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Mechanics of biomimetic materials for tissue engineering of the intervertebral disc

机译:椎间盘组织工程用仿生材料的力学

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摘要

Tissue engineering offers a paradigm shift in the treatment of back pain. Engineered intervertebral discs could replace degenerated tissue and overcome the limitations of current treatments that disrupt the biomechanics of the spine. New materials, which exhibit sophisticated mechanical responses, are needed to provide templates for tissue regeneration. These behaviours include time-dependent deformation---facilitating shock absorption and nutrient transfer---and strong material anisotropy and tensile-compressive nonlinearities---providing flexibility in controlled directions. In this work, frameworks for the design of materials with controllable structure-property relationships are developed. The time-dependent mechanical properties of composites of agar, alginate and gelatin hydrogels are investigated. It is shown that the time-dependent responses of the composites can be tuned over a wide range. It is then demonstrated that materials mimicking the fibre-reinforced nature of natural tissues can be developed by infiltrating thick electrospun fibre networks with alginate. These fibre-reinforced hydrogels have tensile and compressive properties that can be separately altered. To better understand the mechanical behaviour of these hydrogel-based materials, improved methods for characterising poroelastic and poroviscoelastic time-dependent material properties using indentation are developed. It is shown that poroviscoelastic relaxation is the product of separate poroelastic and viscoelastic relaxation responses. The techniques developed here provide a methodology to rapidly characterise the properties of time-dependent materials and to create materials with complex structure-property relationships similar to those found in natural tissues; they present a framework for biomimetic materials design. The work in this thesis can be used to inform the design of clinically relevant tissue engineering treatments and help the quarter of a million people each year who undergo spinal surgery to reduce back pain.
机译:组织工程学为背痛的治疗提供了范式转变。工程化的椎间盘可替代退化的组织,并克服目前治疗破坏脊柱生物力学的局限性。需要具有复杂机械响应的新材料来提供组织再生的模板。这些行为包括随时间变化的变形-有助于减震和营养传递-以及强烈的材料各向异性和拉伸压缩非线性-在受控方向上具有灵活性。在这项工作中,开发了具有可控制的结构-特性关系的材料设计框架。研究了琼脂,藻酸盐和明胶水凝胶复合材料随时间变化的机械性能。结果表明,复合材料随时间变化的响应可以在很宽的范围内调节。然后证明了可以通过用藻酸盐渗入厚的电纺纤维网络来开发模仿天然组织的纤维增强性质的材料。这些纤维增强的水凝胶具有可分别改变的拉伸和压缩特性。为了更好地理解这些基于水凝胶的材料的机械性能,开发了使用压痕表征多孔弹性和多孔弹性的时间相关材料特性的改进方法。结果表明,多孔粘弹性松弛是单独的多孔弹性和粘弹性松弛响应的产物。这里开发的技术提供了一种方法,可以快速表征随时间变化的材料的特性,并创建具有与天然组织中相似的复杂的结构-特性关系的材料。他们提出了仿生材料设计的框架。本文的工作可用于为临床上相关的组织工程治疗的设计提供信息,并每年帮助四分之一的接受脊柱手术的人减轻背部疼痛。

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