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壳聚糖/结冷胶的比例含量会调节水凝胶对骨髓间充质干细胞的支架能力。

Chitosan/gellan gum ratio content into blends modulates the scaffolding capacity of hydrogels on bone mesenchymal stem cells.

机构信息

Laboratory of Materials, Macromolecules and Composites, Federal University of Technology (UTFPR), 86812-460, Apucarana, PR, Brazil; Group of Polymers and Composite Materials, Chemical Department, State University of Maringá (UEM), Maringá, PR, 87020-900, Brazil.

School of Advanced Materials Discovery, Colorado State University (CSU), Fort Collins, CO, 80523, USA.

出版信息

Mater Sci Eng C Mater Biol Appl. 2020 Jan;106:110258. doi: 10.1016/j.msec.2019.110258. Epub 2019 Oct 10.

DOI:10.1016/j.msec.2019.110258
PMID:31753363
Abstract

Here, we have demonstrated the production and characterization of hydrogel scaffolds based on chitosan/gellan gum (CS/GG) assemblies, without any covalent and metallic crosslinking agents, conventionally used to yield non-soluble polysaccharide-based materials. The polyelectrolyte complexes (physical hydrogels called as PECs) are characterized by Fourier-transform infrared spectroscopy, wide-angle X-ray scattering, and scanning electron microscopy. Hydrogels containing chitosan (CS) excesses (ranging from 60 to 80 wt%) were created. Durable polysaccharide-based scaffolds with structural homogeneity and interconnecting pore networks are developed by modulating the CS/GG weight ratio. The CS/GG hydrogel prepared at 80/20 CS/GG weight ratio (sample CS/GG80-20) is cytocompatible, supporting the attachment, growth, and spreading of bone marrow mesenchymal stem cells (BMSCs) after nine days of cell culture. The cytocompatibility is correlated to the swelling capacity of the PEC in PBS buffer (pH 7.4). By controlling the CS content, we can tune the water uptake of the material, enhancing the capacity to serve as a three-dimensional cell scaffold for BMSCs. This work presents for the first time that CS/GG hydrogels can be applied as scaffolds for tissue engineering purposes.

摘要

在这里,我们展示了基于壳聚糖/结冷胶(CS/GG)组装体的水凝胶支架的制备和特性,而无需使用传统的用于生成不可溶性多糖基材料的任何共价和金属交联剂。通过傅里叶变换红外光谱、广角 X 射线散射和扫描电子显微镜对聚电解质复合物(称为 PEC 的物理水凝胶)进行了表征。制备了壳聚糖(CS)过量的水凝胶(CS 含量范围为 60 至 80wt%)。通过调节 CS/GG 重量比,开发了具有结构均一性和互连孔网络的耐用多糖基支架。在 CS/GG 重量比为 80/20(样品 CS/GG80-20)的条件下制备的 CS/GG 水凝胶具有细胞相容性,支持骨髓间充质干细胞(BMSCs)在细胞培养 9 天后的附着、生长和扩展。细胞相容性与 PEC 在 PBS 缓冲液(pH 7.4)中的溶胀能力相关。通过控制 CS 的含量,我们可以调节材料的吸水率,提高其作为 BMSCs 的三维细胞支架的能力。这项工作首次表明 CS/GG 水凝胶可用作组织工程目的的支架。

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