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Waste-to-healthcare: eggshell-derived 4D-printed biphasic scaffolds for precision bone regeneration

  • Zhichen Zou
  • , Chunli Yang
  • , Mengjiao Yang
  • , Yan Zhu
  • , Xiaozhou Xin*
  • , Mingli Huang
  • , Yixiu Liu
  • , Zhongmin Wang
  • , Shifeng Yang*
  • , Peng Li*
  • , Cheng Lin*
  • *Corresponding author for this work
  • School of Astronautics, Harbin Institute of Technology
  • Hezhou University
  • The Second Affiliated Hospital of Harbin Medical University
  • Guangxi Academy of Agricultural Sciences
  • The First Affiliated Hospital of Harbin Medical University

Research output: Contribution to journalArticlepeer-review

Abstract

Conventional bone tissue scaffolds are constrained by the issues of limited mechanical adaptability and inadequate bioactivity. Here, inspired by the natural bone tissue structure and combined with architectural design concepts, a multifunctional biphasic bone scaffold with a ‘steel-cement’ structure was constructed. This biphasic system was composed of a 4D printed rigid lattice metamaterial scaffold (‘biosteel’) and a flexible hydrogel (‘biocement’) loaded with composite particles (Cu-PDA-ES@Dex). Eggshell (ES) was innovatively used as a carrier to design composite particles with sequential drug release capabilities, which were embedded in the hydrogel phase to achieve synergistic anti-infective and osteogenic functions. By precisely regulating the geometric parameters of the lattice metamaterials, the mechanical properties and porosity of the scaffolds were controllably adjusted, thereby meeting the regeneration requirements of bone defects in different parts. The combination of radiopaque intelligent materials and 4D printing technology endowed the scaffolds with dynamic shape memory and radiopaque characteristics, facilitating minimally invasive implantation, adaptive filling, and precise localization. The ‘steel-cement’ multifunctional biphasic scaffold established an innovative platform for intelligent bone regeneration with its antibacterial, osteogenic, and mechanical adaptability. This not only promoted the development of bone regeneration toward intelligence and precision, but also provided new insights into the high-value utilization of waste biological resources.

Original languageEnglish
Article number015402
JournalMaterials Futures
Volume5
Issue number1
DOIs
StatePublished - 1 Mar 2026
Externally publishedYes

Keywords

  • 4D printing
  • bone scaffolds
  • metamaterials
  • steel-cement structure
  • waste resource utilization

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