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3D 打印聚己内酯还原氧化石墨烯支架的机械性能制备与表征。

Fabrication and characterization of mechanically competent 3D printed polycaprolactone-reduced graphene oxide scaffolds.

机构信息

Connecticut Convergence Institute for Translation in Regenerative Engineering, UConn Health, 293 Farmington Avenue, Farmington, CT, 06030, USA.

Raymond and Beverly Sackler Center for Biomedical, Biological, Physical and Engineering Sciences, UConn Health, Farmington, CT, 06030, USA.

出版信息

Sci Rep. 2020 Dec 17;10(1):22210. doi: 10.1038/s41598-020-78977-w.

Abstract

The ability to produce constructs with a high control over the bulk geometry and internal architecture has situated 3D printing as an attractive fabrication technique for scaffolds. Various designs and inks are actively investigated to prepare scaffolds for different tissues. In this work, we prepared 3D printed composite scaffolds comprising polycaprolactone (PCL) and various amounts of reduced graphene oxide (rGO) at 0.5, 1, and 3 wt.%. We employed a two-step fabrication process to ensure an even mixture and distribution of the rGO sheets within the PCL matrix. The inks were prepared by creating composite PCL-rGO films through solvent evaporation casting that were subsequently fed into the 3D printer for extrusion. The resultant scaffolds were seamlessly integrated, and 3D printed with high fidelity and consistency across all groups. This, together with the homogeneous dispersion of the rGO sheets within the polymer matrix, significantly improved the compressive strength and stiffness by 185% and 150%, respectively, at 0.5 wt.% rGO inclusion. The in vitro response of the scaffolds was assessed using human adipose-derived stem cells. All scaffolds were cytocompatible and supported cell growth and viability. These mechanically reinforced and biologically compatible 3D printed PCL-rGO scaffolds are a promising platform for regenerative engineering applications.

摘要

3D 打印作为一种具有吸引力的制造技术,能够精确控制大块几何形状和内部结构,从而用于支架的制备。目前,人们积极研究各种设计和墨水,以制备用于不同组织的支架。在这项工作中,我们制备了包含聚己内酯(PCL)和不同含量还原氧化石墨烯(rGO)的 3D 打印复合支架,含量分别为 0.5、1 和 3wt%。我们采用两步法制备工艺,以确保 rGO 片在 PCL 基体中的均匀混合和分布。通过溶剂蒸发铸膜法制备了复合 PCL-rGO 薄膜,然后将其送入 3D 打印机进行挤出,以制备墨水。得到的支架无缝集成,并且在所有组中都具有很高的保真度和一致性地进行了 3D 打印。此外,rGO 片在聚合物基体中的均匀分散,使支架的压缩强度和刚度分别提高了 185%和 150%,rGO 含量为 0.5wt%。通过人脂肪来源干细胞评估了支架的体外反应。所有支架均具有细胞相容性,并支持细胞生长和活力。这些机械增强和生物相容的 3D 打印 PCL-rGO 支架是再生工程应用的有前途的平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3a13/7747749/06fbaa65755b/41598_2020_78977_Fig1_HTML.jpg

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