Ricciotti Laura, Apicella Antonio, Perrotta Valeria, Aversa Raffaella
Department of Architecture and Industrial Design, University of Campania, Luigi Vanvitelli, 81031 Aversa, Italy.
Advanced Material Lab, Department of Architecture and Industrial Design, University of Campania, Luigi Vanvitelli, 81031 Aversa, Italy.
Polymers (Basel). 2023 Feb 22;15(5):1087. doi: 10.3390/polym15051087.
With progress in the bone tissue engineering (BTE) field, there is an important need to develop innovative biomaterials to improve the bone healing process using reproducible, affordable, and low-environmental-impact alternative synthetic strategies. This review thoroughly examines geopolymers' state-of-the-art and current applications and their future perspectives for bone tissue applications. This paper aims to analyse the potential of geopolymer materials in biomedical applications by reviewing the recent literature. Moreover, the characteristics of materials traditionally used as bioscaffolds are also compared, critically analysing the strengths and weaknesses of their use. The concerns that prevented the widespread use of alkali-activated materials as biomaterials (such as their toxicity and limited osteoconductivity) and the potentialities of geopolymers as ceramic biomaterials have also been considered. In particular, the possibility of targeting their mechanical properties and morphologies through their chemical compositions to meet specific and relevant requirements, such as biocompatibility and controlled porosity, is described. A statistical analysis of the published scientific literature is presented. Data on "geopolymers for biomedical applications" were extracted from the Scopus database. This paper focuses on possible strategies necessary to overcome the barriers that have limited their application in biomedicine. Specifically, innovative hybrid geopolymer-based formulations (alkali-activated mixtures for additive manufacturing) and their composites that optimise the porous morphology of bioscaffolds while minimising their toxicity for BTE are discussed.
随着骨组织工程(BTE)领域的发展,迫切需要开发创新的生物材料,以利用可重复、经济且对环境影响小的替代合成策略来改善骨愈合过程。本综述全面研究了地质聚合物的最新技术水平、当前应用及其在骨组织应用方面的未来前景。本文旨在通过回顾近期文献来分析地质聚合物材料在生物医学应用中的潜力。此外,还比较了传统用作生物支架的材料的特性,批判性地分析了其使用的优缺点。还考虑了阻碍碱激活材料作为生物材料广泛应用的问题(如它们的毒性和有限的骨传导性)以及地质聚合物作为陶瓷生物材料的潜力。特别描述了通过化学成分来调控其机械性能和形态以满足特定相关要求(如生物相容性和可控孔隙率)的可能性。本文还呈现了已发表科学文献的统计分析。从Scopus数据库中提取了“用于生物医学应用的地质聚合物”的数据。本文重点关注克服限制其在生物医学中应用的障碍所需的可能策略。具体而言,讨论了创新的基于地质聚合物的混合配方(用于增材制造的碱激活混合物)及其复合材料,这些材料在优化生物支架多孔形态的同时,将其对骨组织工程的毒性降至最低。