Advances in Tendon and Ligament Tissue Engineering: Materials Perspective

F. Alshomer, Camilo Chaves, D. Kalaskar
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引用次数: 38

Abstract

Introduction. Tendons are specialised, heterogeneous connective tissues, which represent a significant healthcare challenge after injury. Primary surgical repair is the gold standard modality of care; however, it is highly dependent on the extent of injuries. Tissue engineering represents an alternative solution for good tissue integration and regeneration. In this review, we look at the advanced biomaterial composites employed to improve cellular growth while providing appropriate mechanical properties for tendon and ligament repair. Methodology. Comprehensive literature searches focused on advanced composite biomaterials for tendon and ligament tissue engineering. Studies were categorised depending on the application. Results. In the literature, a range of natural and/or synthetic materials have been combined to produce composite scaffolds tendon and ligament tissue engineering. In vitro and in vivo assessment demonstrate promising cellular integration with sufficient mechanical strength. The biological properties were improved with the addition of growth factors within the composite materials. Most in vivo studies were completed in small-scale animal models. Conclusions. Advanced composite materials represent a promising solution to the challenges associated with tendon and ligament tissue engineering. Nevertheless, these approaches still demonstrate limitations, including the necessity of larger-scale animal models to ease future clinical translation and comprehensive assessment of tissue response after implantation.
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肌腱和韧带组织工程研究进展:材料展望
介绍。肌腱是一种特殊的异质结缔组织,在受伤后对医疗保健构成重大挑战。初级手术修复是护理的金标准模式;然而,它高度依赖于受伤的程度。组织工程是组织整合和再生的另一种解决方案。在这篇综述中,我们着眼于先进的生物材料复合材料用于促进细胞生长,同时为肌腱和韧带修复提供适当的机械性能。方法。综合文献检索集中在肌腱和韧带组织工程的先进复合生物材料。根据应用程序对研究进行分类。结果。在文献中,一系列天然和/或合成材料已被组合以生产复合支架肌腱和韧带组织工程。体外和体内评估显示有希望的细胞整合具有足够的机械强度。在复合材料中加入生长因子,提高了复合材料的生物性能。大多数体内研究都是在小型动物模型中完成的。结论。先进的复合材料代表了解决肌腱和韧带组织工程相关挑战的一个有希望的解决方案。然而,这些方法仍然显示出局限性,包括需要更大规模的动物模型来简化未来的临床转化和植入后组织反应的综合评估。
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