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Effect of timed and localized release of BMP-2 and VEGF on vascularized osteogenesis in a 3D co-culture of human mesenchymal and endothelial stem cells

机译:BMP-2和VEGF对人间充质和内皮干细胞3D共培养中血管化成骨发生的效果

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There is a close correlation between vascularization and bone formation in endochondral ossification as maximum extent of bone formation follows maximum levels of VEGF expression. This suggests that osteogenesis and vascularization may be coupled by spatiotemporal regulation of paracrine signaling in which the invading vascular endothelial cells secrete osteogenic morphogens to stimulate cell differentiation and bone formation. The objective of this work was to investigate the effect of timed and localized release of BMP-2 and VEGF on the extent of osteogenic and vasculogenic differentiation of human mesenchymal stem cells (hMSCs) and endothelial colony-forming cells (ECFCs) in a patterned hydrogel co-culture system. Methods: Polyethylene glycol (PEG) polymer chain-extended with lactide (L) and glycolide (G) segments or GL-PEG-GL macromers with different UG feed molar ratios and PEG molecular weights were synthesized by sequential ring opening polymerization. The macromers were functionalized by reaction with disuccinimidyl carbonate (DCS). The macromers were self-assembled to nanogels (NGs) by dialysis. BMP-2 and VEGF proteins were grafted to the NGs by succinimide-amine reaction BMP2-NG and VEGF-NG). Size distribution of the NGs was measured by dynamic light scattering. NGs degradation and protein release was measured by incubation in PBS at 37°C. The protein release from the NGs was measured by ELISA. A 3D co-culture system with localized delivery of BMP-2 and VEGF was developed with a matrix of lactide-chain-extended PEG acrylate (SPELA) hydrogel and microchannels of gelatin methacrylate (GelMA) as shown in Figure 1. hMSCs and BMP2-NG were encapsulated in the RGD-functionalized SPELA and a mixture of hMSCs+hECFCs with VEGF-NG were encapsulated in the channels. The 3D co-culture system was cultivated in osteogenic-vasculogenic medium for 21 days. At each time point, the co-cultures were evaluated for osteogenesis and vasculogenesis by biochemical, mRNA, and protein analysis. Figure 1. Schematic diagram of vasculogenic GelMA microchannels in osteogenic SPELA gel for patterned constructs. ALP activity of hMSCs in un-patterned osteogenic constructs with BMP2 or BMP2-NGs (dashed curves) increased significantly from day 7 to 14, reached a maximum after 14 days and decreased from day 14 to 21. The patterned constructs (solid lines) had higher ALP activity than their corresponding un-patterned osteogenic constructs (dashed lines). The patterned constructs with NG-BMP2/NG-VEGF (blue curve) and without BMP2/VEGF (green curve) had the highest and lowest ALP activity with 6100±500 and 2000±300 IU/mg DNA, respectively. CD31 protein expression for the patterned construct without BMP2/VEGF (green curve) did not increase significantly with time (Figure 2). CD31 expression of the un-patterned vasculogenic constructs with VEGF (dashed pink) or NG-VEGF (dashed light blue) increased with time but the CD31 expression for the NG-VEGF construct was significantly higher than that of VEGF. The patterned constructs (solid lines) had higher CD31 expression than the un-patterned vasculogenic constructs (dashed lines) for all incubation times. For all time points, CD31 expression of patterned construct with NG-BMP2/NG-VEGF was higher than the other groups. Figure 2. ALPase and VEGF receptor mRNA expression of hMSCs and hECFCs in the patterned constructs. Conclusions: The extent of osteogenic and vasculogenic differentiation of hMSCs and hECFCs was higher in patterned compared to un-patterned constructs. Further, timed-release of VEGF and BMP2 from the NGs in the patterned constructs significantly enhanced osteogenic differentiation of MSCs and vasculogenic differentiation of hMSCs+hECFCs compared with direct addition of VEGF and BMP2.
机译:由于最大程度的VEGF表达,血管化和骨髓化之间的血管化和骨形成之间存在密切相关性。这表明骨癌和血管化可以通过对旁碱信号传导的时空调节偶联,其中侵袭血管内皮细胞分泌骨质发生的变形细胞以刺激细胞分化和骨形成。这项工作的目的是探讨BMP-2和VEGF的定时和局部释放对图案化水凝胶中的人间充质干细胞(HMSCs)和内皮菌落形成细胞(ECFC)的骨质发生和血管性分化程度的影响共同培养系统。方法:通过顺序开环聚合合成聚乙二醇(PEG)与丙交酯(L)和乙酰基(G)段(G)段(G)段(G)段或GL-PEG-GL大分子体的延伸或GL-PEG-GL大分子单位。通过与碳酸二氨基丙基氨基氨酰(DCS)反应官能化缩聚剂。通过透析通过透析自组装成纳米凝胶(NGS)。通过琥珀酰亚胺 - 胺反应BMP2-NG和VEGF-NG将BMP-2和VEGF蛋白质接枝到NGS上。通过动态光散射测量NGS的尺寸分布。通过在37℃下在PBS中孵育来测量NGS降解和蛋白质释放。通过ELISA测量来自NGS的蛋白质释放。具有BMP-2和VEGF的局部递送的3D共培养系统,用丙酸酯链延伸的PEG丙烯酸酯(SPELA)水凝胶和明胶甲基丙烯酸酯(GELMA)的微通道,如图1所示。HMSCs和BMP2-将Ng包封在RGD-官能化的SPELA中,并将HMSCs + HECFC的混合物包封在通道中。在成骨 - 血管原性培养基中培养3D共培养系统21天。在每个时间点,通过生物化学,mRNA和蛋白质分析评估对骨质发生和血管发生的共培养物。图1.图案化构建体骨质植物牙鞘凝胶中的血管内凝胶微通道的示意图。 HMSCS在具有BMP2或BMP2-NGS(虚线曲线)中的HMSCs的ALP活性在第7天至14日显着增加,14天后达到最大值并从第14天降低。图案化构建体(实线)具有比其相应的未图案化成骨构建体(虚线)更高的ALP活性。与NG-BMP2 / NG-VEGF(蓝色曲线)和不BMP2 / VEGF(绿色曲线)图案化的构建体具有分别与6100±500和2000±300 IU /毫克DNA,最高和最低的ALP活性。没有BMP2 / VEGF(绿色曲线)的图案构建体的CD31蛋白表达与时间没有显着增加(图2)。用VEGF(虚粉红色)或NG-VEGF(虚浅蓝)的未图案化血管原构建体的CD31表达随时间而增加,但NG-VEGF构建体的CD31表达明显高于VEGF的CD31表达。图案化构建体(实线)表达比未图案化的血管原构建体(虚线)表达更高,用于所有孵育时间。对于所有时间点,具有Ng-BMP2 / NG-VEGF的图案化构建体的CD31表达高于其他基团。图2.在图案化构建体中HMSCs和HECFC的ALPase和VEGF受体mRNA表达。结论:与未图案化构建体相比,图案化的成骨和HECFCs的成骨和血管型分化的程度较高。此外,与图案化构建体中的NGS的VEGF和BMP2的定时释放显着增强了HMSCs + HECFC的MSC和血管原性分化的成骨分化,与直接添加VEGF和BMP2相比。

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