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March 17, 2026Advanced Composites and Hybrid Materials0 citationsOpen Access

A silk fibroin-based stimuli-responsive hydrogel enhances diabetic foot ulcer healing via the controlled release of Piezo1 agonists Yoda1

TGTingjiang GanYLYa-Xing LiSYShijiu Yin

Key Points

  • This research aims to enhance diabetic foot ulcer healing using a silk fibroin-based hydrogel that releases Piezo1 agonists.
  • Encapsulated Piezo1 agonist Yoda1 in ROS-responsive micelles within a silk fibroin and hyaluronic acid hydrogel.
  • Hydrogel crosslinked with dynamic boronate ester bonds for stimuli responsiveness.
  • Modified cationic antimicrobial peptides with C14 fatty acids for better stability and antimicrobial effects.
  • Conducted in vitro cellular assays and in vivo evaluations in a rat diabetic foot ulcer model.
  • Demonstrated significant antimicrobial activity and reduced oxidative stress in vitro.
  • Promoted M2 macrophage polarization and enhanced angiogenesis in the wound environment.
  • Showed significant therapeutic efficacy in vivo for diabetic foot ulcer healing.

Abstract

Diabetic foot ulcer (DFU) is highly prevalent and remains a major clinical challenge. It is characterized by impaired microvasculature, persistent oxidative stress, chronic infection, and immune dysregulation, which collectively lead to chronic non-healing wounds. The tibial cortex transverse transport (TTT) technique has been shown to enhance DFU healing by restoring distal limb perfusion, with Piezo1 likely acting as a key mediator in this signal transduction process. Inspired by this mechanism, we used the Piezo1 agonist Yoda1 to pharmacologically replicate the effects of TTT and investigate its therapeutic potential in enhancing diabetic wound repair. To address the poor water solubility and narrow therapeutic window of Yoda1, we encapsulated it in ROS-responsive micelles and further incorporated them into a stimuli-responsive hydrogel composed of silk fibroin (SF) and hyaluronic acid. The hydrogel was crosslinked via dynamic boronate ester bonds, conferring responsiveness to pH, ROS, and glucose, thereby enabling controlled, sustained drug release. In addition, short cationic antimicrobial peptides (AMPs) were modified with a C14 fatty acid chain to form self-assembling structures with enhanced stability and antimicrobial potency, which were then incorporated into the hydrogel. Within the pathological DFU microenvironment, the SF-based hydrogel gradually degraded, releasing AMPs and Yoda1 to exert synergistic therapeutic effects, including potent antimicrobial activity, attenuation of oxidative stress, promotion of M2 macrophage polarization, and enhanced angiogenesis. Comprehensive in vitro cellular assays and in vivo evaluations in a rat DFU model demonstrated significant therapeutic efficacy. Overall, these findings suggest that this multifunctional, stimuli-responsive, dual-nanoparticle delivery hydrogel represents a potential strategy for DFU treatment.

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Cite This Study

Gan et al. (2026) studied this question.

synapsesocial.com/papers/69b8ef52deb47d591b8c56e1https://doi.org/10.1007/s42114-026-01730-w
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