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组织工程化韧带组织可降解装置的研究进展:综述

Development of ligament tissue biodegradable devices: a review.

机构信息

Composite Materials Unit, Institute of Mechanical Engineering and Industrial Management, Campus FEUP, Rua Roberto Frias 400, 4200-465 Porto, Portugal.

出版信息

J Biomech. 2009 Nov 13;42(15):2421-30. doi: 10.1016/j.jbiomech.2009.07.019. Epub 2009 Aug 6.

Abstract

This bibliographic review is focused on ligament tissue rehabilitation, its anatomy-physiology, and, mainly, on the dimensioning considerations of a composite material solution. The suture strength is problematic during the tissue recovering, implying reduction of mobility for several months. However, early postoperative active mobilization may enable a faster and more effective recovering of tissue biomechanical functions. As the risk of tendon rupture becomes a significant concern, a repair technique must be used to withstand the tensile forces generated by active mobilization. However, to avoid stress shielding effect on ligament tissue, an augmentation device must be designed on stiffness basis, that preferably will decrease. Absorbable biocomposite reinforcements have been used to allow early postoperative active mobilization and avoid the shortcomings of current repair solutions. Tensile strength decrease of the repair, during the initial inflammatory phase, is expected, derived from oedema and tendon degradation. In the fibroblastic phase, stiffness and strength will increase, which will stabilize during the remodeling phase. The reinforcement should be able to carry the dynamic load due to locomotion with a mechanical behavior similar to the undamaged natural tissue, during all rehabilitation process. Moreover, the degradation rate must also be compatible with the ligament tissue recovering. The selection and combination of different biodegradable materials, in order to make the biocomposite reinforcement functionally compatible to the damaged sutured tissue, in terms of mechanical properties and degradation rate, is a major step on the design process. Modelling techniques allow pre-clinical evaluation of the reinforcement functional compatibility, and the optimization by comparison of different composite solutions in terms of biomechanical behavior.

摘要

这篇文献综述主要集中在韧带组织的修复、解剖生理学,以及复合材料解决方案的尺寸设计考虑因素。在组织恢复过程中,缝线强度是一个问题,这意味着几个月的活动度受限。然而,早期术后主动活动可能会使组织生物力学功能更快、更有效地恢复。由于肌腱断裂的风险成为一个重要的关注点,必须使用一种修复技术来承受主动活动产生的拉伸力。然而,为了避免对韧带组织产生应力遮挡效应,必须根据刚度设计增强装置,最好使其刚度降低。可吸收的生物复合材料增强物已被用于允许早期术后主动活动,并避免现有修复解决方案的缺点。在初始炎症阶段,修复的拉伸强度会下降,这是由于水肿和肌腱降解引起的。在成纤维细胞阶段,刚度和强度会增加,并在重塑阶段稳定下来。在整个康复过程中,增强物应该能够承受由于运动产生的动态负荷,其机械性能应类似于未受损的天然组织。此外,降解速率也必须与韧带组织的恢复相兼容。为了使生物复合材料增强物在机械性能和降解速率方面与受损缝合组织功能兼容,选择和组合不同的可生物降解材料是设计过程中的一个重要步骤。建模技术允许对增强物的功能兼容性进行临床前评估,并通过比较不同复合解决方案的生物力学行为进行优化。

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