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Nanomechanical characterization of tissue engineered bone grown on titanium alloy in vitro

机译:钛合金体外组织工程骨的纳米力学表征

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摘要

Intensive work has been performed on the characterization of the mechanical properties of mineralised tissues formed in vivo. However, the mechanical properties of bone-like tissue formed in vitro have rarely been characterised. Most research has either focused on compact cortical bone or cancellous bone, whilst leaving woven bone unaddressed. In this study, bone-like mineralised matrix was produced by osteoblasts cultured in vitro on the surface of titanium alloys. The volume of this tissue-engineered bone is so small that the conventional tensile tests or bending tests are implausible. Therefore, nanoindentation techniques which allow the characterization of the test material from the nanoscale to the microscale were adopted. These reveal the apparent elastic modulus and hardness of the calcosph-erulite crystals (a representative element for woven bone) are 2.35 ± 0.73 and 0.41 ±0.15 GPa, respectively. The nanoscale viscoelasticity of such woven bone was further assessed by dynamic indentation analysis.
机译:已经对体内形成的矿化组织的机械特性进行了深入研究。然而,很少形成体外形成的骨样组织的机械性能。大多数研究要么集中在致密的皮质骨上,要么集中在松质骨上,而编织骨则没有解决。在这项研究中,通过体外培养在钛合金表面的成骨细胞产生了骨状矿化基质。这种组织工程化的骨头的体积很小,以至于无法进行常规的拉伸测试或弯曲测试。因此,采用允许从纳米级到微米级表征测试材料的纳米压痕技术。这些揭示了钙-蛇纹石晶体(编织骨的代表性元素)的表观弹性模量和硬度分别为2.35±0.73和0.41±0.15GPa。通过动态压痕分析进一步评估了这种编织骨的纳米级粘弹性。

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  • 来源
    《Journal of materials science 》 |2010年第1期| 277-282| 共6页
  • 作者单位

    School of Chemical Engineering and Advanced Materials, University of Newcastle, Newcastle Upon Tyne NE1 7RU, UK School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London El 4NS, UK;

    Musculoskeletal Research Group Institute for Cellular Medicine, The Medical School, Newcastle University, Newcastle upon Tyne NE2 4HH, UK;

    School of Chemical Engineering and Advanced Materials, University of Newcastle, Newcastle Upon Tyne NE1 7RU, UK;

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