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Ferritin Nanoshuttle for Long-Lasting Self-Healing of Phenolic Hydrogels.

Jisoo ShinSoohwan AnSoojeong ChoiMikyung ShinJung Seung LeeJung Ho ChoHaeshin LeeSeung-Woo Cho
Published in: Nano letters (2023)
Herein, we highlight a novel finding that ferritin can play a crucial role in the "self-healing lifetime" of soft phenolic materials. Ferritin interacts with a catechol-functionalized polymer to form a self-healable and adhesive hydrogel bidirectionally by providing and retrieving Fe 3+ . As a result of its unique role as a nanoshuttle to store and release iron, ferritin significantly increases the self-healing lifetime of the hydrogel compared with that afforded by catechol-Fe 3+ coordination through direct Fe 3+ addition without ferritin. Ferritin also induces stable oxidative coupling between catechol moieties following metal coordination, which contributes to double cross-linking networks of catechol-catechol adducts and catechol-Fe 3+ coordination. Thus, ferritin-mediated cross-linking can provide phenolic hydrogels with the advantages of hydrogels prepared by both metal coordination and oxidative coupling, thereby overcoming the limitations of the current cross-linking methods of phenolic hydrogels and broadening their versatility in biomedical applications.
Keyphrases
  • drug delivery
  • hyaluronic acid
  • iron deficiency
  • tissue engineering
  • wound healing
  • drug release
  • extracellular matrix
  • visible light
  • molecularly imprinted
  • simultaneous determination