3B's Research Group-Biomaterials, Biodegradables and Biomimetics, Department of Polymer Engineering, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine University of Minho, Guimarães, Portugal.
Tissue Eng Part B Rev. 2011 Oct;17(5):331-47. doi: 10.1089/ten.teb.2010.0704. Epub 2011 Aug 2.
As life expectancy increases, malfunction or loss of tissue caused by injury or disease leads to reduced quality of life in many patients at significant socioeconomic cost. Even though major progress has been made in the field of bone tissue engineering, present therapies, such as bone grafts, still have limitations. Current research on biodegradable polymers is emerging, combining these structures with osteogenic cells, as an alternative to autologous bone grafts. Different types of biodegradable materials have been proposed for the preparation of three-dimensional porous scaffolds for bone tissue engineering. Among them, natural polymers are one of the most attractive options, mainly due to their similarities with extracellular matrix, chemical versatility, good biological performance, and inherent cellular interactions. In this review, special attention is given to chitosan as a biomaterial for bone tissue engineering applications. An extensive literature survey was performed on the preparation of chitosan scaffolds and their in vitro biological performance as well as their potential to facilitate in vivo bone regeneration. The present review also aims to offer the reader a general overview of all components needed to engineer new bone tissue. It gives a brief background on bone biology, followed by an explanation of all components in bone tissue engineering, as well as describing different tissue engineering strategies. Moreover, also discussed are the typical models used to evaluate in vitro functionality of a tissue-engineered construct and in vivo models to assess the potential to regenerate bone tissue are discussed.
随着预期寿命的延长,由于损伤或疾病导致的组织功能障碍或丧失,使许多患者的生活质量降低,同时也造成了巨大的社会经济损失。尽管在骨组织工程领域已经取得了重大进展,但目前的治疗方法,如骨移植,仍然存在局限性。目前,可生物降解聚合物的研究正在兴起,将这些结构与成骨细胞结合起来,作为自体骨移植物的替代品。已经提出了不同类型的可生物降解材料来制备用于骨组织工程的三维多孔支架。其中,天然聚合物是最具吸引力的选择之一,主要是因为它们与细胞外基质相似、化学多样性、良好的生物性能和固有的细胞相互作用。在本综述中,特别关注壳聚糖作为骨组织工程应用的生物材料。对壳聚糖支架的制备及其体外生物学性能以及促进体内骨再生的潜力进行了广泛的文献调查。本综述还旨在为读者提供一个关于工程新骨组织所需的所有组件的概述。简要介绍了骨生物学背景,然后解释了骨组织工程中的所有组件,并描述了不同的组织工程策略。此外,还讨论了用于评估组织工程构建体体外功能的典型模型,以及用于评估骨组织再生潜力的体内模型。