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A coenzyme-based self-stabilized Janus adhesive patch for spatiotemporal regulation of sutureless… — Biomaterials (2027)

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Artigo científico

Fonte
PubMed
Data
2027 (data por confirmar)
Área
geral
Revista
Biomaterials
Autores
Chenguang Ouyang, Zhipeng Ni, Haojie Yu, Li Wang, Yuan Meng, Zijian Xu
PMID
42574963
DOI
10.1016/j.biomaterials.2026.124537
Documento na fonte
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Chronic inflammation and adhesion formation severely impede the healing process of diabetic tendons, while current surgical sutures and pharmacological interventions often fail to restore microenvironmental homeostasis. Here, we report a coenzyme-based self-stabilized Janus adhesive patch for spatiotemporal regulation of sutureless diabetic tendon healing. Unlike strategies relying on exogenous agents, we utilized the strong hydrogen bonding interactions between endogenous coenzyme α-lipoic acid (LA) and its potassium salt (LAK) to engineer a stable binary supramolecular adhesive layer (P (L x -K y )) without exogenous additives, enabling sustained release of bioactive LAK molecules. Temporally, the P (L x -K y ) adhesive layer tightly adhered to injured diabetic tendons. The sustainably released LAK could directly scavenge ROS and provide antibacterial protection, thereby driving the polarization of macrophages from the pro-inflammatory M1 phenotype to the reparative M2 phenotype. Spatially, the poly (lactic-co-glycolic acid) barrier layer (PLGA) provides mechanical support and prevents fibroblast infiltration and the formation of peritendinous adhesions. The Janus adhesive patch achieves a paradigm shift from exogenous drug delivery to endogenous spatiotemporal metabolic regulation in diabetic tendon healing. It offers a promising sutureless solution for diabetic tissue regeneration.