首页> 外文期刊>Journal of biomedical materials research, Part A >Recyclable synthesis, characterization, and antimicrobial activity of chitosan-based polysaccharide composite materials.
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Recyclable synthesis, characterization, and antimicrobial activity of chitosan-based polysaccharide composite materials.

机译:壳聚糖基多糖复合材料的可回收合成,表征和抗菌活性。

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We have successfully developed a simple and totally recyclable method to synthesize novel, biocompatible, and biodegradable composite materials from cellulose (CEL) and chitosan (CS). In this method, [BMIm(+) Cl(-) ], an ionic liquid (IL), was used as a green solvent to dissolve and synthesize the [CEL+CS] composites. Since, the IL can be removed from the composites by washing them with water, and recovered by distilling the washed solution, the method is totally recyclable. Spectroscopic and imaging techniques including XRD, FTIR, NIR, and SEM were used to monitor the dissolution, to characterize and to confirm that CEL and CS were successfully regenerated. More importantly, we have successfully demonstrated that [CEL+CS] composite is particularly suited for many applications including antimicrobial property. This is because the composites have combined advantages of their components, namely superior chemical and mechanical stability (from CEL) and bactericide (from CS). Results of tensile strength measurements clearly indicate that adding CEL into CS substantially increase its tensile strength. Up to 5× increase in tensile strength can be achieved by adding 80% of CEL into CS. Results of in vitro antibacterial assays confirm that CS retains its antibacterial property in the composite. More importantly, the composites reported here can inhibit growth of wider range of bacteria than other CS-based materials prepared by conventional methods; that is over 24 h period, the composites substantially inhibited growth of bacteria such as MRSA, VRE, S. aureus, E. coli. These are bacteria that are often found to have the highest morbidity and mortality associated with wound infections.
机译:我们已经成功开发了一种简单且完全可回收的方法,可以从纤维素(CEL)和壳聚糖(CS)合成新颖,生物相容性和可生物降解的复合材料。在该方法中,离子液体(IL)[BMIm(+)Cl(-)]被用作绿色溶剂,以溶解和合成[CEL + CS]复合材料。由于可以通过用水洗涤从复合物中除去IL,并通过蒸馏洗涤后的溶液进行回收,因此该方法是完全可回收的。 XRD,FTIR,NIR和SEM等光谱和成像技术用于监测溶出度,表征和确认CEL和CS已成功再生。更重要的是,我们已经成功证明[CEL + CS]复合材料特别适合包括抗菌特性在内的许多应用。这是因为复合材料具有其成分的综合优势,即优越的化学和机械稳定性(来自CEL)和杀菌剂(来自CS)。拉伸强度测量结果清楚地表明,将CEL添加到CS中会大大提高其拉伸强度。通过在CS中添加80%的CEL,可以使拉伸强度提高5倍。体外抗菌测定的结果证实,CS在复合材料中保留了其抗菌特性。更重要的是,与通过常规方法制备的其他基于CS的材料相比,此处报道的复合材料可以抑制更广泛的细菌生长。在超过24小时的时间内,复合材料基本上抑制了细菌的生长,例如MRSA,VRE,金黄色葡萄球菌,大肠杆菌。这些细菌通常被发现与伤口感染相关的发病率和死亡率最高。

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