Department of Mechanical Engineering, National University of Singapore, Singapore 117411, Singapore.
Department of Mechanical Engineering, National University of Singapore, Singapore 117411, Singapore; The NUS Centre for Additive Manufacturing, National University of Singapore, Singapore 117581, Singapore.
Biomater Adv. 2022 Mar;134:112578. doi: 10.1016/j.msec.2021.112578. Epub 2021 Nov 29.
Among different treatments of critical-sized bone defects, bone tissue engineering (BTE) is a fast-developing strategy centering around the fabrication of scaffolds that can stimulate tissue regeneration and provide mechanical support at the same time. This area has seen an extensive application of bioceramics, such as calcium phosphate, for their bioactivity and resemblance to the composition of natural bones. Moreover, recent advances in additive manufacturing (AM) have unleashed enormous potential in the fabrication of BTE scaffolds with tailored porous structures as well as desired biological and mechanical properties. Robocasting is an AM technique that has been widely applied to fabricate calcium phosphate scaffolds, but most of these scaffolds do not meet the mechanical requirements for load-bearing BTE scaffolds. In light of this challenge, various approaches have been utilized to mechanically strengthen the scaffolds. In this review, the current state of knowledge and existing research on robocasting of calcium phosphate scaffolds are presented. Applying the Gibson-Ashby model, this review provides a meta-analysis from the published literature of the compressive strength of robocast calcium phosphate scaffolds. Furthermore, this review evaluates different approaches to the mechanical strengthening of robocast calcium phosphate scaffolds. The aim of this review is to provide insightful data and analysis for future research on mechanical strengthening of robocast calcium phosphate scaffolds and ultimately for their clinical applications.
在治疗临界尺寸骨缺损的各种方法中,骨组织工程(BTE)是一种快速发展的策略,其核心是制造支架,既能刺激组织再生,又能提供机械支撑。该领域广泛应用生物陶瓷,如磷酸钙,因其具有生物活性和与天然骨成分相似性。此外,增材制造(AM)的最新进展在制造具有定制多孔结构以及所需生物和机械性能的 BTE 支架方面展现出巨大潜力。机器人制造是一种广泛应用于制造磷酸钙支架的 AM 技术,但大多数这些支架不符合承重 BTE 支架的机械要求。鉴于这一挑战,已经采用了各种方法来增强支架的机械性能。在这篇综述中,介绍了机器人制造磷酸钙支架的最新知识和现有研究。通过应用 Gibson-Ashby 模型,从已发表的文献中对机器人制造磷酸钙支架的抗压强度进行了荟萃分析。此外,本文还评估了增强机器人制造磷酸钙支架机械性能的不同方法。本综述旨在为机器人制造磷酸钙支架的机械增强及其最终临床应用的未来研究提供有见地的数据和分析。