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Fiberoptic microindentation technique for early osteoarthritis diagnosis: an in vitro study on human cartilage

机译:光纤微压痕技术在骨关节炎早期诊断中的应用:软骨的体外研究

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摘要

In this study, the capability of a fiber optic microindenter sensor to discriminate between healthy and slightly degenerated human articular cartilage samples is demonstrated. The purely optical indenter sensor is characterized by extremely reduced dimensions (0.125mm in diameter and 27mm in length) in comparison to existing indenter probes offering advantages for endoscopic deployment. The indenter sensor is intended to assist the surgeon in the identification of damaged articular cartilage. From each of seven specimens of human tibia plateau three samples showing different Outerbridge grading were extracted. On each sample stress-relaxation measurements were performed with eight indentation steps, each step being 40m and the relaxation of the material was observed for 240s after each step. A viscoelastic model was used to fit the relaxation and to extract the characteristic parameters according to the model. A highly significant difference in stiffness (p value 0.01) was observed between the native (grade 0) and early diseased (grade 1) human cartilage samples demonstrating the potential of the fiber optic indenter for the diagnosis of cartilage breakdown.
机译:在这项研究中,证明了光纤微压头传感器区分健康的和轻微退化的人类关节软骨样品的能力。与现有的压头探头相比,纯光学压头传感器的特点是尺寸大大减小(直径0.125mm,长度27mm),为内窥镜部署提供了优势。压头传感器旨在帮助外科医生识别受损的关节软骨。从人胫骨高原的七个标本的每个标本中,提取三个显示出不同外桥等级的标本。在每个样品上,通过八个压痕步骤进行应力松弛测量,每个压痕步骤为40m,并且在每个步骤之后的240s内观察到材料的松弛。使用粘弹性模型拟合松弛并根据模型提取特征参数。在天然(0级)和早期患病(1级)人类软骨样品之间观察到了刚度的显着差异(p值<0.01),证明了光纤压头在诊断软骨破裂中的潜力。

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  • 来源
    《Biomedical Microdevices》 |2019年第1期|11.1-11.9|共9页
  • 作者单位

    Munich Univ Appl Sci, Dept Appl Sci & Mechatron, Photon Lab, Lothstr 34, D-80335 Munich, Germany;

    Tech Univ Munich, Klinikum Rechts Isar, Dept Orthopaed & Sports Orthopaed, Biomech Lab, Ismaninger Str 22, D-81675 Munich, Germany;

    Tech Univ Munich, Klinikum Rechts Isar, Clin & Policlin Orthopaed & Sports Orthopaed, Ismaninger Str 22, D-81675 Munich, Germany;

    Munich Univ Appl Sci, Dept Appl Sci & Mechatron, Photon Lab, Lothstr 34, D-80335 Munich, Germany;

    Tech Univ Munich, Klinikum Rechts Isar, Dept Orthopaed & Sports Orthopaed, Biomech Lab, Ismaninger Str 22, D-81675 Munich, Germany;

    Munich Univ Appl Sci, Dept Appl Sci & Mechatron, Nanoanalit & Biophys Lab, Lothstr 34, D-80335 Munich, Germany|Munich Univ Appl Sci, Ctr Appl Tissue Engn & Regenerat Med CANTER, Lothstr 34, D-80335 Munich, Germany;

    Munich Univ Appl Sci, Ctr Appl Tissue Engn & Regenerat Med CANTER, Lothstr 34, D-80335 Munich, Germany|Ludwig Maximilians Univ Munchen, Clin Gen Trauma & Reconstruct Surg, Lab Expt Surg & Regenerat Med, Nussbaumstr 20, D-80336 Munich, Germany;

    Munich Univ Appl Sci, Ctr Appl Tissue Engn & Regenerat Med CANTER, Lothstr 34, D-80335 Munich, Germany|Ludwig Maximilians Univ Munchen, Clin Gen Trauma & Reconstruct Surg, Lab Expt Surg & Regenerat Med, Nussbaumstr 20, D-80336 Munich, Germany;

    Tech Univ Munich, Klinikum Rechts Isar, Dept Orthopaed & Sports Orthopaed, Biomech Lab, Ismaninger Str 22, D-81675 Munich, Germany;

    Munich Univ Appl Sci, Dept Appl Sci & Mechatron, Photon Lab, Lothstr 34, D-80335 Munich, Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Fiber Bragg grating; Osteoarthritis; Indentation; Cartilage biomechanics;

    机译:光纤布拉格光栅;骨关节炎;压痕;软骨生物力学;

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