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Research Article | Open Access

Asiaticoside–nitric oxide synergistically accelerate diabetic wound healing by regulating key metabolites and SRC/STAT3 signaling

Xingrui Mu1,2,‡ , Jitao Chen1,2,‡, Huan Zhu1,2, Junyu Deng1,2, Xingqian Wu1,2, Wenjie He1,2, Penghui Ye1,2, Rifang Gu3, Youzhi Wu4, Felicity Han4, Xuqiang Nie1,2,4 ( )
Key Laboratory of Basic Pharmacology of Ministry of Education and Joint International Research Laboratory of Ethnomedicine of Ministry of Education, Zunyi Medical University, No. 6 West Xuefu Road, Xinpu New District, Zunyi 563006, China
College of Pharmacy, Zunyi Medical University, No. 6 West Xuefu Road, Xinpu New District, Zunyi 563006, China
University Medical Office, Zunyi Medical University, No. 6 West Xuefu Road, Xinpu New District, Zunyi 563006, China
Australian Institute for Bioengineering and Nanotechnology (AIBN), The University of Queensland, St. Lucia, Brisbane, QLD 4072, Australia

‡Xingrui Mu and Jitao Chen contributed equally to this work.

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Highlights

• Integrated network pharmacology and metabolomics identify skin biomarkers for ACNO in diabetic wound therapy.

• ACNO hydrogel fosters angiogenesis and re-epithelialization, accelerating diabetic wound healing.

• The underlying mechanisms involve the regulation of key metabolites and SRC/STAT3 signaling.

Abstract

Background

Diabetic wounds pose significant clinical challenges due to impaired healing processes, often resulting in chronic, nonhealing ulcers. Asiaticoside (AC), a natural triterpene derivative from Centella asiatica, has demonstrated notable anti-inflammatory and wound-healing properties. However, the synergistic effects of nitric oxide (NO)—a recognized promoter of wound healing—combined with AC in treating diabetic wounds remain inadequately explored.

Methods

Ultraperformance liquid chromatography–tandem mass spectrometry (UPLC-MS/MS) was utilized to identify differential metabolites and dysregulated metabolic pathways associated with diabetic wounds. Molecular docking analyses were conducted to confirm the binding affinity of AC to key therapeutic targets. The effects of asiaticoside–nitric oxide hydrogel (ACNO) on gene and protein expression were evaluated using reverse transcription-quantitative polymerase chain reaction (RT-qPCR) and western blotting. In vitro experiments using sarcoma (SRC) agonists and inhibitors were performed to investigate the impact of ACNO therapy on the expression of SRC, STAT3, and other proteins in HaCaT cells.

Results

Metabolomic profiling revealed that diabetic wounds in mice exhibited marked metabolic dysregulation, which was attenuated by ACNO treatment. Key metabolites modulated by ACNO included mandelic acid, lactic acid, and 3-hydroxyisovaleric acid. The primary metabolic pathways involved were methyl histidine metabolism and the malate–aspartate shuttle. Immunofluorescence staining confirmed that ACNO therapy enhanced angiogenesis, promoted cellular proliferation, and facilitated diabetic wound closure. RT-qPCR data demonstrated that ACNO regulated the transcription of critical genes (SRC, STAT3, EGFR, and VEGFA). Notably, ACNO attenuated SRC/STAT3 pathway activation while concurrently upregulating EGFR and VEGFA expression.

Conclusions

These findings emphasize the therapeutic potential of ACNO hydrogel in diabetic wound healing through the modulation of metabolic pathways and the SRC/STAT3 signaling axis. By correlating altered metabolites with molecular targets, this study elucidates the pharmacodynamic foundation for ACNO’s preclinical application and provides valuable insights into the development of targeted therapies for diabetic wound management.

Graphical Abstract

References

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Burns & Trauma
Article number: tkaf009

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Cite this article:
Mu X, Chen J, Zhu H, et al. Asiaticoside–nitric oxide synergistically accelerate diabetic wound healing by regulating key metabolites and SRC/STAT3 signaling. Burns & Trauma, 2025, 13(4): tkaf009. https://doi.org/10.1093/burnst/tkaf009

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Received: 26 February 2024
Revised: 13 September 2024
Accepted: 24 January 2025
Published: 10 October 2026
© The Author(s) 2025. Published by Oxford University Press.

This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.