1. Academic Validation
  2. Water-Activated Degradable Supramolecular Bioadhesive Powder for Underwater Tissue Adhesion and Wound Healing

Water-Activated Degradable Supramolecular Bioadhesive Powder for Underwater Tissue Adhesion and Wound Healing

  • Biomacromolecules. 2025 Oct 13;26(10):6741-6754. doi: 10.1021/acs.biomac.5c01057.
Hongjian Huang 1 2 Zongxuan Huang 3 Shuichang Chen 2 Xiaoyu Yang 2 Hu Zhao 3 Qinhui Chen 2 Haiqing Liu 2 4 5
Affiliations

Affiliations

  • 1 College of Energy, Quanzhou Vocational and Technical University, Fujian 362268, China.
  • 2 College of Chemistry and Materials Science, Fujian Normal University, Fujian 350007, China.
  • 3 Department of General Surgery, Fuzhou General Teaching Hospital, Fujian University of Traditional Chinese Medicine (900TH Hospital of Joint Logistics Support Force), Fujian 350025, China.
  • 4 Fujian-Taiwan Science and Technology Cooperation Base of Biomedical Materials and Tissue Engineering, Fujian 350007, China.
  • 5 Engineering Research Center of Industrial Biocatalysis, Fujian 350007, China.
Abstract

Traditional suturing and stapling demand surgical skill and risk additional trauma, whereas conventional tissue adhesives falter on wet surfaces. Inspired by cement curing, a water-activated bioadhesive powder (WABP) was developed in this work. WABP was a mixture of tannic acid-terminated poly(lipoic acid) (TA-PLA) and arginine (Arg), in which the TA-PLA was synthesized through the Michael addition reaction of PLA containing disulfide radicals with TA possessing a radical quenching effect. Upon hydration, the powder swiftly formed a self-assembled coacervate adhesive, which exhibited antiswelling properties in underwater environments, a result of the combined effects of hydrogen bonding, electrostatic interactions, and hydrophobic associations. The WABP, harnessing the attributes of both powder and coacervate adhesives, was adept at conforming to an irregular wound shape and delivered stable bioadhesive performance. It demonstrated superior wound healing capabilities, Antibacterial properties, favorable cytocompatibility, and histocompatibility. This supramolecular WABP offers a simple, multifunctional alternative to sutures for biomedical applications.

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