Tissue Engineering Research Group, Royal College of Surgeons in Ireland, Dublin, Ireland; Trinity Centre for Bioengineering, Trinity College Dublin, Dublin, Ireland.
Acta Biomater. 2013 Dec;9(12):9303-16. doi: 10.1016/j.actbio.2013.08.014. Epub 2013 Aug 17.
This paper demonstrates a method to engineer, in vitro, a nascent microvasculature within a collagen-glycosaminoglycan scaffold with a view to overcoming the major issue of graft failure due to avascular necrosis of tissue-engineered constructs. Human umbilical vein endothelial cells (ECs) were cultured alone and in various co-culture combinations with human mesenchymal stem cells (MSCs) to determine their vasculogenic abilities in vitro. Results demonstrated that the delayed addition of MSCs to pre-formed EC networks, whereby MSCs act as pericytes to the nascent vessels, resulted in the best developed vasculature. The results also demonstrate that the crosstalk between ECs and MSCs during microvessel formation occurs in a highly regulated, spatio-temporal fashion, whereby the initial seeding of ECs results in platelet derived growth factor (PDGF) release; the subsequent addition of MSCs 3 days later leads to a cessation in PDGF production, coinciding with increased vascular endothelial cell growth factor expression and enhanced vessel formation. Functional assessment of these pre-engineered constructs in a subcutaneous rat implant model demonstrated anastomosis between the in vitro engineered vessels and the host vasculature, with significantly increased vascularization occurring in the co-culture group. This study has thus provided new information on the process of in vitro vasculogenesis within a three-dimensional porous scaffold for tissue engineering and demonstrates the potential for using these vascularized scaffolds in the repair of critical sized bone defects.
本文展示了一种在胶原-糖胺聚糖支架中构建新生微血管的方法,以期克服组织工程构建物因血管坏死而导致移植物失败的主要问题。单独培养人脐静脉内皮细胞 (ECs) 并与各种人骨髓间充质干细胞 (MSCs) 共培养组合,以确定其体外血管生成能力。结果表明,将 MSCs 延迟添加到预先形成的 EC 网络中,使 MSCs 成为新生血管的周细胞,可导致最佳的血管发育。结果还表明,ECs 和 MSCs 之间在微血管形成过程中的相互作用以高度调控的时空方式发生,其中 ECs 的初始接种导致血小板衍生生长因子 (PDGF) 释放;随后 3 天后添加 MSCs 会导致 PDGF 产生停止,同时血管内皮细胞生长因子表达增加和血管形成增强。在皮下大鼠植入模型中对这些预先设计的构建体进行功能评估表明,体外工程化血管与宿主血管之间存在吻合,共培养组的血管生成明显增加。因此,这项研究为组织工程中三维多孔支架内体外血管生成过程提供了新信息,并证明了使用这些血管化支架修复临界尺寸骨缺损的潜力。