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Chitosan as a Biomaterial: Influence of Degree of Deacetylation on Its Physiochemical Material and Biological Properties

机译:壳聚糖作为一种生物材料:脱乙酰度对其物理化学材料和生物学特性的影响

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摘要

Chitosan is a biomaterial with a range of current and potential biomedical applications. Manipulation of chitosan degree of deacetylation (DDA) to achieve specific properties appears feasible, but studies investigating its influence on properties are often contradictory. With a view to the potential of chitosan in the regeneration of nerve tissue, the influence of DDA on the growth and health of olfactory ensheathing cells (OECs) was investigated. There was a linear increase in OEC proliferation as the DDA increased from 72 to 85%. This correlated with linear increases in average surface roughness (0.62 to 0.78 μm) and crystallinity (4.3 to 10.1%) of the chitosan films. Mitochondrial activity and membrane integrity of OECs was significantly different for OECs cultivated on chitosan with DDAs below 75%, while those on films with DDAs up to 85% were similar to cells in asynchronous growth. Apoptotic indices and cell cycle analysis also suggested that chitosan films with DDAs below 75% were cytocompatible but induced cellular stress, while OECs grown on films fabricated from chitosan with DDAs above 75% showed no significant differences compared to those in asynchronous growth. Tensile strength and elongation to break varied with DDA from 32.3 to 45.3 MPa and 3.6 to 7.1% respectively. DDA had no significant influence on abiotic and biotic degradation profiles of the chitosan films which showed approximately 8 and 20% weight loss respectively. Finally, perceived patterns in property changes are subject to change based on potential variations in DDA analysis. NMR examination of the chitosan samples here revealed significant differences depending upon which peaks were selected for integration; 6 to 13% in DDA values within individual samples. Furthermore, differences between DDA values determined here and those reported by the commercial suppliers were significant and this may also be a source of concern when selecting commercial chitosans for biomaterial research.
机译:壳聚糖是一种生物材料,具有一系列当前和潜在的生物医学应用。操纵壳聚糖脱乙酰度(DDA)以达到特定性能似乎是可行的,但是研究其对性能影响的研究通常是矛盾的。考虑到壳聚糖在神经组织再生中的潜力,研究了DDA对嗅鞘细胞(OEC)的生长和健康的影响。随着DDA从72%增加到85%,OEC增殖呈线性增加。这与壳聚糖膜的平均表面粗糙度(0.62至0.78μm)和结晶度(4.3至10.1%)呈线性增加。对于在DDA低于75%的壳聚糖上培养的OEC,其OEC的线粒体活性和膜完整性存在显着差异,而在DDA高达85%的薄膜上培养的OEC与异步生长的细胞相似。凋亡指数和细胞周期分析还表明,DDA低于75%的壳聚糖膜具有细胞相容性,但可诱导细胞应激,而由DDA高于75%的壳聚糖制成的膜上生长的OEC与异步生长相比没有显着差异。 DDA的拉伸强度和断裂伸长率分别从32.3MPa至45.3MPa和3.6%至7.1%变化。 DDA对壳聚糖薄膜的非生物和生物降解特性没有显着影响,壳聚糖薄膜的失重分别约为8%和20%。最后,基于DDA分析中的潜在变化,属性变化的感知模式也会发生变化。此处对壳聚糖样品进行的NMR检查显示出显着差异,具体取决于选择哪个峰进行积分。单个样品中DDA值的6%至13%。此外,此处确定的DDA值与商业供应商报告的DDA值之间存在显着差异,这在选择商业壳聚糖进行生物材料研究时也可能引起关注。

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