Tissue Engineering Laboratory, Skeletal Biology and Engineering Research Center, KU Leuven, O&N 1, Herestraat 49, bus 813, 3000 Leuven, Belgium; Prometheus, Division of Skeletal Tissue Engineering, KU Leuven, O&N 1, Herestraat 49, bus 813, 3000 Leuven, Belgium.
Clinical and Experimental Endocrinology, KU Leuven, O&N 1, Herestraat 49, bus 902, 3000 Leuven, Belgium; Prometheus, Division of Skeletal Tissue Engineering, KU Leuven, O&N 1, Herestraat 49, bus 813, 3000 Leuven, Belgium.
Acta Biomater. 2018 May;72:447-460. doi: 10.1016/j.actbio.2018.03.048. Epub 2018 Apr 4.
Rapid neovascularization of a tissue-engineered (TE) construct by the host vasculature is quintessential to warrant effective bone regeneration. This process can be promoted through active induction of angiogenic growth factor secretion or by implementation of in vitro pre-vascularization strategies. In this study, we aimed at optimizing the pro-angiogenic effect of Cobalt (Co) to enhance vascular endothelial growth factor (VEGF) expression by human periosteum-derived mesenchymal stem cells (hPDCs). Simultaneously we set out to promote microvascular network formation by co-culturing with human umbilical vein endothelial cells (HUVECs). The results showed that Co treatments (at 50, 100 or 150 µM) significantly upregulated in vitro VEGF expression, but inhibited hPDCs growth and HUVECs network formation in co-cultures. These inhibitory effects were mitigated at lower Co concentrations (at 5, 10 or 25 µM) while VEGF expression remained significantly upregulated and further augmented in the presence of Ascorbic Acid and Dexamethasone possibly through Runx2 upregulation. The supplements also facilitated HUVECs network formation, which was dependent on the quantity and spatial distribution of collagen type-1 matrix deposited by the hPDCs. When applied to hPDCs seeded onto calcium phosphate scaffolds, the supplements significantly induced VEGF secretion in vitro, and promoted higher vascularization upon ectopic implantation in nude mice shown by an increase of CD31 positive blood vessels within the scaffolds. Our findings provided novel insights into the pleotropic effects of Co on angiogenesis (i.e. promoted VEGF secretion and inhibited endothelial network formation), and showed potential to pre-condition TE constructs under one culture regime for improved implant neovascularization in vivo.
Cobalt (Co) is known to upregulate vascular endothelial growth factor (VEGF) secretion, however it also inhibits in vitro angiogenesis through unknown Co-induced events. This limits the potential of Co for pro-angiogenesis of tissue engineered (TE) implants. We showed that Co upregulated VEGF expression by human periosteum-derived cells (hPDCs) but reduced the cell growth, and endothelial network formation due to reduction of col-1 matrix deposition. Supplementation with Ascorbic acid and Dexamethasone concurrently improved hPDCs growth, endothelial network formation, and upregulated VEGF secretion. In vitro pre-conditioning of hPDC-seeded TE constructs with this fine-tuned medium enhanced VEGF secretion and implant neovascularization. Our study provided novel insights into the pleotropic effects of Co on angiogenesis and formed the basis for improving implant neovascularization.
组织工程(TE)构建体的宿主脉管系统的快速血管生成对于保证有效的骨再生至关重要。可以通过主动诱导血管生成生长因子的分泌或实施体外预血管化策略来促进该过程。在这项研究中,我们旨在通过钴(Co)的促血管生成作用来优化,以增强人骨膜源性间充质干细胞(hPDCs)中血管内皮生长因子(VEGF)的表达。同时,我们着手通过与人脐静脉内皮细胞(HUVEC)共培养来促进微血管网络的形成。结果表明,Co 处理(50、100 或 150μM)可显着上调体外 VEGF 表达,但在共培养物中抑制 hPDCs 的生长和 HUVEC 网络的形成。在较低的 Co 浓度(5、10 或 25μM)下,这些抑制作用得到缓解,同时 VEGF 表达显着上调,并在添加抗坏血酸和地塞米松后进一步增强,这可能是通过 Runx2 的上调。这些补充剂还促进了 HUVEC 网络的形成,这取决于 hPDCs 沉积的胶原 I 基质的数量和空间分布。当应用于 hPDCs 接种到磷酸钙支架上时,这些补充剂在体外显着诱导了 VEGF 的分泌,并在裸鼠异位植入时促进了更高的血管化,这表现为支架内 CD31 阳性血管的增加。我们的研究结果为 Co 对血管生成的多效性作用提供了新的见解(即促进 VEGF 分泌和抑制内皮网络形成),并显示出在一种培养条件下对 TE 构建体进行预处理的潜力,以提高体内植入物的新生血管化。