个性化文献订阅>期刊> Journal of Materials Chemistry
 

Preparation, characterization and in vitro angiogenic capacity of cobalt substituted beta-tricalcium phosphate ceramics

  作者 ZHANG MEILI; WU CHENGTIE; LI HAIYAN; YUEN JONES; CHANG JIANG; XIAO YIN  
  选自 期刊  Journal of Materials Chemistry;  卷期  2012年22-40;  页码  21686-21694  
  关联知识点  
 

[摘要]Divalent cobalt ions (Co2+) have been shown to possess the capacity to induce angiogenesis by activating hypoxia inducible factor-1 alpha (HIF-1 alpha.) and subsequently inducing the production of vascular endothelial growth factor (VEGF). However, there are few reports about Co-containing biomaterials for inducing in vitro angiogenesis. The aim of the present work was to prepare Co-containing beta-tricalcium phosphate (Co-TCP) ceramics with different contents of calcium substituted by cobalt (0, 2, 5 mol%) and to investigate the effect of Co substitution on their physicochemical and biological properties. Co-TCP powders were synthesized by a chemistry precipitation method and Co-TCP ceramics were prepared by sintering the powder compacts. The effect of Co substitution on phase transition and the sintering property of the beta-TCP ceramics was investigated. The proliferation and VEGF expression of human bone marrow mesenchymal stem cells (HBMSCs) cultured with both powder extracts and ceramic discs of Co-TCP was further evaluated. The in vitro angiogenesis was evaluated by the tube-like structure formation of human umbilical vein endothelial cells (HUVECs) cultured on ECMatrix (TM) in the presence of powder extracts. The results showed that Co substitution suppressed the phase transition from beta- to alpha-TCP. Both the powder extracts and ceramic discs of Co-TCP had generally good cytocompatibility to support HBMSC growth. Importantly, the incorporation of Co into beta-TCP greatly stimulated VEGF expression of HBMSCs and Co-TCP showed a significant enhancement of network structure formation of HUVECs compared with pure TCP. Our results suggested that the incorporation of Co into bioceramics is a potential viable way to enhance angiogenic properties of biomaterials. Co-TCP bioceramics may be used for bone tissue regeneration with improved angiogenic capacity.

 
      被申请数(0)  
 

[全文传递流程]

一般上传文献全文的时限在1个工作日内