Tissue Engineering Research Group, Dept. of Anatomy, Royal College of Surgeons in Ireland, Dublin, Ireland; Trinity Centre for Bioengineering, Trinity College Dublin, Ireland; Advanced Materials and Bioengineering Research (AMBER) Centre, RCSI & TCD, Dublin, Ireland.
Tissue Engineering Research Group, Dept. of Anatomy, Royal College of Surgeons in Ireland, Dublin, Ireland; Trinity Centre for Bioengineering, Trinity College Dublin, Ireland; Advanced Materials and Bioengineering Research (AMBER) Centre, RCSI & TCD, Dublin, Ireland; School of Pharmacy, Royal College of Surgeons in Ireland, Dublin, Ireland.
J Control Release. 2015 Jan 28;198:71-9. doi: 10.1016/j.jconrel.2014.11.021. Epub 2014 Dec 4.
The spatiotemporally controlled delivery of the pro-osteogenic factor rhBMP-2 would overcome most of the severe secondary effects linked to the products delivering this protein for bone regeneration. With this in mind, the aim of the present work was to develop a controlled rhBMP-2 release system using collagen-hydroxyapatite (CHA) scaffolds, which had been previously optimized for bone regeneration, as delivery platforms to produce a device with enhanced capacity for bone repair. Spray-drying and emulsion techniques were used to encapsulate bioactive rhBMP-2 in alginate and PLGA microparticles, with a high encapsulation efficiency. After incorporation of these microparticles into the scaffolds, rhBMP-2 was delivered in a sustained fashion for up to 28days. When tested in vitro with osteoblasts, these eluting materials showed an enhanced pro-osteogenic effect. From these results, an optimal rhBMP-2 eluting scaffold composition was selected and implanted in critical-sized calvarial defects in a rat model, where it demonstrated an excellent healing capacity in vivo. These platforms have an immense potential in the field of tissue regeneration; by tuning the specific therapeutic molecule to the tissue of interest and by utilizing different collagen-based scaffolds, similar systems can be developed for enhancing the healing of a diverse range of tissues and organs.
将促骨生成因子 rhBMP-2 进行时空控制释放可以克服与该蛋白产品用于骨再生相关的大多数严重的二次效应。考虑到这一点,本工作的目的是开发一种使用先前已优化用于骨再生的胶原-羟基磷灰石 (CHA) 支架作为递送平台的 rhBMP-2 控释系统,以生产具有增强骨修复能力的装置。喷雾干燥和乳液技术被用于将生物活性 rhBMP-2 包封在藻酸盐和 PLGA 微球中,具有高包封效率。将这些微球掺入支架后,rhBMP-2 可以持续释放长达 28 天。当在体外与成骨细胞一起测试时,这些洗脱材料显示出增强的促骨生成作用。从这些结果中,选择了一种最佳的 rhBMP-2 洗脱支架组成,并将其植入大鼠模型中的临界尺寸颅骨缺损中,在体内表现出优异的愈合能力。这些平台在组织再生领域具有巨大的潜力;通过将特定的治疗分子调整为感兴趣的组织,并利用不同的基于胶原的支架,可以开发出类似的系统来增强各种组织和器官的愈合能力。