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Microfluidic generation of multifunctional core-shell microfibers promote wound healing

  • Fenglan Xu
  • , Suning Wang
  • , Chenxi Cao
  • , Wenyuan Ma
  • , Xuan Zhang
  • , Junhan Du
  • , Wentao Sun
  • , Qingming Ma
  • The Affiliated Hospital of Jiangsu University
  • Inner Mongolian Institute for Drug Control
  • Qingdao University

Research output: Contribution to journalArticlepeer-review

22 Scopus citations

Abstract

Wound healing is a complex physiological process involving four coordinated stages, including hemostasis, anti-inflammatory, repair, and epithelial formation. Herein, multifunctional core-shell alkylated chitosan/calcium alginate microfibers are fabricated as a novel strategy for promoting wound healing by contributing to each four stages in the entire healing process. Taking advantages of the microfluidic technology, the core-shell microfibers can be generated in a continuous and convenient manner through the interfacial assembly between alkylated chitosan and Na-alginate, as well as the simultaneous crosslink between calcium and the alginate. Generated microfibers possess unique internal structure which can effectively promote the absorption of blood and exudate produced during trauma. Moreover, the dodecyl carbon chain and abundant amino groups of alkylated chitosan provide microfibers with excellent hemostatic and antibacterial properties, which can repair acute hemorrhage and destroy bacteria rapidly. Further, the chronic wound healing process of a skin injury model can be significantly promoted by applying the fabricated microfibers. With these sequential functions to guide the whole-stage wound healing, the presented multifunctional core-shell microfibers create a versatile and robust paradigm for comprehensive wound treatment.

Original languageEnglish
Article number112842
JournalColloids and Surfaces B: Biointerfaces
Volume219
DOIs
StatePublished - Nov 2022

Keywords

  • Alkylated chitosan
  • Interfacial assembly
  • Microfibers
  • Microfluidics
  • Wound healing

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