首页> 外文期刊>ACS Omega >Sustained Release of Vascular Endothelial Growth Factor from Poly(ε-caprolactone-PEG-ε-caprolactone)-b-Poly(l-lactide) Multiblock Copolymer Microspheres
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Sustained Release of Vascular Endothelial Growth Factor from Poly(ε-caprolactone-PEG-ε-caprolactone)-b-Poly(l-lactide) Multiblock Copolymer Microspheres

机译:从聚(ε-己内酯-PEG-ε-己内酯)-b-聚(1-丙交酯)多嵌段共聚物微球中缓释血管内皮生长因子

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Vascular endothelial growth factor (VEGF) is the major regulating factor for the formation of new blood vessels, also known as angiogenesis. VEGF is often incorporated in synthetic scaffolds to promote vascularization and to enhance the survival of cells that have been seeded in these devices. Such applications require sustained local delivery of VEGF of around 4 weeks for stable blood vessel formation. Most delivery systems for VEGF only provide short-term release for a couple of days, followed by a release phase with very low VEGF release. We now have developed VEGF-loaded polymeric microspheres that provide sustained release of bioactive VEGF for 4 weeks. Blends of two swellable poly(ε-caprolactone)–poly(ethylene glycol)–poly(ε-caprolactone)-b-poly(l-lactide) ([PCL–PEG–PCL]-b-[PLLA])-based multiblock copolymers with different PEG content and PEG molecular weight were used to prepare the microspheres. Loading of the microspheres was established by a solvent evaporation-based membrane emulsification method. The resulting VEGF-loaded microspheres had average sizes of 40–50 μm and a narrow size distribution. Optimized formulations of a 50:50 blend of the two multiblock copolymers had an average VEGF loading of 0.79 ± 0.09%, representing a high average VEGF loading efficiency of 78 ± 16%. These microspheres released VEGF continuously over 4 weeks in phosphate-buffered saline pH 7.4 at 37 °C. This release profile was preserved after repeated and long-term storage at ?20 °C for up to 9 months, thereby demonstrating excellent storage stability. VEGF release was governed by diffusion through the water-filled polymer matrix, depending on PEG molecular weight and PEG content of the polymers. The bioactivity of the released VEGF was retained within the experimental error in the 4-week release window, as demonstrated using a human umbilical vein endothelial cells proliferation assay. Thus, the microspheres prepared in this study are suitable for embedment in polymeric scaffolds with the aim of promoting their functional vascularization.
机译:血管内皮生长因子(VEGF)是新血管形成的主要调节因子,也称为血管生成。 VEGF通常掺入合成支架中,以促进血管生成并增强已植入这些设备的细胞的存活率。为了稳定地形成血管,此类应用需要持续约4周的局部VEGF局部递送。大多数VEGF的递送系统只能提供几天的短期释放,然后是VEGF释放非常低的释放阶段。我们现在已经开发出可加载VEGF的聚合物微球,可持续释放4周的生物活性VEGF。基于两种可溶胀聚(ε-己内酯)-聚(乙二醇)-聚(ε-己内酯)-b-聚(l-丙交酯)([PCL-PEG-PCL] -b- [PLLA])的多嵌段混合物用具有不同PEG含量和PEG分子量的共聚物制备微球。通过基于溶剂蒸发的膜乳化方法确定微球的负载。所得的载有VEGF的微球的平均粒径为40-50μm,粒径分布较窄。两种多嵌段共聚物的50:50共混物的优化配方具有0.79±0.09%的平均VEGF负载量,代表了78±16%的高平均VEGF负载效率。这些微球在37°C的磷酸盐缓冲盐水pH 7.4中连续4周连续释放VEGF。反复和长期在?20°C下保存9个月后,该释放特性得以保留,从而证明了优异的保存稳定性。 VEGF的释放取决于在充满水的聚合物基质中的扩散,取决于PEG分子量和聚合物的PEG含量。如使用人脐静脉内皮细胞增殖测定所证明的,释放的VEGF的生物活性在4周的释放窗内保留在实验误差内。因此,本研究中制备的微球适合嵌入聚合物支架中,以促进其功能性血管形成。

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