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.

Scientific Reports
|February 9, 2026
PubMed

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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