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基于纤维素纳米晶体水凝胶的具有梯度孔隙率的 3D 打印支架。

3D printed scaffolds with gradient porosity based on a cellulose nanocrystal hydrogel.

机构信息

Division of Materials and Environmental Chemistry, Stockholm University, SE-10691 Stockholm, Sweden.

出版信息

Nanoscale. 2018 Mar 1;10(9):4421-4431. doi: 10.1039/c7nr08966j.

Abstract

3-Dimensional (3D) printing provides a unique methodology for the customization of biomedical scaffolds with respect to size, shape, pore structure and pore orientation useful for tissue repair and regeneration. 3D printing was used to fabricate fully bio-based porous scaffolds of a double crosslinked interpenetrating polymer network (IPN) from a hydrogel ink of sodium alginate and gelatin (SA/G) reinforced with cellulose nanocrystals (CNCs). CNCs provided favorable rheological properties required for 3D printing. The 3D printed scaffolds were crosslinked sequentially via covalent and ionic reactions resulting in dimensionally stable hydrogel scaffolds with pore sizes of 80-2125 μm and nanoscaled pore wall roughness (visible from scanning electron microscopy) favorable for cell interaction. The 2D wide angle X-ray scattering studies showed that the nanocrystals orient preferably in the printing direction; the degree of orientation varied between 61-76%. The 3D printing pathways were optimised successfully to achieve 3-dimensional scaffolds (Z axis up to 20 mm) with uniform as well as gradient pore structures. This study demonstrates the potential of 3D printing in developing bio-based scaffolds with controlled pore sizes, gradient pore structures and alignment of nanocrystals for optimal tissue regeneration.

摘要

3D 打印为生物医学支架的定制提供了一种独特的方法,可根据尺寸、形状、孔结构和孔方向进行定制,这对于组织修复和再生非常有用。3D 打印用于制造完全基于生物的多孔支架,该支架由海藻酸钠和明胶 (SA/G) 的水凝胶油墨制成,其中加入了纤维素纳米晶体 (CNC) 作为增强材料。CNC 提供了 3D 打印所需的有利流变性能。3D 打印支架通过共价和离子反应顺序交联,从而得到尺寸稳定的水凝胶支架,其孔径为 80-2125μm,纳米级孔壁粗糙度(从扫描电子显微镜上可见)有利于细胞相互作用。二维广角 X 射线散射研究表明,纳米晶体优选在打印方向上取向;取向度在 61-76%之间变化。成功优化了 3D 打印途径,以获得具有均匀和梯度孔结构的 3 维支架(Z 轴高达 20mm)。这项研究表明,3D 打印在开发具有可控孔径、梯度孔结构和纳米晶体排列的基于生物的支架方面具有潜力,可实现最佳的组织再生。

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