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Engineering Complex Orthopaedic Tissues via Strategic Biomimicry

机译:通过战略仿生技术改造复杂的骨科组织

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摘要

The primary current challenge in regenerative engineering resides in the simultaneous formation of more than one type of tissue, as well as their functional assembly into complex tissues or organ systems. Tissue-tissue synchrony is especially important in the musculoskeletal system, whereby overall organ function is enabled by the seamless integration of bone with soft tissues such as ligament, tendon, or cartilage, as well as the integration of muscle with tendon. Therefore, in lieu of a traditional single-tissue system (e.g. bone, ligament), composite tissue scaffold designs for the regeneration of functional connective tissue units (e.g. bone-ligament-bone) are being actively investigated. Closely related is the effort to re-establish tissue-tissue interfaces, which is essential for joining these tissue building blocks and facilitating host integration. Much of the research at the forefront of the field has centered on bioinspired stratified or gradient scaffold designs which aim to recapitulate the structural and compositional inhomogeneity inherent across distinct tissue regions. As such, given the complexity of these musculoskeletal tissue units, the key question is how to identify the most relevant parameters for recapitulating the native structure-function relationships in the scaffold design. Therefore, the focus of this review, in addition to presenting the state-of-the-art in complex scaffold design, is to explore how strategic biomimicry can be applied in engineering tissue connectivity. The objective of strategic biomimicry is to avoid over-engineering by establishing what needs to be learned from nature and defining the essential matrix characteristics that must be reproduced in scaffold design. Application of this engineering strategy for the regeneration of the most common musculoskeletal tissue units (e.g. bone-ligament-bone, muscle-tendon-bone, cartilage-bone) will be discussed in this review. It is anticipated that these exciting efforts will enable integrative and functional repair of soft tissue injuries, and moreover, lay the foundation for the development of composite tissue systems and ultimately, total limb or joint regeneration.
机译:再生工程中当前的主要挑战在于同时形成多种类型的组织,以及它们在功能上组装成复杂的组织或器官系统。组织-组织同步在肌肉骨骼系统中尤为重要,通过骨骼与软组织(如韧带,肌腱或软骨)的无缝整合以及肌肉与肌腱的整合,可以实现整体器官功能。因此,代替传统的单组织系统(例如,骨,韧带),正在积极研究用于功能性结缔组织单元(例如,骨-韧带-骨)再生的复合组织支架设计。与重建组织-组织界面的努力密切相关,这对于加入这些组织构件并促进宿主整合至关重要。该领域最前沿的许多研究都集中在生物启发的分层或梯度支架设计上,其目的是概括不同组织区域固有的结构和组成不均匀性。这样,鉴于这些肌肉骨骼组织单元的复杂性,关键问题是如何识别最相关的参数以概括支架设计中的天然结构-功能关系。因此,本综述的重点除了介绍复杂支架设计方面的最新技术外,还将探讨如何将战略仿生技术应用于工程组织的连通性。战略仿生学的目的是通过建立需要从自然界中学到的知识并定义必须在脚手架设计中复制的基本基质特征,来避免过度设计。本文将讨论该工程策略在最常见的肌肉骨骼组织单位(例如骨韧带骨,肌肉腱,骨软骨)再生中的应用。预计这些激动人心的努力将使软组织损伤的整合和功能修复成为可能,并且为复合组织系统的发展以及最终四肢或关节的再生奠定基础。

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