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首页> 外文期刊>Tissue engineering, Part A >Vascular endothelial growth factor release from alginate microspheres under simulated physiological compressive loading and the effect on human vascular endothelial cells.
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Vascular endothelial growth factor release from alginate microspheres under simulated physiological compressive loading and the effect on human vascular endothelial cells.

机译:在模拟的生理压缩负荷下藻酸盐微球释放的血管内皮生长因子及其对人血管内皮细胞的影响。

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Bone tissue engineering has generated promising results in bone defect repair, but is limited by the inherently poor nutrient supply to nonvascularized tissue-engineered bone grafts. In this study, we investigated the delivery of vascular endothelial growth factor (VEGF) and the effect on in vitro cultured human umbilical vein endothelial cells (HUVECs), in an attempt to provide experimental basis for promoting the vascularization of tissue-engineered bone grafts. A mechanical stimulator was developed to generate a periodic compressive load analogous to goat locomotor characteristics, simulating the mechanical stimulation applied on the fracture ends of the load-bearing bone. Poly-l-lysine-coated VEGF/alginate microspheres were combined with demineralized bone matrices into composites, and the in vitro release of VEGF from these composites was evaluated under periodic compression. The effect of the release media on HUVECs was also investigated. Compression slightly accelerated VEGF release at the early stage (<11 days) compared with noncompressed composites, although the release profiles of the two composite groups were generally similar. The released VEGF promoted HUVEC proliferation. In addition, the periodic compression applied on composites containing both HUVECs and VEGF/alginate microspheres promoted the expression of matrix metalloproteinases-2/9 in HUVECs. This study provides a model for investigating VEGF release under simulated in vivo biomechanical conditions and without the disadvantage of the rapid degradation of VEGF in in vivo investigation of VEGF release. The results also provide important guidelines for future in vivo experiments.
机译:骨组织工程学在骨缺损修复方面已取得了可喜的成果,但受限于非血管化组织工程化骨移植物固有的营养供应不足。在这项研究中,我们调查了血管内皮生长因子(VEGF)的传递以及对体外培养的人脐静脉内皮细胞(HUVECs)的影响,试图为促进组织工程骨移植物的血管化提供实验基础。开发了一种机械刺激器,以产生类似于山羊运动特性的周期性压缩载荷,从而模拟了施加在承重骨骨折端的机械刺激。将聚-1-赖氨酸包被的VEGF /藻酸盐微球与软化的骨基质组合成复合材料,并在周期性压缩下评估VEGF从这些复合物中的体外释放。还研究了释放介质对HUVEC的影响。与非压缩复合材料相比,压缩在早期(<11天)略微加速了VEGF的释放,尽管两个复合材料组的释放曲线通常相似。释放的VEGF促进HUVEC增殖。此外,对同时含有HUVEC和VEGF /藻酸盐微球的复合材料施加的周期性压缩促进了HUVEC中基质金属蛋白酶-2/9的表达。这项研究提供了一个模型,用于在模拟的体内生物力学条件下研究VEGF的释放,并且没有在体内研究VEGF释放时迅速降解VEGF的缺点。结果也为将来的体内实验提供了重要的指导。

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