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首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >Development of highly porous biodegradable gamma-Fe2O3/polyvinyl alcohol nanofiber mats using electrospinning process for biomedical application
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Development of highly porous biodegradable gamma-Fe2O3/polyvinyl alcohol nanofiber mats using electrospinning process for biomedical application

机译:使用静电纺丝工艺进行高度多孔生物降解的γ-Fe2O3 /聚乙烯醇纳米纤维垫的研制生物医学应用

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The use of electrospinning process in fabricating tissue engineering scaffolds has received great attention in recent years due to its simplicity. The nanofibers produced via electrospinning possessed morphological characteristics similar to extracellular matrix of most tissue components. Porosity plays a vital role in developing tissue engineering scaffolds because it influences the biocompatibility performance of the scaffolds. In this study, maghemite (gamma-Fe2O3) was mixed with polyvinyl alcohol (PVA) and subsequently electrospun to produce nano fibers. Five factors; nanopartides content, voltage, flow rate, spinning distance, and rotating speed were varied to produce the electrospun nanofibrous mats with high porosity value. Empirical model was developed using response surface methodology to analyze the effect of these factors to the porosity. The results revealed that the optimum porosity (90.85%) was obtained using 5% w/v nanoparticle content, 35 kV of voltage, 1.1 ml/h volume flow rate of solution, 8 cm spinning distance and 2455 rpm of rotating speed. The empirical model was verified successfully by performing confirmation experiments. The properties of optimum PVA/gamma-Fe2O3 nanofiber mats such as fiber diameter, mechanical properties, and contact angle were investigated. In addition, cytocompatibility test, in vitro degradation rate, and MTT assay were also performed. Results revealed that high porosity biodegradable gamma-Fe2O3/polyvinyl alcohol nanofiber mats have low mechanical properties but good degradation rates and cytocompafibility properties. Thus, they are suitable for low load bearing biomedical application or soft tissue engineering scaffold. (C) 2016 Elsevier B.V. All rights reserved.
机译:由于其简单性,近年来,在制造组织工程支架中使用静电纺丝工艺在近年来受到极大的关注。通过静电纺丝产生的纳米纤维具有与大多数组织成分的细胞外基质相似的形态特征。孔隙度在开发组织工程支架方面发挥着至关重要的作用,因为它会影响支架的生物相容性性能。在该研究中,将磁黄油(Gamma-Fe 2 O 3)与聚乙烯醇(PVA)混合,随后电纺器纺织纺器纺。五个因素;纳米醇含量,电压,流速,纺距和旋转速度变化,以产生具有高孔隙率值的电纺纳米纤维垫。使用响应面方法制定了经验模型,分析了这些因素对孔隙率的影响。结果表明,使用5%w / v纳米粒子含量,35kV的电压,1.1ml / h体积流速,溶液,8cm旋转距离和2455rpm的转速,得到最佳孔隙率(90.85%)。通过进行确认实验成功验证了经验模型。研究了最佳PVA /γ-Fe2O3纳米纤维垫如纤维直径,机械性能和接触角的性能。另外,还进行了细胞偶联试验,体外降解速率和MTT测定。结果表明,高孔隙率可生物降解的γ-Fe2O3 /聚乙烯醇纳米纤维垫具有低机械性能,但良好的降解速率和细胞胶质组合性。因此,它们适用于低载荷生物医学应用或软组织工程支架。 (c)2016年Elsevier B.v.保留所有权利。

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