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Biomimetic Nanofiber Scaffold Design for Tendon-to-Bone Interface Tissue Engineering.

机译:肌腱到骨界面组织工程的仿生纳米纤维支架设计。

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摘要

Soft tissues such as rotator cuff tendons integrate with subchondral bone through a direct insertion site, which is a multi-tissue interface that functions to minimize the formation of stress concentrations and enable the transfer of complex loads between tendon and bone. Current rotator cuff tendon repair techniques require the reattachment or fixation of the torn tendon to the bony footprint; however, the native multi- tissue tendon-to-bone interface is not regenerated following repair. Rather, the repaired tendon transitions to bone through a disorganized, fibrovascular tissue with weak mechanical properties, which renders the repair site prone to failure and compromises the stability and long-term clinical outcome. To address the challenge of biological fixation and integration of tendon-to-bone, the objective of this thesis is to design a biomimetic scaffold system that is able to promote the regeneration of the multi-tissue tendon-bone interface and support integration with tendon and bone. Biomimetic scaffold design parameters were established by first characterizing the structure-function relationship of direct insertion sites, which was determined by measuring the mechanical properties and evaluating the mineral distribution across the interface. Inspired by the collagen fiber organization and the controlled distribution of matrix and mineral of direct insertion sites, a bi-phasic nanofiber-based scaffold was designed, optimized and evaluated in vitro and in vivo. Each phase of the Bi-phasic scaffold was characterized and optimized for interface regeneration by evaluating the effect of nanofiber organization and mineral content on interface relevant cell populations. The optimized Bi-phasic scaffold supported the deposition of distinct yet continuous tissue regions that mimicked those of the tendon-bone interface and functionally integrated with bone. The results of this thesis demonstrate the potential of this biomimetic, nanofiber-based, Bi- phasic scaffold to facilitate functional and biological fixation of tendon-to-bone through interface regeneration and osteointegration. The knowledge gained with regard to the structure-function relationship of direct soft tissue-to-bone insertion sites and interface tissue regeneration on stratified nanofiber scaffolds will be highly significant for other musculoskeletal tissue engineering applications in which soft tissue-to-bone integration is critical. The findings described in this thesis will lead to the development of new orthopaedic devices for functional and biological fixation and will demonstrate the potential of nanotechnology for engineering complex tissue systems that can seamlessly integrate and function within the physiological environment.
机译:诸如肩袖肌腱之类的软组织通过直接插入部位与软骨下骨融合,这是一种多组织界面,其作用是最大程度地减少应力集中的形成,并使复杂的载荷在肌腱和骨骼之间转移。当前的肩袖肌腱修复技术要求将撕裂的肌腱重新附着或固定到骨覆盖区。但是,修复后不能再生天然的多组织肌腱到骨的界面。相反,修复后的肌腱通过机械性能较弱的杂乱无章的纤维血管组织过渡到骨骼,这使修复部位容易出现故障,并损害了稳定性和长期临床效果。为解决生物固定和腱-骨整合的挑战,本论文的目的是设计一种仿生支架系统,该系统能够促进多组织腱-骨界面的再生并支持与腱和骨的整合。骨。通过首先表征直接插入位点的结构-功能关系来建立仿生支架的设计参数,这是通过测量机械性能和评估界面上矿物分布确定的。受胶原纤维组织以及直接插入部位的基质和矿物质的受控分布的启发,设计,优化和评估了体外和体内双相纳米纤维基支架。通过评估纳米纤维组织和矿物质含量对界面相关细胞群的影响,对双相支架的每个相进行了表征和优化,以实现界面再生。优化的双相支架支持模仿肌腱-骨骼界面并与骨骼功能整合的独特而连续的组织区域的沉积。本论文的结果证明了这种仿生的,基于纳米纤维的双相支架通过界面再生和骨整合促进腱到骨的功能和生物固定的潜力。在分层的纳米纤维支架上直接获得直接的软组织与骨骼的插入位置的结构-功能关系和界面组织再生方面的知识,对于其他对软组织与骨骼整合至关重要的肌肉骨骼组织工程应用而言,将具有重要意义。 。本论文中描述的发现将导致用于功能和生物固定的新型骨科设备的发展,并将证明纳米技术在工程学上可以在生理环境中无缝整合和发挥作用的复杂组织系统的潜力。

著录项

  • 作者

    Moffat, Kristen L.;

  • 作者单位

    Columbia University.;

  • 授予单位 Columbia University.;
  • 学科 Engineering Biomedical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 264 p.
  • 总页数 264
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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