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ATF7 drives diabetic wound healing via NOTCH1 repression and N1ICD-dependent macrophage polarization control
Pengcheng Xu, Yuan Xue, Linlin Feng, Jingwen Kuang, Xiaochen Hu, Huiyi Tang, Biao Cheng, Limin Wei
Pengcheng Xu, Yuan Xue, Linlin Feng, Jingwen Kuang, Xiaochen Hu, Huiyi Tang, Biao Cheng, Limin Wei
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Research Article Dermatology Inflammation

ATF7 drives diabetic wound healing via NOTCH1 repression and N1ICD-dependent macrophage polarization control

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Abstract

Chronic, non-healing wounds are a severe diabetic complication. The underlying mechanisms are not fully understood, and the role of ATF7 in this context has not been well characterized. In our study, we utilized db/db diabetic mice and AAV-mediated keratinocyte-specific Atf7 overexpression in vivo. HaCaT keratinocyte/THP-1 macrophage cocultures under high glucose were used in vitro. Our results showed that ATF7 was upregulated in diabetic wounds. Keratinocyte-specific Atf7 overexpression accelerated diabetic wound closure, enhanced re-epithelialization, granulation tissue formation, and keratinocyte proliferation, while suppressing macrophage M1 polarization and inflammation. Multiomics screening identified NOTCH1 as a key ATF7 target. ATF7 transcriptionally repressed NOTCH1 by recruiting Suv39h1, increasing H3K9me3 at the NOTCH1 promoter. This reduced NOTCH1 protein and its active intracellular domain (N1ICD) within keratinocyte-derived exosomes. ATF7-overexpressing keratinocyte exosomes carried less N1ICD, leading to decreased N1ICD transfer to macrophages and subsequent inhibition of M1 polarization. Notably, local injection of exosomes from ATF7-overexpressing keratinocytes accelerated wound healing in db/db mice. In summary, ATF7 promotes diabetic wound healing by repressing NOTCH1 transcription via H3K9me3, thereby reducing exosomal N1ICD secretion from keratinocytes and inhibiting macrophage M1 polarization. This identifies the ATF7/NOTCH1/exosome axis as a therapeutic target.

Authors

Pengcheng Xu, Yuan Xue, Linlin Feng, Jingwen Kuang, Xiaochen Hu, Huiyi Tang, Biao Cheng, Limin Wei

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Figure 8

ATF7 transcriptionally represses NOTCH1 and reduces exosomal N1ICD expression.

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ATF7 transcriptionally represses NOTCH1 and reduces exosomal N1ICD expre...
(A) NOTCH1 mRNA and NOTCH1 protein expression in HG-treated (25 mM, 24 hours) HaCaT cells infected with LV-ATF7 or LV-NC lentivirus (48 hours), analyzed by qRT-PCR and Western blotting. (B) N1ICD protein levels in exosomes purified from cells, detected by Western blotting. (C) Predicted binding sites of ATF7 and enrichment of H3K9me3 at the NOTCH1 promoter region through the ChIP-Atlas database. (D) Co-IP analysis of ATF7 interaction with histone H3K9 methyltransferase Suv39h1 in HG-treated HaCaT cells (25 mM, 24 hours). IgG: negative control. (E) ChIP-qPCR confirming ATF7 binding to the NOTCH1 promoter in LV-ATF7–infected, HG-treated HaCaT cells. (F) ChIP-qPCR analysis of H3K9me3 enrichment at the NOTCH1 promoter. (G) Western blot analysis of NOTCH1 protein levels in wound tissues from db/db mice with or without keratinocyte-specific ATF7 overexpression. (H) Co-IP analysis of ATF7 interaction with histone H3K9 methyltransferase Suv39h1 in wound tissues from db/db mice. HaCaT cells were infected with LV-NC or LV-N1ICD and cultured under HG conditions. (I) Cell migration ability was analyzed by the scratch wound healing assay. Scale bar: 200 μm. (J) Representative immunofluorescence images of Ki67 expression and quantitative analysis for Ki67+ cells. Nuclei counterstained with DAPI. Scale bar: 50 μm (original magnification: ×400). Results are expressed as mean ± SD. **P < 0.01, ***P < 0.001 by 2-tailed unpaired Student’s t test (A, E, and F) or 1-way ANOVA with Bonferroni’s post hoc test (I and J). Each experimental group consisted of n = 6 animals. All cell experiments were performed with n = 3 replicates.

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