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Biomechanical Characterisation of the Human Auricular Cartilages; Implications for Tissue Engineering

机译:人耳软骨的生物力学表征;对组织工程的意义

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摘要

Currently, autologous cartilage provides the gold standard for auricular reconstruction. However, synthetic biomaterials offer a number of advantages for ear reconstruction including decreased donor site morbidity and earlier surgery. Critical to implant success is the material’s mechanical properties as this affects biocompatibility and extrusion. The aim of this study was to determine the biomechanical properties of human auricular cartilage. Auricular cartilage from fifteen cadavers was indented with displacement of 1 mm/s and load of 300 g to obtain a Young’s modulus in compression. Histological analysis of the auricle was conducted according to glycoprotein, collagen, and elastin content. The compression modulus was calculated for each part of the auricle with the tragus at 1.67 ± 0.61 MPa, antitragus 1.79 ± 0.56 MPa, concha 2.08 ± 0.70 MPa, antihelix 1.71 ± 0.63 MPa, and helix 1.41 ± 0.67 MPa. The concha showed to have a significantly greater Young’s Elastic Modulus than the helix in compression (p < 0.05). The histological analysis demonstrated that the auricle has a homogenous structure in terms of chondrocyte morphology, extracellular matrix and elastin content. This study provides new information on the compressive mechanical properties and histological analysis of the human auricular cartilage, allowing surgeons to have a better understanding of suitable replacements. This study has provided a reference, by which cartilage replacements should be developed for auricular reconstruction.Electronic supplementary materialThe online version of this article (doi:10.1007/s10439-016-1688-1) contains supplementary material, which is available to authorized users.
机译:当前,自体软骨提供了耳廓重建的金标准。然而,合成生物材料为耳朵重建提供了许多优势,包括减少了供体部位的发病率和更早的手术。植入物成功的关键是材料的机械性能,因为这会影响生物相容性和挤出。这项研究的目的是确定人耳软骨的生物力学特性。将15具尸体的耳软骨压入,位移为1mm / s,负载为300g,以获得压缩的杨氏模量。根据糖蛋白,胶原蛋白和弹性蛋白含量对耳廓进行组织学分析。计算耳廓的每个部分的压缩模量,其中耳屏为1.67±0.61 MPa,耳屏为1.79±0.56 MPa,外耳为2.08±0.70 MPa,抗螺旋为1.71±0.63 MPa,螺旋为1.41±0.67 MPa。耳蜗显示出比压缩螺旋长得多的杨氏弹性模量(p <0.05)。组织学分析表明,该耳廓在软骨细胞形态,细胞外基质和弹性蛋白含量方面具有均一的结构。这项研究提供了有关人耳软骨的压缩力学特性和组织学分析的新信息,使外科医生可以更好地了解合适的替代物。本研究提供了参考,应为软骨重建开发软骨替代品。电子补充材料本文的在线版本(doi:10.1007 / s10439-016-1688-1)包含补充材料,可供授权用户使用。

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