Graded Hydroxyapatite Triply Periodic Minimal Surface Structures for Bone Tissue Engineering Applications
Koushik, Tejas M., Miller, Catherine M., and Antunes, Elsa (2025) Graded Hydroxyapatite Triply Periodic Minimal Surface Structures for Bone Tissue Engineering Applications. Advanced Healthcare Materials, 14 (25). 2402953.
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Abstract
Porous scaffolds in bone tissue engineering (BTE) play a crucial role in facilitating osteointegration with host tissues and providing nutrients to cells involved in bone healing. Scaffold architecture influences osteointegration, biofunctionality and mechanical strength, necessitating a clear understanding of its impact. In this study, hydroxyapatite scaffolds are 3D printed with three types of triply periodic minimal surface (TPMS) structures: gyroid, lidinoid, and split-P, at porosities ranging from 50% to 80%. Split-P architecture exhibits the highest compression strength, between 15 and 25 MPa, but provides the least surface area for bone apatite precipitation. Conversely, gyroid and lidinoid structures demonstrate the highest levels of bone apatite precipitation across all porosities when immersed in simulated body fluid. To optimise scaffold design, graded structures were designed with multiple TPMS structures arranged in a core-shell configuration. A structure featuring a solid core and a 70% gyroid shell achieves the highest compression strength of 120 MPa, while also supporting cell attachment and differentiation comparable to that of a fully porous structure. This combination of compression strength similar to cancellous bone and ability for positive interaction with osteoblast cells makes it an ideal candidate for load-bearing applications in BTE.
| Item ID: | 88399 |
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| Item Type: | Article (Research - C1) |
| ISSN: | 2192-2659 |
| Keywords: | 3D Printing, bioceramic, bone tissue engineering, graded structures |
| Copyright Information: | © 2025 The Author(s). Advanced Healthcare Materials published by Wiley-VCH GmbH This is an open access article under the terms of the Creative Commons Attribution-NonCommercial License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes. |
| Date Deposited: | 16 Apr 2026 05:27 |
| FoR Codes: | 32 BIOMEDICAL AND CLINICAL SCIENCES > 3206 Medical biotechnology > 320606 Regenerative medicine (incl. stem cells) @ 50% 40 ENGINEERING > 4003 Biomedical engineering > 400311 Tissue engineering @ 50% |
| SEO Codes: | 20 HEALTH > 2001 Clinical health > 200105 Treatment of human diseases and conditions @ 100% |
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