Design and development of 3D printed shape memory triphasic polymer-ceramic bioactive scaffolds for bone tissue engineering

Jun 24, 2024Journal of materials chemistry. B

3D Printed Shape-Changing Polymer-Ceramic Scaffolds for Bone Repair

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Abstract

The composite scaffold achieved compressive strength of approximately 50 MPa, over 90% greater than pristine PLA scaffolds.

  • Incorporation of wollastonite particles (WP) enhanced the mechanical properties and osteoconductive potential of the scaffolds.
  • The scaffolds demonstrated interconnected pores measuring 550 μm and porosity exceeding 50%.
  • Flexural strength improved by 140% with 40 wt% WP loading, indicating greater load-bearing capability.
  • The scaffolds exhibited a shape recovery ratio of approximately 84%, indicating effective shape memory behavior.
  • Water contact angle was significantly reduced to 49.61° for scaffolds with 40 wt% WP, suggesting improved hydrophilicity.
  • Despite the incorporation of WP, the scaffolds did not leach toxic substances and showed good cell viability.

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