Synthetic bone: Design by additive manufacturing

被引:207
作者
Barba, D. [1 ,4 ]
Alabort, E. [3 ]
Reed, R. C. [1 ,2 ]
机构
[1] Univ Oxford, Dept Mat, Parks Rd, Oxford OX1 3PH, England
[2] Univ Oxford, Dept Engn Sci, Parks Rd, Oxford OX1 3PJ, England
[3] OxMet Technol, 15 Oxford Ind Pk, Oxford OX5 1QU, England
[4] Univ Politecn Madrid, Sch Aeronaut & Space Engn ETSIAE, Madrid 28040, Spain
关键词
Lattices; 3D-printing; Lattice; Biomaterial; Implants; Osseo-integration; MECHANICAL-PROPERTIES; PORE-SIZE; ORTHOPEDIC IMPLANTS; ALLOY SCAFFOLDS; CORTICAL BONE; TISSUE; SURFACE; OSSEOINTEGRATION; REGENERATION; POROSITY;
D O I
10.1016/j.actbio.2019.07.049
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A broad range of synthetic trabecular-like metallic lattices are 3D printed, to study the extra design freedom conferred by this new manufacturing process. The aim is to propose new conceptual types of implant structures for superior bio-mechanical matching and osseo-integration: synthetic bone. The target designs are 3D printed in Ti-6Al-4V alloy using a laser-bed process. Systematic evaluation is then carried out: (i) their accuracy is characterised at high spatial resolution using computed X-ray tomography, to assess manufacturing robustness with respect to the original geometrical design intent and (ii) the mechanical properties - stiffness and strength - are experimentally measured, evaluated, and compared. Finally, this new knowledge is synthesised in a conceptual framework to allow the construction of so-called implant design maps, to define the processing conditions of bone tailored substitutes, with focus on spine fusion devices. The design criteria emphasise the bone stiffness-matching, preferred range of pore structure for bone in-growth, manufacturability of the device and choice of inherent materials properties which are needed for durable implants. Examples of the use of such maps are given with focus on spine fusion devices, emphasising the stiffness-matching, osseo-integration properties and choice of inherent materials properties which are needed for durable implants. Statement of Significance We present a conceptual bio-engineering design methodology for new biomedical lattices produced by additive manufacturing, which addresses some of the critical points in currently existing porous implant materials. Amongst others: (i) feasibility and accuracy of manufacturing, (ii) design to the elastic properties of bone, and (iii) sensible pores sizes for osseointegration. This has inspired new and novel geometrical latticed designs which aim at improving the properties of intervertebral fusion devices. In their fundamental form, these structures are here fabricated and tested. When integrated into medical devices, these concepts could offer superior medical outcomes. (C) 2019 Acta Materialia Inc. Published by Elsevier Ltd.
引用
收藏
页码:637 / 656
页数:20
相关论文
共 50 条
[21]   Recent Developments of Biomaterials for Additive Manufacturing of Bone Scaffolds [J].
Chen, You ;
Li, Weilin ;
Zhang, Chao ;
Wu, Zhaoying ;
Liu, Jie .
ADVANCED HEALTHCARE MATERIALS, 2020, 9 (23)
[22]   A Critical Review on the Design, Manufacturing and Assessment of the Bone Scaffold for Large Bone Defects [J].
Huo, Yi ;
Lu, Yongtao ;
Meng, Lingfei ;
Wu, Jiongyi ;
Gong, Tingxiang ;
Zou, Jia'ao ;
Bosiakov, Sergei ;
Cheng, Liangliang .
FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2021, 9
[23]   (Re)Design for Additive Manufacturing [J].
Hallgren, Sebastian ;
Pejryd, Lars ;
Ekengren, Jens .
26TH CIRP DESIGN CONFERENCE, 2016, 50 :246-251
[24]   Topological Design of a Trabecular Bone Structure With Morphology and Mechanics Control for Additive Manufacturing [J].
Liu, Rong ;
Chen, Yaru ;
Liu, Yin ;
Yan, Zikai ;
Wang, Yong-Xuan .
IEEE ACCESS, 2021, 9 :11123-11133
[25]   Advances in additive manufacturing for bone tissue engineering: materials, design strategies, and applications [J].
Pazhamannil, Ribin Varghese ;
Alkhedher, Mohammad .
BIOMEDICAL MATERIALS, 2025, 20 (01)
[26]   Additive Manufacturing of Bioceramic Implants for Restoration Bone Engineering: Technologies, Advances, and Future Perspectives [J].
Zhou, Qing ;
Su, Xiaonan ;
Wu, Jianqin ;
Zhang, Xueqin ;
Su, Ruyue ;
Sun, Qiang ;
Ma, Lili ;
He, Rujie .
ACS BIOMATERIALS SCIENCE & ENGINEERING, 2023, 9 (03) :1164-1189
[27]   In vitro and in vivo study of additive manufactured porous Ti6Al4V scaffolds for repairing bone defects [J].
Li, Guoyuan ;
Wang, Lei ;
Pan, Wei ;
Yang, Fei ;
Jiang, Wenbo ;
Wu, Xianbo ;
Kong, Xiangdong ;
Dai, Kerong ;
Hao, Yongqiang .
SCIENTIFIC REPORTS, 2016, 6
[28]   Effect of different structures fabricated by additive manufacturing on bone ingrowth [J].
Lu, Shunyi ;
Jiang, Dongjie ;
Liu, Shuhao ;
Liang, Haifeng ;
Lu, Junren ;
Xu, Hao ;
Li, Juan ;
Xiao, Jian ;
Zhang, Jian ;
Fei, Qinming .
JOURNAL OF BIOMATERIALS APPLICATIONS, 2022, 36 (10) :1863-1872
[29]   Additive Manufacturing of Bone Scaffolds Using PolyJet and Stereolithography Techniques [J].
Rasheed, Shummaila ;
Lughmani, Waqas Akbar ;
Obeidi, Muhannad Ahmed ;
Brabazon, Dermot ;
Ahad, Inam Ul .
APPLIED SCIENCES-BASEL, 2021, 11 (16)
[30]   Additive manufacturing for biomedical bone implants: Shaping the future of bones [J].
Razzaq, Muhammad Hassan ;
Zaheer, Muhammad Usama ;
Asghar, Humaira ;
Aktas, O. Cenk ;
Aycan, Mehmet Fatih ;
Mishra, Yogendra Kumar .
MATERIALS SCIENCE & ENGINEERING R-REPORTS, 2025, 163