J4 ›› 2015, Vol. 12 ›› Issue (4): 604-612.doi: 10.1016/S1672-6529(14)60150-5

• 论文 • 上一篇    下一篇

Enhanced Osteogenesis of Nanosized Cobalt-substituted Hydroxyapatite

Nenad Ignjatovi?1, Zorica Ajdukovi?2, Jelena Rajkovi?3, Stevo Najman3, Dragan Mihailovi?4, Dragan Uskokovi?1   

  1. 1. Centre for Fine Particles Processing and Nanotechnologies, Institute of Technical Sciences of the Serbian Academy of Science and Arts, Knez Mihailova 35/4, 11000 Belgrade, Serbia
    2. University of Niš, Faculty of Medicine, Department of Prosthodontics, Clinic of Stomatology, Niš, Serbia
    3. University of Niš, Department of Biology and Ecology Faculty of Science and Mathematics, Niš, Serbia
    4. University of Niš, Faculty of Medicine, Institute of Pathology, Niš, Serbia
  • 收稿日期:2015-01-09 修回日期:2015-09-09 出版日期:2015-10-10 发布日期:2015-10-10
  • 通讯作者: Dragan Uskokovi? E-mail:dragan.uskokovic@itn.sanu.ac.rs
  • 作者简介:Nenad Ignjatovi?1, Zorica Ajdukovi?2, Jelena Rajkovi?3, Stevo Najman3, Dragan Mihailovi?4, Dragan Uskokovi?1

Enhanced Osteogenesis of Nanosized Cobalt-substituted Hydroxyapatite

Nenad Ignjatovi?1, Zorica Ajdukovi?2, Jelena Rajkovi?3, Stevo Najman3, Dragan Mihailovi?4, Dragan Uskokovi?1   

  1. 1. Centre for Fine Particles Processing and Nanotechnologies, Institute of Technical Sciences of the Serbian Academy of Science and Arts, Knez Mihailova 35/4, 11000 Belgrade, Serbia
    2. University of Niš, Faculty of Medicine, Department of Prosthodontics, Clinic of Stomatology, Niš, Serbia
    3. University of Niš, Department of Biology and Ecology Faculty of Science and Mathematics, Niš, Serbia
    4. University of Niš, Faculty of Medicine, Institute of Pathology, Niš, Serbia
  • Received:2015-01-09 Revised:2015-09-09 Online:2015-10-10 Published:2015-10-10
  • Contact: Dragan Uskokovi? E-mail:dragan.uskokovic@itn.sanu.ac.rs
  • About author:Nenad Ignjatovi?1, Zorica Ajdukovi?2, Jelena Rajkovi?3, Stevo Najman3, Dragan Mihailovi?4, Dragan Uskokovi?1

摘要:

Hydroxyapatite (HAp) is an extensively studied material with known biocompatible and osteoconductive properties in bone tissue reconstruction. The improvement of the osteogenetic potential of HAp has been tested through modification of its structure, by replacing Ca2+ ions with Co2+ ions. In our study, we comparatively analyze the osteogenetic potential of the syn-thesized HAp and Co2+-substituted HAp (HAp/Co) designed on the nano-scale with the aim of specifically stimulating osteo-genesis in vivo. We present a quantitative study of the microscopic organization and structure of the newly formed tissue in a bone defect after 12 weeks and 24 weeks. A quantitative analysis of the calcium, magnesium and phosphorus content in the defect and its close environment was used to determine the deposition of minerals after bone reconstruction. The defect recon-structed with HAp/Co nanoparticles (Co2+ content 12 wt%) was filled with a new tissue matrix composed of dense collagen fibers containing centers of mineralization after 24 weeks. The mineral deposition rate was also higher when the defect was reconstructed with HAp/Co than when it was filled with pure HAp. A histological analysis confirmed that the alveolar bone, in which osteoporosis-induced defects were repaired using HAp/Co nanoparticles, was recuperated.

关键词: advanced osteogenesis, cobalt-substituted hydroxyapatite, nanoparticles, histomorphometry

Abstract:

Hydroxyapatite (HAp) is an extensively studied material with known biocompatible and osteoconductive properties in bone tissue reconstruction. The improvement of the osteogenetic potential of HAp has been tested through modification of its structure, by replacing Ca2+ ions with Co2+ ions. In our study, we comparatively analyze the osteogenetic potential of the syn-thesized HAp and Co2+-substituted HAp (HAp/Co) designed on the nano-scale with the aim of specifically stimulating osteo-genesis in vivo. We present a quantitative study of the microscopic organization and structure of the newly formed tissue in a bone defect after 12 weeks and 24 weeks. A quantitative analysis of the calcium, magnesium and phosphorus content in the defect and its close environment was used to determine the deposition of minerals after bone reconstruction. The defect recon-structed with HAp/Co nanoparticles (Co2+ content 12 wt%) was filled with a new tissue matrix composed of dense collagen fibers containing centers of mineralization after 24 weeks. The mineral deposition rate was also higher when the defect was reconstructed with HAp/Co than when it was filled with pure HAp. A histological analysis confirmed that the alveolar bone, in which osteoporosis-induced defects were repaired using HAp/Co nanoparticles, was recuperated.

Key words: ced osteogenesis, cobalt-substituted hydroxyapatite, nanoparticles, histomorphometry