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Fast-curing resilin bioshield with tailored stiffness and bioactivity for guided bone regeneration

  • Yusai Zhou
  • , Yajuan Xie
  • , Yunfan Zhang
  • , Xiaomo Liu
  • , Bo Li
  • , Bing Han*
  • , Ruichu Zhang
  • , Chaonan Jin
  • , Yao Sun
  • , Chao Ma
  • , Shengxue Yang
  • , Li Miao*
  • , Hongjie Zhang
  • , Kai Liu*
  • , Yan Wei*
  • *Corresponding author for this work
  • Beihang University
  • Tsinghua University
  • Peking University
  • National Center for Stomatology & National Clinical Research Center for Oral Diseases & National Engineering Research Center of Oral Biomaterials and Digital Medical Devices & Beijing Key Laboratory of Digital Stomatology & NHC Key Laboratory of Digital Stomatology & NMPA Key Laboratory for Dental Materials
  • Xiangfu Laboratory
  • General Hospital of People's Liberation Army

Research output: Contribution to journalArticlepeer-review

Abstract

Severe bone defects pose a formidable clinical challenge in orthopedics, urgently demanding the development of advanced biomaterials to restore structural and functional integrity. While current regenerative materials, such as collagen-containing products, demonstrate a certain degree of biocompatibility, they are still hampered by limitations that include poor mechanical performance, restricted barrier effects, and arduous preparation methods. Here, we report a rapid-curing methodology to engineer recombinant resilin bioshield with tunable modulus, superior bioactivity, and rapid assembly kinetics. The resilin bioshield is rapidly formed within minutes via a tyrosine-mediated photo-crosslinking strategy, achieving spatially programmable assembly. Enzymatic integration of alkaline phosphatase into the resilin matrix drives in situ mineralization, yielding densely packed hydroxyapatite (HAP) nanocrystals. Remarkably, this process enables controlled modulus tuning of the bioshield across three orders of magnitude, achieving an exceptional maximum modulus of 145 MPa while retaining excellent flexibility, thus surpassing conventional guided bone regeneration materials. Beyond its mechanical superiority, the mineralized resilin bioshield not only directs cellular behavior by enhancing adhesion and spreading but also robustly drives the osteogenic differentiation of mesenchymal stem cells, thereby accelerating functional bone regeneration. As a result, our work provides an alternative approach for creating high-performance barrier membranes for guided bone regeneration.

Original languageEnglish
Article number94907414
JournalNano Research
Volume18
Issue number5
DOIs
StatePublished - May 2025

Keywords

  • barrier membrane
  • guided bone regeneration
  • mechanical performance
  • mineralization
  • resilin

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