Department of Bionano Engineering, Center for Bionano Intelligence Education and Research, Hanyang University, Ansan 426-791, South Korea.
Biomaterials Research Laboratory, Yenepoya Research Centre, Yenepoya (Deemed to be University), Deralakatte, Mangaluru, 575018, India.
Curr Pharm Des. 2022;28(13):1067-1081. doi: 10.2174/1381612828666220518142911.
Alginate-based biomaterials have been extensively studied for bone tissue engineering. Scaffolds, microspheres, and hydrogels can be developed using alginate, which is biocompatible, biodegradable, and able to deliver growth factors and drugs. Alginate microspheres can be produced using crosslinking, microfluidic, three-dimensional printing, extrusion, and emulsion methods. The sizes of the alginate microspheres range from 10 μm to 4 mm. This review describes the chemical characterization and mechanical assessment of alginatebased microspheres. Combinations of alginate with hydroxyapatite, chitosan, collagen, polylactic acid, polycaprolactone, and bioglass were discussed for bone tissue repair and regeneration. In addition, alginate combinations with bone morphogenetic proteins, vascular endothelial growth factor, transforming growth factor beta- 3, other growth factors, cells, proteins, drugs, and osteoinductive drugs were analyzed for tissue engineering applications. Furthermore, the biocompatibility of developed alginate microspheres was discussed for different cell lines. Finally, alginate microsphere-based composites with stem cell interaction for bone tissue regeneration were presented. In the present review, we have assessed the preclinical research on in vivo models of alginatebased microspheres for bone tissue repair and regeneration. Overall, alginate-based microspheres are potential candidates for graft substitutes and the treatment of various bone-related diseases.
基于海藻酸盐的生物材料在骨组织工程中得到了广泛的研究。可以使用海藻酸盐开发支架、微球和水凝胶,海藻酸盐具有生物相容性、可生物降解性,并能够递送生长因子和药物。海藻酸盐微球可以通过交联、微流控、三维打印、挤出和乳液方法来制备。海藻酸盐微球的粒径范围为 10μm 至 4mm。本文综述了基于海藻酸盐的微球的化学表征和力学评估。讨论了海藻酸盐与羟基磷灰石、壳聚糖、胶原、聚乳酸、聚己内酯和生物玻璃的组合,用于骨组织修复和再生。此外,还分析了海藻酸盐与骨形态发生蛋白、血管内皮生长因子、转化生长因子β-3、其他生长因子、细胞、蛋白质、药物和促骨生成药物的组合,用于组织工程应用。此外,还讨论了不同细胞系中海藻酸盐微球的生物相容性。最后,介绍了基于海藻酸盐微球的与干细胞相互作用的复合材料,用于骨组织再生。在本综述中,我们评估了基于海藻酸盐的微球在骨组织修复和再生的体内模型中的临床前研究。总体而言,基于海藻酸盐的微球是作为移植物替代品和治疗各种与骨相关疾病的潜在候选物。