Osteoconductive Microarchitecture of Bone Substitutes for Bone Regeneration Revisited

被引:105
作者
Ghayor, Chafik [1 ]
Weber, Franz E. [1 ,2 ,3 ]
机构
[1] Univ Zurich, Ctr Dent Med, Dept Craniomaxillofacial & Oral Surg, Oral Biotechnol & Bioengn, Zurich, Switzerland
[2] Univ Zurich, Zurich Ctr Integrat Human Physiol, Zurich, Switzerland
[3] Univ Zurich, Ctr Appl Biotechnol & Mol Med, Zurich, Switzerland
基金
瑞士国家科学基金会;
关键词
osteoconduction; pore; bone substitute material; additive manufacturing; lithography; micro architecture; bone regeneration; scaffold; CALCIUM-PHOSPHATE CERAMICS; TITANIUM IMPLANTS; PORE-SIZE; IN-VITRO; TISSUE; SCAFFOLDS; CELLS; HYDROXYAPATITE;
D O I
10.3389/fphys.2018.00960
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
In the last three decades, all efforts in bone tissue engineering were driven by the dogma that the ideal pore size in bone substitutes lies between 0.3 and 0.5 mm in diameter. Newly developed additive manufacturing methodologies for ceramics facilitate the total control over pore size, pore distribution, bottleneck size, and bottleneck distribution. Therefore, this appears to be the method of choice with which to test the aforementioned characteristics of an ideal bone substitute. To this end, we produced a library of 15 scaffolds with diverse defined pore/bottleneck dimensions and distributions, tested them in vivo in a calvarial bone defect model in rabbits, and assessed the clinically most relevant parameters: defect bridging and bony regenerated area. Our in vivo data revealed that the ideal pore/bottleneck dimension for bone substitutes is in the range of 0.7-1.2 mm, and appears therefore to be twofold to fourfold more extended than previously thought. Pore/bottleneck dimensions of 1.5 and 1.7 mm perform significantly worse and appear unsuitable in bone substitutes. Thus, our results set the ideal range of pore/bottleneck dimensions and are likely to have a significant impact on the microarchitectural design of future bone substitutes for use in orthopedic, trauma, cranio-maxillofacial and oral surgery.
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页数:10
相关论文
共 59 条
[1]   Cell Invasion in Collagen Scaffold Architectures Characterized by Percolation Theory [J].
Ashworth, Jennifer C. ;
Mehr, Marco ;
Buxton, Paul G. ;
Best, Serena M. ;
Cameron, Ruth E. .
ADVANCED HEALTHCARE MATERIALS, 2015, 4 (09) :1317-1321
[2]  
Axhausen G, 1909, DTSCH Z CHIR, V91, P388, DOI [10.1007/BF02816571, DOI 10.1007/BF02816571]
[3]  
Barth A., 1893, Arch Klin Chir, V46, P409
[4]   Microporous calcium phosphate ceramics as tissue engineering scaffolds for the repair of osteochondral defects: Histological results [J].
Bernstein, A. ;
Niemeyer, P. ;
Salzmann, G. ;
Suedkamp, N. P. ;
Hube, R. ;
Klehm, J. ;
Menzel, M. ;
von Eisenhart-Rothe, R. ;
Bohner, M. ;
Goerz, L. ;
Mayr, H. O. .
ACTA BIOMATERIALIA, 2013, 9 (07) :7490-7505
[5]   Mesenchymal stem cells: Revisiting history, concepts, and assays [J].
Bianco, Paolo ;
Robey, Pamela Gehron ;
Simmons, Paul J. .
CELL STEM CELL, 2008, 2 (04) :313-319
[6]   Pre-clinical studies of bone regeneration with human bone marrow stromal cells and biphasic calcium phosphate [J].
Brennan, Meadhbh A. ;
Renaud, Audrey ;
Amiaud, Jerome ;
Rojewski, Markus T. ;
Schrezenmeier, Hubert ;
Heymann, Dominique ;
Trichet, Valerie ;
Layrolle, Pierre .
STEM CELL RESEARCH & THERAPY, 2014, 5
[7]  
BURCHARDT H, 1983, CLIN ORTHOP RELAT R, P28
[8]   INFLUENCE OF SURFACE CHARACTERISTICS ON BONE INTEGRATION OF TITANIUM IMPLANTS - A HISTOMORPHOMETRIC STUDY IN MINIATURE PIGS [J].
BUSER, D ;
SCHENK, RK ;
STEINEMANN, S ;
FIORELLINI, JP ;
FOX, CH ;
STICH, H .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 1991, 25 (07) :889-902
[9]   Tissue engineering and cell therapy of cartilage and bone [J].
Cancedda, R ;
Dozin, B ;
Giannoni, P ;
Quarto, R .
MATRIX BIOLOGY, 2003, 22 (01) :81-91
[10]   A critical review of recombinant human bone morphogenetic protein-2 trials in spinal surgery: emerging safety concerns and lessons learned [J].
Carragee, Eugene J. ;
Hurwitz, Eric L. ;
Weiner, Bradley K. .
SPINE JOURNAL, 2011, 11 (06) :471-491