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Quantitative intravoxel analysis of microCT-scanned resorbing ceramic biomaterials - Perspectives for computer-aided biomaterial design

机译:MicroCT扫描吸收性陶瓷生物材料的体内体素定量分析-计算机辅助生物材料设计的前景

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摘要

Driving the field of micro computed tomography toward more quantitative, rather than qualitative, approaches, we here present a new evaluation method, which uses the unique linear relationship between gray values and x-ray attenuation coefficients, together with the energy-dependence of the latter, to identify (ⅰ) the average x-ray energy used in the CT device, (ⅱ) the x-ray attenuation coefficients, and (ⅲ), via the x-ray attenuation average rule, the intravoxel composition, i.e., the microporosity, which, amongst others, governs the voxel-specific mechanical properties, such as stiffness and strength. The method is realized for six 3D tricalcium phosphate scaffolds, seeded with pre-osteoblastic cells and differentiated for 3, 6, and 8 weeks, respectively. The corresponding voxel-specific microporosities turn out to increase during the culturing period (resulting in reduced elastic properties, as determined from micromechanical considerations), while the overall macroporosity remains constant. The new methods are expected to further foster the development of a rationally based and computer-aided design of biomaterials and tissue engineering scaffolds.
机译:为了推动微型计算机断层摄影领域朝着更加定量而非定性的方向发展,我们在此提出了一种新的评估方法,该方法利用了灰度值与X射线衰减系数之间的独特线性关系以及后者的能量依赖性。 ,以识别(ⅰ)CT装置中使用的平均X射线能量,(ⅱ)X射线衰减系数,以及(ⅲ)通过X射线衰减平均值法则确定体素组成,即微孔率,其中包括支配体素特定的机械属性,例如刚度和强度。该方法可用于六个3D磷酸三钙支架,分别植入成骨细胞前细胞并分别分化3、6和8周。相应的体素特异性微孔率在培养期间增加(导致弹性性能降低,这是从微机械方面的考虑确定的),而总体大孔率保持恒定。新方法有望进一步促进生物材料和组织工程支架的合理化和计算机辅助设计的发展。

著录项

  • 来源
    《Journal of Materials Research》 |2014年第23期|2757-2772|共16页
  • 作者单位

    Institute for Mechanics of Materials and Structures, Vienna University of Technology (TU Wien), Austria, Institute of Biomedical and Neural Engineering, Reykjavik University, Iceland, Department of Science, Landspitali University Hospital, Iceland;

    Institute for Mechanics of Materials and Structures, Vienna University of Technology (TU Wien), Austria;

    Institute for Mechanics of Materials and Structures, Vienna University of Technology (TU Wien), Austria;

    Institute of Biomedical and Neural Engineering, Reykjavik University, Iceland, REModel Lab, The Blood Bank, Landspitali University Hospital, Iceland;

    Department of Materials, Biotechnology and Energy, Innovation Center Iceland, Iceland;

    Institute of Biomedical and Neural Engineering, Reykjavik University, Iceland, Department of Science, Landspitali University Hospital, Iceland;

    Institute for Mechanics of Materials and Structures, Vienna University of Technology (TU Wien), Austria;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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