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Physical and Biological Properties of Cobalt- and Copper-Doped Calcium Phosphates as Bone Substitute Materials

机译:钴和铜掺杂磷酸钙作为骨替代材料的物理和生物学特性

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摘要

Arthritis, osteoporosis, and other bone diseases and defects are common medical issues worldwide. By utilizing ceramic biomaterials as bone substitutes to treat these diseases, bone regeneration can be promoted and toxicity from the substitute material can be limited. Calcium phosphate (CaP) ceramics have become popular as bone substitutes due to their biocompatibility and similarity in composition to natural bone. The purpose of this research was to investigate the physical properties and biological responses of CaP-based bone substitutes, doped with metal ions. Some metal ions are present in natural bone in small amounts, and recent studies show they affect the biological responses of CaPs significantly. Dopants such as magnesium (Mg), strontium (Sr), silicon (Si) and iron (Fe) alter the phase composition, mechanical properties, osteogenesis and angiogenesis properties of CaPs, depending on their concentration and method of addition. In the present study, the effects of cobalt (Co) and copper (Cu) on the physical and biological properties of two main CaP materials, brushite cement (BrC) and tricalcium phosphate (TCP), have been investigated. Different concentrations of dopants in forms of oxide and/or chloride were selected and their effect on phase composition, sintering behavior, density, setting time, compressive strength and in vitro interaction with osteosarcoma and osteoblast cells was studied. Different techniques of sample preparation, challenges during cement preparation and compact sample pressing, sintering, and methods of dopant addition have been discussed.;The presence of Cu in tricalcium phosphate was found to increase thermal stability of the material and decrease the impact of sintering temperature on porosity. In addition, Cu caused a reduction in expression of inflammatory gene markers by human osteoblast cells, and an increased expression at early time points due of osteoinductive markers.;The addition of Cu and Co to brushite cement caused an increase in thermal stability of the material, and the addition of Cu caused significant increase in setting time. Small dopant amounts of Co caused decrease in setting time, but higher amounts caused an increase. In addition, Cu dopant in small amounts resulted in an increase of compressive strength. Both Cu and Co led to a decrease in expression of inflammatory gene markers by osteoblast and osteosarcoma cells respectively, and Cu also caused an increase in osteoinductive marker expression. Thus, these results indicate that Cu and Co have a positive impact on the physical, mechanical and biological properties of calcium phosphate biomaterials.
机译:关节炎,骨质疏松症和其他骨骼疾病和缺陷是世界范围内的常见医学问题。通过利用陶瓷生物材料作为骨替代物来治疗这些疾病,可以促进骨再生并且可以限制来自替代材料的毒性。磷酸钙(CaP)陶瓷因其生物相容性和与天然骨骼的相似性而成为骨替代品。这项研究的目的是研究掺杂金属离子的CaP基骨替代物的物理特性和生物学响应。一些金属离子少量存在于天然骨骼中,最近的研究表明它们会严重影响CaPs的生物学反应。诸如镁(Mg),锶(Sr),硅(Si)和铁(Fe)之类的掺杂剂取决于CaP的浓度和添加方法,会改变CaP的相组成,力学性能,成骨性和血管生成特性。在本研究中,已研究了钴(Co)和铜(Cu)对两种主要CaP材料(透钙磷石水泥(BrC)和磷酸三钙(TCP))的物理和生物学特性的影响。选择不同浓度的氧化物和/或氯化物形式的掺杂剂,研究它们对相组成,烧结行为,密度,凝固时间,抗压强度以及与骨肉瘤和成骨细胞体外相互作用的影响。讨论了不同的样品制备技术,水泥制备过程中的挑战以及紧凑的样品压制,烧结和掺杂剂的添加方法。磷酸三钙中铜的存在增加了材料的热稳定性并降低了烧结温度的影响在孔隙率上。此外,铜导致人成骨细胞减少炎症基因标志物的表达,并且由于骨诱导标志物在早期时间点表达增加。;铜和钴添加到透钙磷灰石水泥中导致材料的热稳定性增加。 ,而Cu的添加导致凝固时间显着增加。少量的Co引起凝固时间的减少,而较高的Co引起凝固时间的增加。另外,少量的Cu掺杂剂导致抗压强度的增加。 Cu和Co都分别导致成骨细胞和骨肉瘤细胞的炎性基因标志物的表达减少,并且Cu也引起了骨诱导性标志物表达的增加。因此,这些结果表明Cu和Co对磷酸钙生物材料的物理,机械和生物学特性具有积极影响。

著录项

  • 作者

    Cummings, Haley V.;

  • 作者单位

    Northern Illinois University.;

  • 授予单位 Northern Illinois University.;
  • 学科 Mechanical engineering.;Biomedical engineering.;Materials science.
  • 学位 M.S.
  • 年度 2018
  • 页码 115 p.
  • 总页数 115
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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