4.8 Article

Craniofacial vertical bone augmentation: A comparison between 3D printed monolithic monetite blocks and autologous onlay grafts in the rabbit

期刊

BIOMATERIALS
卷 30, 期 31, 页码 6318-6326

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.biomaterials.2009.07.049

关键词

Monetite; Bone; Autograft; Onlay; Monolithic; Histomorphometry

资金

  1. Fundacion Espanola para la Ciencia y Tecnologia (FECYT)
  2. Spanish Science and Education Ministry [MAT2006-13646-C03-01]
  3. UCM Program for Research Groups
  4. Canada Research Chair program
  5. NSERC
  6. Quebec Ministere des Relations Internationales [PSR-SIIRI-029 1131]

向作者/读者索取更多资源

Onlay autografting is amongst the most predictable techniques for craniofacial vertical bone augmentation, however, complications related to donor site surgery are common and synthetic alternatives to onlay autografts are desirable. Recent studies have shown that the acidic calcium phosphates, brushite and monetite, are osteoconductive, osteoinductive and resorb faster in vivo than hydroxyapatite. Moreover, they can be 3D printed allowing precise host bone-implant conformation. The objectives of this study were to confirm that craniofacial screw fixation of 3D printed monetite blocks was possible and to compare the resulting vertical bone augmentation with autograft. 3D printed monolithic monetite onlay implants were fixed with osteosynthesis screws on the calvarial bone surface of New Zealand rabbits. After 8 weeks, integration between the implant and the calvarial bone surface was observed in all cases. Histomorphometry revealed that 42% of the monetite was resorbed and that the new bone formed within the implant occupied 43% of its volume, sufficient for immediate dental implant placement. Bone tissue within the autologous onlay occupied 60% of the volume. We observed that patterns of regeneration within the implants differed throughout the material and propose that this was due to the anatomy and blood supply pattern in the region. Rapid prototyped monetite being resorbable osteoconductive and osteoinductive would appear to be a promising biomaterial for many bone regeneration strategies. (C) 2009 Elsevier Ltd. All rights reserved.

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