The influence of cobalt incorporation and cobalt precursor selection on the structure and bioactivity of sol–gel-derived bioactive glass

被引:0
作者
Breno R. Barrioni
Elizabeth Norris
Julian R. Jones
Marivalda de M. Pereira
机构
[1] Federal University of Minas Gerais,Department of Metallurgical Engineering and Materials
[2] School of Engineering,Department of Materials
[3] Imperial College London,undefined
来源
Journal of Sol-Gel Science and Technology | 2018年 / 88卷
关键词
Bioactive glass; Sol–gel; Cobalt; Bioactivity;
D O I
暂无
中图分类号
学科分类号
摘要
Cobalt (Co) is a potential therapeutic ion used to enhance angiogenesis through a stabilizing effect on hypoxia-inducible factor 1 alpha (HIF-1α), and its incorporation into the structure of bioactive glass is a promising strategy to enable sustained local delivery of Co to a wound site or bone defect. Here Co-releasing bioactive glasses were obtained through the sol–gel method, comparing cobalt nitrate and cobalt chloride as precursors. The effect of using different Co precursors on the sol–gel synthesis and in the obtained bioactive glass structure, chemical composition, morphology, dissolution behaviour, hydroxycarbonate apatite (HCA) layer formation was investigated. When the chloride salt was used as Co precursor, evidence of crystalline cobalt (II, III) oxide (Co3O4) phase formation was found, along with the presence of Co3+ species as evaluated by X-ray diffraction (XRD) and X-ray photoelectron spectroscopy (XPS), whereas an amorphous glass containing mainly Co2+ species was obtained when the nitrate salt was the Co source. The presence of a crystalline phase decreased the surface area and pore volume of the final glass, consequently reducing the Co-release rate. Evidence of HCA layer formation after immersion in simulated body fluid (SBF) was still found when different precursors were used, although the rate of formation was reduced by the presence of Co. Therefore, this study showed that Co incorporation and the proper selection of the precursor could affect the final material structure, and properties, and should be considered when designing new bioactive glass compositions for tissue engineering applications.
引用
收藏
页码:309 / 321
页数:12
相关论文
共 374 条
[1]  
Hench LL(1971)Bonding mechanisms at the interface of ceramic prosthetic materials J Biomed Mater Res 5 117-141
[2]  
Splinter RJ(2013)Review of bioactive glass: from hench to hybrids Acta Biomater 9 4457-4486
[3]  
Allen WC(2017)Synthesis and dissolution behaviour of CaO/SrO-containing sol–gel-derived 58S glasses J Mater Sci 52 8858-8870
[4]  
Greenlee TK(2012)Effect of calcium source on structure and properties of sol–gel derived bioactive glasses Langmuir 28 17465-17476
[5]  
Jones JR(2015)Bioactive glasses beyond bone and teeth: emerging applications in contact with soft tissues Acta Biomater 13 1-15
[6]  
Maçon ALB(2018)Copper-containing mesoporous bioactive glass promotes angiogenesis in an in vivo zebrafish model Acta Biomaterialia 68 272-285
[7]  
Lee S(2016)Multilayered silica-biopolymer nanocapsules with a hydrophobic core and a hydrophilic tunable shell thickness Nanoscale 8 8798-8809
[8]  
Poologasundarampillai G(2016)Biodegradable mesoporous bioactive glass nanospheres for drug delivery and bone tissue regeneration Nanotechnology 27 1-8
[9]  
Kasuga T(2012)Heparin conjugated silica nanoparticle synthesis Mater Sci Eng C 32 2037-2041
[10]  
Jones JR(2018)Bouncing and 3D printable hybrids with self-healing properties Materials Horizons 5 849-860