Osteogenesis by foamed and 3D-printed nanostructured calcium phosphate scaffolds: Effect of pore architecture

被引:103
作者
Barba, Albert [1 ,2 ,3 ]
Maazouz, Yassine [1 ,2 ]
Diez-Escudero, Anna [1 ,2 ]
Rappe, Katrin [3 ]
Espanol, Montserrat [1 ,2 ]
Montufar, Edgar B. [1 ,2 ,7 ]
Ohman-Magi, Caroline [4 ]
Persson, Cecilia [4 ]
Fontecha, Pedro [3 ]
Manzanares, Maria-Cristina [5 ]
Franch, Jordi [3 ]
Ginebra, Maria-Pau [1 ,2 ,6 ]
机构
[1] Univ Politecn Cataluna, Biomat Biomech & Tissue Engn Grp, Dept Mat Sci & Met Engn, Ave Eduard Maristany 10-14, Barcelona 08019, Spain
[2] Univ Politecn Cataluna, Barcelona Res Ctr Multiscale Sci & Engn, Ave Eduard Maristany 10-14, Barcelona 08019, Spain
[3] Univ Autonoma Barcelona, Sch Vet, Small Anim Surg Dept, Bone Healing Grp, Bellaterra 08193, Barcelona, Spain
[4] Uppsala Univ, Div Appl Mat Sci, Dept Engn Sci, Mat Med Grp, S-75121 Uppsala, Sweden
[5] Univ Barcelona, Dept Pathol & Expt Therapeut, Human Anat & Embryol Unit, Lhospitalet De Llobregat 08907, Barcelona, Spain
[6] Barcelona Inst Technol BIST, Inst Bioengn Catalonia IBEC, Barcelona 08028, Spain
[7] Brno Univ Technol, CEITEC Cent European Inst Technol, Brno 61200, Czech Republic
关键词
Osteogenesis; Pore architecture; 3D-printing; Foaming; Calcium phosphate; BONE MORPHOGENETIC PROTEINS; BETA-TRICALCIUM PHOSPHATE; IN-VIVO; HYDROXYAPATITE SCAFFOLDS; DEFICIENT HYDROXYAPATITE; OSTEOINDUCTIVE BIOMATERIALS; INORGANIC-PHOSPHATE; OSTEOCLASTS; DIFFERENTIATION; REGENERATION;
D O I
10.1016/j.actbio.2018.09.003
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
There is an urgent need of synthetic bone grafts with enhanced osteogenic capacity. This can be achieved by combining biomaterials with exogenous growth factors, which however can have numerous undesired side effects, but also by tuning the intrinsic biomaterial properties. In a previous study, we showed the synergistic effect of nanostructure and pore architecture of biomimetic calcium deficient hydroxyapatite (CDHA) scaffolds in enhancing osteoinduction, i.e. fostering the differentiation of mesenchymal stem cells to bone forming cells. This was demonstrated by assessing bone formation after implanting the scaffolds intramuscularly. The present study goes one step forward, since it analyzes the effect of the geometrical features of the same CDHA scaffolds, obtained either by 3D-printing or by foaming, on the osteogenic potential and resorption behaviour in a bony environment. After 6 and 12 weeks of intraosseous implantation, both bone formation and material degradation had been drastically affected by the macropore architecture of the scaffolds. Whereas nanostructured CDHA was shown to be highly osteoconductive both in the robocast and foamed scaffolds, a superior osteogenic capacity was observed in the foamed scaffolds, which was associated with their higher intrinsic osteoinductive potential. Moreover, they showed a significantly higher cell-mediated degradation than the robocast constructs, with a simultaneous and progressive replacement of the scaffold by new bone. In conclusion, these results demonstrate that the control of macropore architecture is a crucial parameter in the design of synthetic bone grafts, which allows fostering both material degradation and new bone formation. Statement of Significance 3D-printing technologies open new perspectives for the design of patient-specific bone grafts, since they allow customizing the external shape together with the internal architecture of implants. In this respect, it is important to design the appropriate pore geometry to maximize the bone healing capacity of these implants. The present study analyses the effect of pore architecture of nanostructured hydroxyapatite scaffolds, obtained either by 3D-printing or foaming, on the osteogenic potential and scaffold resorption in an in vivo model. While nanostructured hydroxyapatite showed excellent osteoconductive properties irrespective of pore geometry, we demonstrated that the spherical, concave macropores of foamed scaffolds significantly promoted both material resorption and bone regeneration compared to the 3D-printed scaffolds with orthogonal-patterned struts and therefore prismatic, convex macropores. (C) 2018 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:135 / 147
页数:13
相关论文
共 53 条
[31]   Evaluation of bone formation in calcium phosphate scaffolds with μCT-method validation using SEM [J].
Lewin, S. ;
Barba, A. ;
Persson, C. ;
Franch, J. ;
Ginebra, M-P ;
Ohman-Magi, C. .
BIOMEDICAL MATERIALS, 2017, 12 (06)
[32]   Low-Temperature Additive Manufacturing of Biomimic Three-Dimensional Hydroxyapatite/Collagen Scaffolds for Bone Regeneration [J].
Lin, Kai-Feng ;
He, Shu ;
Song, Yue ;
Wang, Chun-Mei ;
Gao, Yi ;
Li, Jun-Qin ;
Tang, Peng ;
Wang, Zheng ;
Bi, Long ;
Pei, Guo-Xian .
ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (11) :6905-6916
[33]   Robocasting of biomimetic hydroxyapatite scaffolds using self-setting inks [J].
Maazouz, Y. ;
Montufar, E. B. ;
Guillem-Marti, J. ;
Fleps, I. ;
Ohman, C. ;
Persson, C. ;
Ginebr, M. P. .
JOURNAL OF MATERIALS CHEMISTRY B, 2014, 2 (33) :5378-5386
[34]   Self-hardening and thermoresponsive alpha tricalcium phosphate/pluronic pastes [J].
Maazouz, Yassine ;
Montufar, Edgar B. ;
Malbert, Julien ;
Espanol, Montserrat ;
Ginebra, Maria-Pau .
ACTA BIOMATERIALIA, 2017, 49 :563-574
[35]   Foamed surfactant solution as a template for self-setting injectable hydroxyapatite scaffolds for bone regeneration [J].
Montufar, E. B. ;
Traykova, T. ;
Gil, C. ;
Harr, I. ;
Almirall, A. ;
Aguirre, A. ;
Engel, E. ;
Planell, J. A. ;
Ginebra, M. P. .
ACTA BIOMATERIALIA, 2010, 6 (03) :876-885
[36]  
National Research Council, 1996, GUIDE CARE USE LAB A, P41
[37]   The slow resorption with replacement by bone of a hydrothermally synthesized pure calcium-deficient hydroxyapatite [J].
Okuda, Takatoshi ;
Ioku, Koji ;
Yonezawa, Ikuho ;
Minagi, Hideyuki ;
Gonda, Yoshinori ;
Kawachi, Giichiro ;
Kamitakahara, Masanobu ;
Shibata, Yasuaki ;
Murayama, Hisashi ;
Kurosawa, Hisashi ;
Ikeda, Tohru .
BIOMATERIALS, 2008, 29 (18) :2719-2728
[38]   Drug delivery from injectable calcium phosphate foams by tailoring the macroporosity-drug interaction [J].
Pastorino, David ;
Canal, Cristina ;
Ginebra, Maria-Pau .
ACTA BIOMATERIALIA, 2015, 12 :250-259
[39]   Regulation of bone formation by osteoclasts involves Wnt/BMP signaling and the chemokine sphingosine-1-phosphate [J].
Pederson, Larry ;
Ruan, Ming ;
Westendorf, Jennifer J. ;
Khosla, Sundeep ;
Oursler, Merry Jo .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2008, 105 (52) :20764-20769
[40]  
Ripamonti U, 1999, S AFR J SCI, V95, P335