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用于制造用于大缺陷承重组织工程应用的三维纳米纤维结构的静电纺丝装置中的新型收集器类别。

Novel class of collector in electrospinning device for the fabrication of 3D nanofibrous structure for large defect load-bearing tissue engineering application.

作者信息

Hejazi Fatemeh, Mirzadeh Hamid, Contessi Nicola, Tanzi Maria Cristina, Faré Silvia

机构信息

Department of Polymer Engineering and Color Technology, Amirkabir University of Technology (Tehran Polytechnic), 424 Hafez Avenue, Tehran, Iran.

Department of Chemistry, Materials and Chemical Engineering ''G. Natta'', Politecnico Di Milano, P.Zza Leonardo Da Vinci 32, Milan, 20133, Italy.

出版信息

J Biomed Mater Res A. 2017 May;105(5):1535-1548. doi: 10.1002/jbm.a.35822. Epub 2017 Mar 21.

DOI:10.1002/jbm.a.35822
PMID:27363526
Abstract

Adequate porosity, appropriate pore size, and 3D-thick shape are crucial parameters in the design of scaffolds, as they should provide the right space for cell adhesion, spreading, migration, and growth. In this work, a novel design for fabricating a 3D nanostructured scaffold by electrospinning was taken into account. Helical spring-shaped collector was purposely designed and used for electrospinning PCL fibers. Improved morphological properties and more uniform diameter distribution of collected nanofibers on the turns of helical spring-shaped collector are confirmed by SEM analysis. SEM images elaboration showed 3D pores with average diameter of 4 and 5.5 micrometer in x-y plane and z-direction, respectively. Prepared 3D scaffold possessed 99.98% porosity which led to the increased water uptake behavior in PBS at 37°C up to 10 days, and higher degradation rate compared to 2D flat structure. Uniaxial compression test on 3D scaffolds revealed an elastic modulus of 7 MPa and a stiffness of 10 MPa, together with very low hysteresis area and residual strain. In vitro cytocompatibility test with MG-63 osteoblast-like cells using AlamarBlue colorimetric assay, indicated a continuous increase in cell viability for the 3D structure over the test duration. SEM observation showed enhanced cells spreading and diffusion into the underneath layers for 3D scaffold. Accelerated calcium deposition in 3D substrate was confirmed by EDX analysis. Obtained morphological, physical, and mechanical properties together with in vitro cytocompatibility results, suggest this novel technique as a proper method for the fabrication of 3D nanofibrous scaffolds for the regeneration of critical-size load bearing defects. © 2017 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 105A: 1535-1548, 2017.

摘要

足够的孔隙率、合适的孔径和三维厚度形状是支架设计中的关键参数,因为它们应为细胞粘附、铺展、迁移和生长提供合适的空间。在这项工作中,考虑了一种通过静电纺丝制造三维纳米结构支架的新颖设计。特意设计了螺旋弹簧形收集器并用于静电纺丝聚己内酯纤维。扫描电子显微镜(SEM)分析证实,在螺旋弹簧形收集器的匝上收集的纳米纤维具有改善的形态特性和更均匀的直径分布。SEM图像显示,在x-y平面和z方向上,三维孔隙的平均直径分别为4微米和5.5微米。制备的三维支架孔隙率为99.98%,这导致其在37°C的磷酸盐缓冲盐溶液(PBS)中长达10天的吸水率增加,并且与二维平面结构相比降解速率更高。对三维支架进行的单轴压缩试验显示,其弹性模量为7兆帕,刚度为10兆帕,滞后面积和残余应变非常低。使用AlamarBlue比色法对MG-63成骨样细胞进行的体外细胞相容性试验表明,在测试期间,三维结构的细胞活力持续增加。SEM观察显示,三维支架的细胞铺展和向底层的扩散增强。能量色散X射线(EDX)分析证实了三维基质中钙沉积的加速。获得的形态、物理和机械性能以及体外细胞相容性结果表明,这种新技术是制造用于临界尺寸承重缺陷再生的三维纳米纤维支架的合适方法。© 2017威利期刊公司。《生物医学材料研究杂志》A部分:105A:1535 - 1548,2017年。

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