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Development of poly(vinyl alcohol) porous scaffold with high strength and well ciprofloxacin release efficiency

机译:高强度,环丙沙星释放效率高的聚乙烯醇多孔支架的研制

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Hydrophilic porous polymer scaffolds have shown great application in drug controlled release, while their mechanical properties and release efficiency still need further improvement. In the current study, the porous scaffolds of polyvinyl alcohol (PVA) prepared by quenching in liquid nitrogen and freeze drying method from different original concentration aqueous solutions were fabricated. Among different PVA scaffolds, the scaffold stemming from 18 wt.% PVA aqueous solution exhibited the best mechanical properties, 10.5 and 1.54 MPa tensile strengths for the dry and hydrogel states respectively. The inner morphology of such PVA scaffold was unidirectional honeycomb-like structure with average microchannel section of 0.5 mu m, and the scaffold showed porosity of 71% and rather low ciprofloxacin (Cip) release efficiency of 54.5%. Then poly(ethylene glycol) (PEG) was incorporated to enhance the Cip release efficiency. The release efficiency reached 89.3% after introducing 10 wt% PEG, and the mechanical properties of scaffold decreased slightly. Various characterization methods demonstrated that, adding PEG could help to enlarge the microchannel, create extra holes on the channel walls, weaken the interaction between PVA chains and Cip, and miniaturize the crystal size of Cip. All these effects benefit the dissolution and diffusion of Cip from scaffold, increasing its release capability. Moreover, based on biocompatible material composition, PVA/PEG scaffold is a non-cytotoxicity and have been verified that it can promote cell growth. And PVA/PEG scaffolds loaded with Cip can completely inhibit the growth of microorganism because of Cip sustaining release. The PVA scaffold would have a good potential application in tissue engineering, demanding high strength and well drug release capability. (C) 2016 Elsevier B.V. All rights reserved.
机译:亲水性多孔聚合物支架在药物控释中已显示出巨大的应用前景,但其机械性能和释放效率仍需进一步提高。在当前的研究中,从不同的原始浓度水溶液中制备了通过在液氮中淬火和冷冻干燥的方法制备的聚乙烯醇(PVA)多孔支架。在不同的PVA支架中,源自18 wt。%PVA水溶液的支架表现出最佳的机械性能,在干燥和水凝胶状态下分别具有10.5和1.54 MPa的拉伸强度。这种PVA支架的内部形态为单向蜂窝状结构,平均微通道截面为0.5μm,并且支架显示出71%的孔隙率和相当低的环丙沙星(Cip)释放效率54.5%。然后加入聚乙二醇(PEG)以提高Cip释放效率。引入10 wt%PEG后,释放效率达到89.3%,支架的机械性能略有下降。各种表征方法表明,添加PEG有助于扩大微通道,在通道壁上形成额外的孔,削弱PVA链与Cip之间的相互作用,并使Cip的晶体尺寸最小化。所有这些作用有利于Cip从支架中的溶解和扩散,从而增加其释放能力。此外,基于生物相容性材料组成,PVA / PEG支架具有非细胞毒性,并且已被证实可以促进细胞生长。由于Cip持续释放,因此装有Cip的PVA / PEG支架可以完全抑制微生物的生长。 PVA支架将在组织工程中具有良好的潜在应用,要求高强度和良好的药物释放能力。 (C)2016 Elsevier B.V.保留所有权利。

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