A 3D printed TCP/HA structure as a new osteoconductive scaffold for vertical bone augmentation

被引:74
作者
Carrel, Jean-Pierre [1 ]
Wiskott, Anselm [2 ]
Moussa, Mira [2 ]
Rieder, Philippe [2 ]
Scherrer, Susanne [2 ]
Durual, Stephane [2 ]
机构
[1] Sch Dent Med, Div Oral & Maxillofacial Pathol HUG, Dept Maxillofacial & Oral Surg, Geneva, Switzerland
[2] Univ Geneva, Sch Dent Med, Div Fixed Prosthodont & Biomat, CH-1205 Geneva, Switzerland
关键词
animal experiments; bone regeneration; bone substitutes; guided tissue regeneration; HYDROXYAPATITE; IMPLANTS; MODEL;
D O I
10.1111/clr.12503
中图分类号
R78 [口腔科学];
学科分类号
1003 ;
摘要
Introduction: OsteoFlux (R) (OF) is a 3D printed porous block of layered strands of tricalcium phosphate (TCP) and hydroxyapatite. Its porosity and interconnectivity are defined, and it can be readily shaped to conform the bone bed's morphology. We investigated the performance of OF as a scaffold to promote the vertical growth of cortical bone in a sheep calvarial model. Materials and methods: Six titanium hemispheres were filled with OF, Bio-Oss (particulate bovine bone, BO), or Ceros (particulate TCP, CO) and placed onto the calvaria of 12 adult sheep (6 hemispheres/sheep). Histomorphometric analyses were performed after 8 and 16 weeks. Results: OF led to substantial vertical bone growth by 8 weeks and outperformed BO and CO by a factor 2 yielding OF 22% +/- 2.1; BO 11.5% +/- 1.9; and CO 12.9% +/- 2.1 total new bone. 3 mm away from the bony bed, OF led to a fourfold increase in new bone relative to BO and CO (n = 8, P < 0.002). At 16 weeks, OF, BO, and CO behaved similarly and showed marked new bone synthesis. A moderate degradation was observed at 16 weeks for all bone substitutes. Conclusion: When compared to existing bone substitutes, OF enhances vertical bone growth during the first 2 months after implantation in a sheep calvarial model. The controlled porous structure translated in a high osteoconductivity and resulted in a bone mass 3 mm above the bony bed that was four times greater than that obtained with standard substitutes. These results are promising but must be confirmed in clinical tests.
引用
收藏
页码:55 / 62
页数:8
相关论文
共 22 条
[1]   Simultaneous in vivo comparison of bone substitutes in a guided bone regeneration model [J].
Busenlechner, Dieter ;
Tangl, Stefan ;
Mair, Birgit ;
Fugger, Georg ;
Gruber, Reinhard ;
Redl, Heinz ;
Watzek, Georg .
BIOMATERIALS, 2008, 29 (22) :3195-3200
[2]   Biphasic calcium phosphate concept applied to artificial bone, implant coating and injectable bone substitute [J].
Daculsi, G .
BIOMATERIALS, 1998, 19 (16) :1473-1478
[3]   Vertical bone augmentation procedures: Basics and techniques in dental implantology [J].
Draenert, F. G. ;
Huetzen, D. ;
Neff, A. ;
Mueller, W. E. G. .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2014, 102 (05) :1605-1613
[4]   Interventions for replacing missing teeth: horizontal and vertical bone augmentation techniques for dental implant treatment [J].
Esposito, Marco ;
Grusovin, Maria Gabriella ;
Felice, Pietro ;
Karatzopoulos, Georgios ;
Worthington, Helen V. ;
Coulthard, Paul .
COCHRANE DATABASE OF SYSTEMATIC REVIEWS, 2009, (04)
[5]   Performance of functionally graded implants of polylactides and calcium phosphate/calcium carbonate in an ovine model for computer assisted craniectomy and cranioplasty [J].
Eufinger, Harald ;
Rasche, Christian ;
Lehmbrock, Jutta ;
Wehmoeller, Michael ;
Weihe, Stephan ;
Schmitz, Inge ;
Schiller, Carsten ;
Epple, Matthias .
BIOMATERIALS, 2007, 28 (03) :475-485
[6]   Vertical ridge augmentation of the atrophic posterior mandible with interpositional bloc grafts: bone from the iliac crest vs. bovine anorganic bone. Clinical and histological results up to one year after loading from a randomized-controlled clinical trial [J].
Felice, Pietro ;
Marchetti, Claudio ;
Iezzi, Giovanna ;
Piattelli, Adriano ;
Worthington, Helen ;
Pellegrino, Gerardo ;
Esposito, Marco .
CLINICAL ORAL IMPLANTS RESEARCH, 2009, 20 (12) :1386-1393
[7]   A 1-year study of osteoinduction in hydroxyapatite-derived Biomaterials in an adult sheep model: Part II. Bioengineering implants to optimize bone replacement in reconstruction of cranial defects [J].
Gosain, AK ;
Riordan, PA ;
Song, LS ;
Amarante, MT ;
Kalantarian, B ;
Nagy, PG ;
Wilson, CR ;
Toth, JM ;
McIntyre, BL .
PLASTIC AND RECONSTRUCTIVE SURGERY, 2004, 114 (05) :1155-1163
[8]  
Gross J S, 1997, Compend Contin Educ Dent, V18, P1013
[9]  
Hollister S J, 2005, Orthod Craniofac Res, V8, P162, DOI 10.1111/j.1601-6343.2005.00329.x
[10]   Porosity of 3D biomaterial scaffolds and osteogenesis [J].
Karageorgiou, V ;
Kaplan, D .
BIOMATERIALS, 2005, 26 (27) :5474-5491