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α-Ketoglutarate accelerates cutaneous wound healing through modulating the epithelial-fibroblast niche
Yuhan Li, Weimin Lin, Denghao Huang, Yueying Wang, Yimeng Cai, Jie Xiang, Linfeng Liu, Xinxing Shuai, Qi Yin, Shuang Jiang, Malcolm Xing, Yuan Wang, Leixiao Yu, Quan Yuan
Yuhan Li, Weimin Lin, Denghao Huang, Yueying Wang, Yimeng Cai, Jie Xiang, Linfeng Liu, Xinxing Shuai, Qi Yin, Shuang Jiang, Malcolm Xing, Yuan Wang, Leixiao Yu, Quan Yuan
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Research Article Cell biology Metabolism

α-Ketoglutarate accelerates cutaneous wound healing through modulating the epithelial-fibroblast niche

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Abstract

Wound healing is a highly dynamic and metabolically demanding process. However, the primary drivers of metabolic alterations involved in this process remain incompletely understood. Here, we employed multiomics profiling of clinical samples to investigate metabolic alterations during wound healing. Our analyses revealed significant activation of the TCA cycle and identified α-ketoglutarate (αKG) as a central regulator orchestrating the reparative phase. Systemic administration of αKG promoted wound closure and re-epithelialization, characterized by enhanced neo-tissue formation with an extended epithelial tongue. Mechanistically, αKG promoted cell proliferation via the cell cycle pathway and enhanced fibroblast-derived TGF-β signaling to induce epithelial-mesenchymal transition–like programs in epithelial cells. To address the spatial metabolic heterogeneity, we developed a transdermal MN platform based on gelatin methacryloyl for localized αKG delivery, further accelerating tissue repair. Collectively, these findings identify αKG as a metabolic driver of wound repair, reveal its dual role in modulating the epithelial-fibroblast microenvironment, and introduce a targeted bioengineering strategy with translational potential for both acute and chronic wound management.

Authors

Yuhan Li, Weimin Lin, Denghao Huang, Yueying Wang, Yimeng Cai, Jie Xiang, Linfeng Liu, Xinxing Shuai, Qi Yin, Shuang Jiang, Malcolm Xing, Yuan Wang, Leixiao Yu, Quan Yuan

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Figure 6

Preparation and characterization of αKG-MN.

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Preparation and characterization of αKG-MN.
(A) Schematic illustration o...
(A) Schematic illustration of αKG-MN fabrication. (B) Quantitative analyses of the storage modulus (G’) of GelMA hydrogel with different concentrations under the frequency sweep (n = 3). (C) CCK-8 assay of L929 cells treated with varying concentrations of αKG in MNs (n = 3). (D) Fluorescence microscopy images of the tips of FITC-loaded αKG-MN patches. Scale bar: 200 μm. (E) Mechanical strength of αKG-MN measured by a compression test. (F) Force-displacement curve of αKG-MN on porcine skin through a 90° peel test. (G) In vivo degradation of αKG-MN after administration for 2 days. Scale bar: 50 μm. (H) Cumulative in vitro release of αKG (n = 3). Data are expressed as mean ± SD. For multiple groups, 1-way ANOVA with Tukey’s post hoc test was used.

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