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Published on: May 25, 2012
Mechanically responsive yes-associated protein-inhibiting peptide hydrogel for scarless wound healing
Huiqi Zhang1, Zhengmao Lu2, Wenshang Liu3
1Department of Dermatology, Shanghai Children's Medical Center, Shanghai Jiaotong University School of Medicine, Shanghai 200127, PR China; State Key Laboratory of Antiviral Drugs, Henan Province Engineering Research Center of High Value Utilization to Natural Medical Resource in Yellow River Basin, School of Pharmacy, Henan University, N. Jinming Ave., Kaifeng 475004, China.
None:
Persistent fibrotic scarring after cutaneous wound closure remains a major clinical burden that current prophylactic and therapeutic strategies fail to resolve, leading to marked compromise of both aesthetic and functional outcomes. Mechanotransduction cascades, and in particular Hippo-YAP signalling, are now recognised as pivotal drivers of fibrogenesis. In this study, we engineered an in situ mechanoresponsive hydrogel dressing that enables spatiotemporal control of wound-edge tension while simultaneously delivering a rationally designed peptide that antagonises YAP-TEAD association. C-terminal extension of the peptide with a cationic glycine-rich segment endowed broad-spectrum antibacterial activity and promoted self-assembly into monodisperse nanoparticles. These nanoparticles were homogeneously entrapped within a gelatin-sodium alginate network that was further functionalised with poly(N-isopropylacrylamide) to impart thermally reversible contraction. The resultant GAPNP hydrogel underwent pronounced radial shrinkage of 63.83 % at 45 °C, thereby validating its robust mechanoadaptability. In murine full-thickness excisional wounds, the dressing accelerated re-epithelialisation to 60.35 % within 48 h. Histopathological and immunohistochemical analyses revealed pronounced downregulation of YAP and alpha smooth-muscle actin, and a rabbit ear hypertrophic scar model ultimately achieved scarless regeneration. Collectively, this work establishes a previously unreported paradigm that integrates mechanomodulation with peptide-based molecular intervention and provides a clinically translatable strategy for fibrosis-free cutaneous repair. STATEMENT OF SIGNIFICANCE: Hypertrophic scars develop in 40-70 % of wounds, particularly in high-tension anatomical sites such as joints, and inflict persistent pain, contractures, and substantial socioeconomic costs. Existing hydrogels cannot modulate the dynamic mechanical environment of healing tissue, whereas pharmacological YAP-TEAD blockade is hindered by suboptimal release profiles, unpredictable kinetics, and inadequate targeting. To overcome these limitations, we engineered a self-contractile peptide hydrogel that couples a PNIPAAm-reinforced gelatin-sodium alginate matrix with Peptide8, a YAP-TEAD antagonist rationally modified to self-assemble into antibacterial nanoparticles and to be released in a sustained manner. This concomitant mechanomodulatory and molecular intervention offers a comprehensive, clinically translatable strategy for scar-free cutaneous repair.
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