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Biomechanics and Microstructural Analysis of the Mouse Knee and Ligaments

机译:小鼠膝关节和韧带的生物力学和微观结构分析

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摘要

The purpose of this study is to determine the feasibility of using murine models for translational study of knee ligament injury, repair, and reconstruction. To achieve this aim, we provide objective, quantitative data detailing the gross anatomy, biomechanical characteristics, and microscopic structure of knee ligaments of 44 male mice (C57BL6, 12 weeks of age). Biomechanical testing determined the load-to-failure force, stiffness, and the site of ligament failure for the anterior cruciate ligament (ACL), posterior cruciate ligament (PCL), and the medial and lateral collateral ligaments (MCL and LCL). These data are complemented by histological characterization of each of the knee ligaments. In addition, the osseous morphology of the mouse knee was examined using high-resolution nanofocus computed tomography (CT), while standard micro-CT was employed to measure bone morphometrics of the distal femur and proximal tibia. Collectively, our findings suggest that the gross anatomy of the mouse knee is similar to the human knee despite some minor differences and features unique to the murine knee. The ACL had the highest load to failure (5.60 +/- 0.75 N), the MCL (3.33 +/- 1.45 N), and the PCL (3.45 +/- 0.84 N) were similar, and the LCL (1.44 +/- 0.37 N) had the lowest load to failure and stiffness. Murine models provide a unique opportunity to focus on biological processes that impact ligament pathology and healing due to the availability of transgenic strains. Our data support their use as a translational platform for the in vivo study of ligament injury, repair, and reconstruction.
机译:本研究的目的是确定使用小鼠模型进行膝关节韧带损伤,修复和重建的转化研究的可行性。为实现这一目标,我们提供了客观,定量数据,详细说明了44只雄性小鼠的膝关节韧带的毛韧带,生物力学特性和微观结构(C57Bl6,12周)。生物力学测试确定了载荷失效的力,刚度和韧带失效的韧带失效,对前十字韧带(ACL),后曲韧带(PCL)和内侧和侧侧副韧带(MCl和LCl)。这些数据通过每个膝盖韧带的组织学表征补充。此外,使用高分辨率纳米焦断层扫描(CT)检查小鼠膝关节的骨形态,而标准的微型CT用于测量远端股骨和近胫骨的骨形态化学。统计,我们的研究结果表明,尽管小鼠膝盖有些微小的差异和特点,但鼠标膝盖的总解剖与人体膝关节相似。 ACL对失败的负荷最高(5.6.60 +/- 0.75 n),MCL(3.33 +/- 1.45 n),PCL(3.45 +/- 0.84 n)相似,LCL(1.44 +/- 0.37 n)对失效和刚度的最低负载。小鼠模型提供了专注于影响韧带病理学和愈合因转基因菌株的可用性而产生的生物过程的独特机会。我们的数据支持他们用作韧带伤害,修复和重建体内研究的翻译平台。

著录项

  • 来源
    《The journal of knee surgery》 |2018年第6期|共8页
  • 作者单位

    Hosp Special Surg Orthoped Soft Tissue Res Program 535 East 70th St New York NY 10021 USA;

    Hosp Special Surg Orthoped Soft Tissue Res Program 535 East 70th St New York NY 10021 USA;

    Hosp Special Surg Orthoped Soft Tissue Res Program 535 East 70th St New York NY 10021 USA;

    Hosp Special Surg Orthoped Soft Tissue Res Program 535 East 70th St New York NY 10021 USA;

    Univ Fed Rio de Janeiro Programa Posgrad Anat Patol Rio de Janeiro RJ Brazil;

    Hosp Special Surg Orthoped Soft Tissue Res Program 535 East 70th St New York NY 10021 USA;

    Hosp Special Surg Orthoped Soft Tissue Res Program 535 East 70th St New York NY 10021 USA;

    Hosp Special Surg Orthoped Soft Tissue Res Program 535 East 70th St New York NY 10021 USA;

    Hosp Special Surg Orthoped Soft Tissue Res Program 535 East 70th St New York NY 10021 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 四肢外科学;
  • 关键词

    biomechanics; micro-CT; knee ligaments; mouse; murine models;

    机译:生物力学;微型CT;膝盖韧带;小鼠;小鼠模型;

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