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Three-Dimensional Poly(ε-caprolactone) Bioactive Scaffolds with Controlled Structural and Surface Properties

机译:具有受控的结构和表面性质的三维聚(ε-己内酯)生物活性支架

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The requirement of a multifunctional scaffold for tissue engineering capable to offer at the same time tunable structural properties and bioactive interface is still unpaired. Here we present three-dimensional (3D) biodegradable polymeric (PCL) scaffolds with controlled morphology, macro-, micro-, and nano-mechanical performances endowed with bioactive moieties (RGD peptides) at the surface. Such result was obtained by a combination of rapid prototyping (e.g., 3D fiber deposition) and surface treatment approach (aminolysis followed by peptide coupling). By properly designing process conditions, a control over the mechanical and biological performances of the structure was achieved with a capability to tune the value of compressive modulus (in the range of 60-90 MPa, depending on the specific lay-down pattern). The macromechanical behavior of the proposed scaffolds was not affected by surface treatment preserving bulk properties, while a reduction of hardness firom O.SO-0.27 GPa to 0.1-0.03 GPa was obtained. The penetration depth of the chemical treatment was determined by nanoindentation measurements and confocal microscopy. The efficacy of both functionalization and the following bioactivation was monitored by analytically quantifying fiinctional groups and/or peptides at the interface. NIH3T3 fibroblast adhesion studies evidenced that cell attachment was improved, suggesting a correct presentation of the peptide. Accordingly, the present work mainly focuses on the effect of the surface modification on the mechanical and functional performances of the scaffolds, also showing a morphological and analytical approach to study the functionalization/bioactivation treatment, the distribution of immobilized ligands, and the biological features.
机译:能够同时提供可调节的结构特性和生物活性界面的用于组织工程的多功能支架的需求仍未解决。在这里,我们提出具有可控的形态,宏观,微观和纳米机械性能的三维(3D)可生物降解聚合物(PCL)支架,并在表面赋予了生物活性部分(RGD肽)。这种结果是通过快速原型制作(例如3D纤维沉积)和表面处理方法(氨解后进行肽偶联)相结合而获得的。通过适当设计工艺条件,可以控制结构的机械和生物学性能,并具有调节压缩模量值的能力(在60-90 MPa的范围内,具体取决于具体的铺放方式)。所提议的支架的宏观力学行为不受保留整体性能的表面处理的影响,同时将硬度从O.SO-0.27 GPa降低到0.1-0.03 GPa。通过纳米压痕测量和共聚焦显微镜确定化学处理的渗透深度。通过分析定量界面上的官能团和/或肽,监测了功能化和随后的生物活化的功效。 NIH3T3成纤维细胞粘附研究证明细胞附着得到改善,表明该肽的正确表达。因此,目前的工作主要集中在表面修饰对支架的机械和功能性能的影响上,还显示了一种形态学和分析方法来研究功能化/生物活化处理,固定配体的分布以及生物学特征。

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