TY - JOUR
T1 - Cold Atmospheric Plasma Enhances Fn14 Signaling in Hair Follicle Stem Cells, Thereby Promoting the Healing of Diabetic Skin Wounds in a Mouse Model
AU - Zou, Xiaoyan
AU - Peng, Lingling
AU - Luo, Mai
AU - Qu, Ziqing
AU - Hu, Guanglei
AU - Liu, Xiaoming
AU - Yan, Zhu
AU - Pokharel, Shruti
AU - Xia, Yumin
AU - Jia, Fangyan
N1 - Publisher Copyright:
Copyright © 2026 Xiaoyan Zou et al. Journal of Immunology Research published by John Wiley & Sons Ltd.
PY - 2026
Y1 - 2026
N2 - The healing of diabetic skin wounds is often delayed due to cellular dysfunction and oxidative stress. Recently, cold atmospheric plasma (CAP) has shown promising efficacy in treating diabetic wounds; however, its exact mechanism remains unclear. The study aimed to investigate the effect of CAP on fibroblast growth factor-inducible 14 (Fn14) signaling-mediated hair follicle stem cell (HFSC) functionality, which may contribute to the healing of diabetic wounds. In vitro experiments were conducted to analyze the effect of CAP treatment on HFSC proliferation, cytokine production, and reactive oxygen species (ROS)-related protein expressions. Animal experiments were performed to verify the effect of CAP treatment on a mouse type 1 diabetic wound model. CAP enhanced both Fn14 expression and HFSC proliferation, accompanied by the activation of the Wnt/β-catenin signaling pathway. Expressions of Sirt1, Nrf2, hypoxia-inducible factor-1α, and Sox9, which were initially suppressed under high glucose conditions, were significantly restored upon CAP stimulation. Moreover, CAP-activated hydrogel promoted diabetic wound healing in this mouse model. Furthermore, inhibition of Fn14 abrogated the promotive effect of CAP intervention. Fn14 signaling is a key mediator, mechanistically linking CAP to HFSC activation and tissue repair. These findings provide a therapeutic blueprint for CAP-based regeneration of diabetic wounds.
AB - The healing of diabetic skin wounds is often delayed due to cellular dysfunction and oxidative stress. Recently, cold atmospheric plasma (CAP) has shown promising efficacy in treating diabetic wounds; however, its exact mechanism remains unclear. The study aimed to investigate the effect of CAP on fibroblast growth factor-inducible 14 (Fn14) signaling-mediated hair follicle stem cell (HFSC) functionality, which may contribute to the healing of diabetic wounds. In vitro experiments were conducted to analyze the effect of CAP treatment on HFSC proliferation, cytokine production, and reactive oxygen species (ROS)-related protein expressions. Animal experiments were performed to verify the effect of CAP treatment on a mouse type 1 diabetic wound model. CAP enhanced both Fn14 expression and HFSC proliferation, accompanied by the activation of the Wnt/β-catenin signaling pathway. Expressions of Sirt1, Nrf2, hypoxia-inducible factor-1α, and Sox9, which were initially suppressed under high glucose conditions, were significantly restored upon CAP stimulation. Moreover, CAP-activated hydrogel promoted diabetic wound healing in this mouse model. Furthermore, inhibition of Fn14 abrogated the promotive effect of CAP intervention. Fn14 signaling is a key mediator, mechanistically linking CAP to HFSC activation and tissue repair. These findings provide a therapeutic blueprint for CAP-based regeneration of diabetic wounds.
KW - cold atmospheric plasma
KW - diabetic wound
KW - Fn14
KW - hair follicle stem cell
KW - reactive oxygen species
KW - TWEAK
UR - https://www.scopus.com/pages/publications/105037962571
U2 - 10.1155/jimr/9082774
DO - 10.1155/jimr/9082774
M3 - 文章
C2 - 42083508
AN - SCOPUS:105037962571
SN - 2314-8861
VL - 2026
JO - Journal of Immunology Research
JF - Journal of Immunology Research
IS - 1
M1 - 9082774
ER -