl/fl Ox40-Cre mice on P84. Scale bar: 120 μm. (C) Schematic diagram showing γδ T cells transfer into Rag1–/– CKO and control recipients. (D) Skin sections (H&E staining) of Rag1–/– CKO mice, control plus γδ T, and Rag1–/– CKO plus γδ T recipients. Scale bar: 150 μm. (E) Graph shows average disease score for Rag1–/– CKO mice, control plus γδ T, and Rag1–/– CKO plus γδ T recipients over time. n = 5–7. (F) Flow cytometry analysis of intracellular expression of IL-17A and IL-17F in transferred γδ T cells isolated from spleen, lymph nodes, and skin of control plus γδ T and Rag1–/– CKO plus γδ T recipients (left) and expression levels of IL-17A and IL-17F expression in γδ T cells from all mice (right). n = 3. Data shown are representative results from 3 experiments (A, D, and F) and 4 experiments (B). Graphs shown as mean ± SD. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001, by 1-way ANOVA (E) or 2-tailed Student’s t test (A and F).

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