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Updated: Feb 11, 2026

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Published on: August 21, 2021
aFGF rescues high glucose-induced senescent fibroblasts and improves diabetic wound healing by regulating SIRT1/STAT3
Xiaoyang Wang1,2,3, Meiqi Lu1,2,3, Shanshan Jia1,2,3
1The Second Hospital of Shandong University, Jinan, 250033, Shandong, China.
Abstract:
In the wound of diabetic patients, Fibroblasts are extensively senescent and dysfunctional, resulting in prolonged skin wound healing time. The aim of this study was to investigate the impact of aFGF on diabetic wound healing and the senescence of fibroblasts induced by high glucose, and to explore the underlying mechanisms. We injected aFGF locally into the back wound of (Streptozocin) STZ-induced diabetic rats, and subsequently assessed its therapeutic impact on wound healing in vivo by measuring the wound healing rate and the expression of aging markers. Next, we conducted a series of in vitro experiments utilizing HG-induced L929 fibroblasts to evaluate the effects of aFGF on their aging and modulation of oxidative stress. Finally, we evaluated the changes of SIRT1 expression levels and phosphorylation STAT3 (Y705) levels, and observed whether the therapeutic effect of aFGF on diabetic wounds is related to the regulation of this pathway. Local injection of aFGF into diabetic wounds accelerates wound closure and decreases senescence associated secretory phenotype (SASP) expression. In vitro, aFGF enhanced the anti-senescence and antioxidant capacity of HG-induced senescent fibroblasts. It was found that aFGF effectively rescued SIRT1 expression and inhibited STAT3 phosphorylation in senescent tissue of diabetic wound. Our findings suggested that aFGF ameliorates the dysfunction of senescent fibroblasts by modulating the SIRT1/STAT3 signaling axis, thereby accelerating diabetic wound healing. aFGF is a promising therapeutic candidate for the treatment of diabetic wounds.
Insights
Basic fibroblast growth factor (aFGF) accelerates diabetic wound healing by reducing fibroblast senescence and oxidative stress. It modulates the SIRT1/STAT3 pathway, offering a promising therapeutic approach for diabetic wound treatment.
Area of Science:
- Biomedical Science
- Wound Healing Research
- Diabetic Complications
Background:
- Diabetic patients exhibit senescent and dysfunctional fibroblasts, prolonging skin wound healing.
- High glucose conditions induce fibroblast senescence and oxidative stress, impairing wound repair.
Purpose of the Study:
- To investigate the impact of aFGF on diabetic wound healing and high glucose-induced fibroblast senescence.
- To explore the underlying mechanisms of aFGF's therapeutic effects, focusing on the SIRT1/STAT3 signaling pathway.
Main Methods:
- In vivo study: Local injection of aFGF into STZ-induced diabetic rat wounds to assess healing rate and aging markers.
- In vitro study: Evaluation of aFGF's effects on high glucose-induced senescent L929 fibroblasts, including oxidative stress modulation.
- Mechanism investigation: Assessment of SIRT1 expression and STAT3 phosphorylation (Y705) levels in response to aFGF treatment.
Main Results:
- Local aFGF injection accelerated wound closure and reduced senescence-associated secretory phenotype (SASP) expression in diabetic rat wounds.
- In vitro, aFGF enhanced the anti-senescence and antioxidant capacity of high glucose-induced senescent fibroblasts.
- aFGF treatment rescued SIRT1 expression and inhibited STAT3 phosphorylation in senescent diabetic wound tissue.
Conclusions:
- aFGF ameliorates senescent fibroblast dysfunction in diabetic wounds by modulating the SIRT1/STAT3 signaling axis.
- These findings suggest aFGF is a promising therapeutic candidate for accelerating diabetic wound healing.
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