具有更好亲水性和功能性的聚(ε-己内酯)-聚(乙二醇)骨架共混聚合物支架的熔融电写入。

Conor Darroch, Francesco Digeronimo, Giuseppe Asaro, Manon Minsart, Nele Pien, Sandra van Vlierberghe, Michael G Monaghan
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引用次数: 0

摘要

熔融电泳(MEW)是一种增材制造技术,它利用电动流体力学现象制造直径为 10 微米的三维打印纤维。这种小尺度打印的能力为创建具有难以置信的精细分辨率和高度定义形态的结构提供了机会。目前用于 MEW 的黄金标准材料是聚(ε-己内酯)(PCL),这是一种生物相容性极佳的聚合物,但缺乏可实现内在附加功能的化学基团。为了在保持 PCL 优点的同时提供这种功能性,我们将其与聚乙二醇(PEG)基丙烯酸酯末端封端的尿烷基前体(AUP)进行混合。AUP 是一类聚合物,建立在现有聚合物的骨架上,通过添加一个或多个丙烯酸酯基团来终止骨架聚合物的聚合物链,从而引入额外的功能性。通过与 20kDa AUP-PEG 进行少量混合,表明 MEW 属性得以保留,从而生产出高质量的网格。以不同的 PCL:AUP 重量比(100:0、90:10 和 0:100)生产混合物,并将其加工成溶剂浇铸薄膜和 MEW 网,用于表征混合物的特性。研究发现,与不溶胀的 PCL 相比,在 PCL 中添加 AUP-PEG 可显著提高用这些聚合物制成的结构的亲水性,并增加溶胀能力。研究表明,所开发的混合物(90:10)可使用 MEW 进行加工,并通过扫描电子显微镜图像分析,对照纯 PCL 支架对所制造支架的质量进行了评估,结果显示新型 MEW 混合物支架的质量与纯 PCL 相当。通过对丙烯酸酯基团进行荧光标记,还证实了所开发的支架表面存在可功能化的 AUP 材料。细胞存活率研究证实了 MEW 可加工混合物的生物相容性,并发现其具有高度的细胞相容性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Melt electrowriting of poly(ϵ-caprolactone)-poly(ethylene glycol) backbone polymer blend scaffolds with improved hydrophilicity and functionality.

Melt electrowriting (MEW) is an additive manufacturing technique that harnesses electro-hydrodynamic phenomena to produce 3D-printed fibres with diameters on the scale of 10s of microns. The ability to print at this small scale provides opportunities to create structures with incredibly fine resolution and highly defined morphology. The current gold standard material for MEW is poly(ϵ-caprolactone) (PCL), a polymer with excellent biocompatibility but lacking in chemical groups that can allow intrinsic additional functionality. To provide this functionality while maintaining PCL's positive attributes, blending was performed with a Poly(Ethylene Glycol) (PEG)-based Acrylate endcapped Urethane-based Precursor (AUP). AUPs are a group of polymers, built on a backbone of existing polymers, which introduce additional functionality by the addition of one or more acrylate groups that terminate the polymer chain of a backbone polymer. By blending with a 20kDa AUP-PEG in small amounts, it is shown that MEW attributes are preserved, producing high-quality meshes. Blends were produced in various PCL:AUP weight ratios (100:0, 90:10 and 0:100) and processed into both solvent-cast films and MEW meshes that were used to characterise the properties of the blends. It was found that the addition of AUP-PEG to PCL significantly increases the hydrophilicity of structures produced with these polymers, and adds swelling capability compared to the non-swelling PCL. The developed blend (90:10) is shown to be processable using MEW, and the quality of manufactured scaffolds is evaluated against pure PCL scaffolds by performing scanning electron microscopy image analysis, with the quality of the novel MEW blend scaffolds showing comparable quality to that of pure PCL. The presence of the functionalisable AUP material on the surface of the developed scaffolds is also confirmed using fluorescence labelling of the acrylate groups. Biocompatibility of the MEW-processable blend was confirmed through a cell viability study, which found a high degree of cytocompatibility.

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