3D printed scaffold design for bone defects with improved mechanical and biological properties

Ali Fallah, Mine Altunbek, Paulo Bartolo, Glen Cooper, Andrew Weightman, Gordon Blunn, Bahattin Koc*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Bone defect treatment is still a challenge in clinics, and synthetic bone scaffolds with adequate mechanical and biological properties are highly needed. Adequate waste and nutrient exchange of the implanted scaffold with the surrounded tissue is a major concern. Moreover, the risk of mechanical instability in the defect area during regular activity increases as the defect size increases. Thus, scaffolds with better mass transportation and mechanical properties are desired. This study introduces 3D printed polymeric scaffolds with a continuous pattern, ZigZag-Spiral pattern, for bone defects treatments. This pattern has a uniform distribution of pore size, which leads to uniform distribution of wall shear stress which is crucial for uniform differentiation of cells attached to the scaffolds. The mechanical, mass transportation, and biological properties of the 3D printed scaffolds are evaluated. The results show that the presented scaffolds have permeability similar to natural bone and, with the same porosity level, have higher mechanical properties than scaffolds with conventional lay-down patterns 0–90° and 0–45°. Finally, human mesenchymal stem cells are seeded on the scaffolds to determine the effects of geometrical microstructure on cell attachment and morphology. The results show that cells in scaffold with ZigZag-Spiral pattern infilled pores gradually, while the other patterns need more time to fill the pores. Considering mechanical, transportation, and biological properties of the considered patterns, scaffolds with ZigZag-Spiral patterns can mimic the properties of cancellous bones and be a better choice for treatments of bone defects.

Original languageEnglish
Article number105418
Number of pages14
JournalJournal of the Mechanical Behavior of Biomedical Materials
Volume134
Early online date18 Aug 2022
DOIs
Publication statusPublished - 1 Oct 2022

Keywords

  • 3D bioprinting
  • bone defects
  • computational fluid dynamics simulation
  • nonlinear finite element analysis
  • permeability analysis
  • UKRI
  • EPSRC
  • EP/R015139/1

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