Department of Biochemistry, Inha University College of Medicine, South Korea.
Adv Drug Deliv Rev. 2009 Oct 5;61(12):1065-83. doi: 10.1016/j.addr.2009.07.008. Epub 2009 Jul 29.
Nanofibrous materials produced by electrospinning processes have attracted considerable interest in tissue regeneration, including bone reconstruction. A range of novel materials and processing tools have been developed to mimic the native bone extracellular matrix for potential applications as tissue engineering scaffolds and ultimately to restore degenerated functions of the bone. Degradable polymers, bioactive inorganics and their nanocomposites/hybrids nanofibers with suitable mechanical properties and bone bioactivity for osteoblasts and progenitor/stem cells have been produced. The surface functionalization with apatite minerals and proteins/peptides as well as drug encapsulation within the nanofibers is a promising strategy for achieving therapeutic functions with nanofibrous materials. Recent attempts to endow a 3D scaffolding technique to the electrospinning regime have shown some promise for engineering 3D tissue constructs. With the improvement in knowledge and techniques of bone-targeted nanofibrous matrices, bone tissue engineering is expected to be realized in the near future.
静电纺丝工艺制备的纳米纤维材料在组织再生领域,包括骨重建方面引起了广泛关注。为了模拟天然骨细胞外基质,用于组织工程支架的潜在应用,并最终恢复骨的退化功能,已经开发了一系列新型材料和加工工具。已经制备了具有合适机械性能和骨活性的可降解聚合物、生物无机材料及其纳米复合材料/杂化纳米纤维、成骨细胞和祖细胞/干细胞。通过在纳米纤维内进行表面矿化和蛋白质/肽的功能化以及药物包封,是实现纳米纤维材料治疗功能的一种很有前途的策略。最近,将 3D 支架技术赋予静电纺丝技术的尝试显示出了用于工程 3D 组织构建的一些潜力。随着对靶向骨的纳米纤维基质的知识和技术的不断提高,骨组织工程有望在不久的将来实现。