Department of Cogno-Mechatronics Engineering, College of Nanoscience and Nanotechnology, Pusan National University, Busan, South Korea.
Department of Biomedical Engineering, The University of Texas at Austin, Austin, TX, USA.
Adv Exp Med Biol. 2022;1351:65-87. doi: 10.1007/978-981-16-4923-3_4.
With the emerging trends and recent advances in nanotechnology, it has become increasingly possible to overcome current hurdles for bone and cartilage regeneration. Among the wide type of nanomaterials, graphene (G) and its derivatives (graphene-based materials, GBMs) have been highlighted due to the specific physicochemical and biological properties. In this review, we present the recent development of GBM-based scaffolds for bone and cartilage engineering, focusing on the formulation/shape/size-dependent characteristics, types of scaffold and modification, biocompatibility, bioactivity and underlying mechanism, drawback and prospect of each study. From the findings described herein, mechanical property, biocompatibility, osteogenic and chondrogenic property of GBM-based scaffolds could be significantly enhanced through various scaffold fabrication methods and conjugation with polymers/nanomaterials/drugs. In conclusion, the results presented in this review support the promising prospect of using GBM-based scaffolds for improved bone and cartilage tissue engineering. Although GBM-based scaffolds have some limitations to be overcome by future research, we expect further developments to provide innovative results and improve their clinical potential for bone and cartilage regeneration.
随着纳米技术的新兴趋势和最新进展,克服骨和软骨再生当前障碍的可能性越来越大。在广泛的纳米材料中,由于其特定的物理化学和生物学特性,石墨烯(G)及其衍生物(基于石墨烯的材料,GBM)受到了关注。在这篇综述中,我们介绍了基于 GBM 的支架在骨和软骨工程中的最新发展,重点介绍了配方/形状/尺寸依赖性特征、支架类型和修饰、生物相容性、生物活性和潜在机制、每个研究的缺点和前景。从本文所述的研究结果来看,通过各种支架制造方法和与聚合物/纳米材料/药物的结合,可以显著提高基于 GBM 的支架的机械性能、生物相容性、成骨和成软骨性能。总之,本文的研究结果支持使用基于 GBM 的支架来改善骨和软骨组织工程的广阔前景。尽管基于 GBM 的支架还有一些局限性需要未来的研究来克服,但我们希望进一步的发展能够提供创新的结果,并提高它们在骨和软骨再生方面的临床潜力。