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本文引用的文献

1
Proliferation and osteoblastic differentiation of hMSCs on cellulose-based hydrogels.人骨髓间充质干细胞在基于纤维素的水凝胶上的增殖和成骨细胞分化。
J Appl Biomater Funct Mater. 2012;10(3):302-7. doi: 10.5301/JABFM.2012.10366.
2
Development of a biostable replacement for PEGDA hydrogels.开发一种生物稳定的聚乙二醇二丙烯酸酯水凝胶替代品。
Biomacromolecules. 2012 Mar 12;13(3):779-86. doi: 10.1021/bm201707z. Epub 2012 Feb 22.
3
Selected morphological and functional properties of extruded acetylated starch-cellulose foams.挤压乙酰化淀粉-纤维素泡沫材料的选定形态学和功能特性。
Bioresour Technol. 2006 Sep;97(14):1716-26. doi: 10.1016/j.biortech.2004.09.017.
4
Synthesis and characterization of macroporous poly(ethylene glycol)-based hydrogels for tissue engineering application.用于组织工程应用的大孔聚乙二醇基水凝胶的合成与表征
J Biomed Mater Res A. 2006 Nov;79(2):229-36. doi: 10.1002/jbm.a.30780.
5
Smooth muscle cell growth in photopolymerized hydrogels with cell adhesive and proteolytically degradable domains: synthetic ECM analogs for tissue engineering.具有细胞黏附及蛋白水解可降解结构域的光聚合水凝胶中的平滑肌细胞生长:用于组织工程的合成细胞外基质类似物
Biomaterials. 2001 Nov;22(22):3045-51. doi: 10.1016/s0142-9612(01)00051-5.
6
Preparation and characterization of biodegradable copolyester-starch based foams.可生物降解的共聚酯-淀粉基泡沫材料的制备与表征
Bioresour Technol. 2001 Jun;78(2):115-22. doi: 10.1016/s0960-8524(01)00013-x.

通过微波固化制备和表征纤维素基泡沫。

Preparation and characterization of cellulose-based foams via microwave curing.

机构信息

Department of Engineering for Innovation , University of Salento , Campus Ecotekne, Via Monteroni, Lecce 73100 , Italy.

Institute of Composite and Biomedical Materials, National Research Council of Italy (IMCB-CNR) , Mostra d'Oltremare Padiglione 20, via J.F. Kennedy 54, Naples 80125 , Italy.

出版信息

Interface Focus. 2014 Feb 6;4(1):20130053. doi: 10.1098/rsfs.2013.0053.

DOI:10.1098/rsfs.2013.0053
PMID:24501679
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3886316/
Abstract

In this work, a mixture of a sodium salt of carboxymethylcellulose (CMCNa) and polyethylene glycol diacrylate (PEGDA700) was used for the preparation of a microporous structure by using the combination of two different procedures. First, physical foaming was induced using Pluronic as a blowing agent, followed by a chemical stabilization. This second step was carried out by means of an azobis(2-methylpropionamidine)dihydrochloride as the thermoinitiator (TI). This reaction was activated by heating the sample homogeneously using a microwave generator. Finally, the influence of different CMCNa and PEGDA700 ratios on the final properties of the foams was investigated. The viscosity, water absorption capacity, elastic modulus and porous structure were evaluated for each sample. In addition, preliminary biological characterization was carried out with the aim to prove the biocompatibility of the resulting material. The foam, including 20% of PEGDA700 in the mixture, demonstrated higher viscosity and stability before thermo-polymerization. In addition, increased water absorption capacity, mechanical resistance and a more uniform microporous structure were obtained for this sample. In particular, foam with 3% of CMCNa shows a hierarchical structure with open pores of different sizes. This morphology increased the properties of the foams. The full set of samples demonstrated an excellent biocompatibility profile with a good cell proliferation rate of more than 7 days.

摘要

在这项工作中,使用羧甲基纤维素钠(CMCNa)和聚乙二醇二丙烯酸酯(PEGDA700)的混合物,通过两种不同的程序组合来制备微孔结构。首先,使用 Pluronic 作为发泡剂诱导物理发泡,然后进行化学稳定化。第二步通过偶氮双(2-甲基丙脒)二盐酸盐作为热引发剂(TI)进行。通过使用微波发生器均匀加热样品来激活该反应。最后,研究了不同 CMCNa 和 PEGDA700 比例对泡沫最终性能的影响。对每个样品的粘度、吸水率、弹性模量和多孔结构进行了评估。此外,还进行了初步的生物学表征,旨在证明所得到的材料的生物相容性。在热聚合之前,混合物中含有 20%的 PEGDA700 的泡沫表现出更高的粘度和稳定性。此外,该样品还获得了更高的吸水率、机械阻力和更均匀的微孔结构。特别是,含有 3%CMCNa 的泡沫呈现出具有不同尺寸的开放孔的分级结构。这种形态增加了泡沫的性能。整套样品表现出极好的生物相容性,细胞增殖率超过 7 天。