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首页> 外文期刊>International Journal of Biological Macromolecules: Structure, Function and Interactions >Development of bioactive cellulose nanocrystals derived from dominant cellulose polymorphs I and II from Capsosiphon Fulvescens for biomedical applications
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Development of bioactive cellulose nanocrystals derived from dominant cellulose polymorphs I and II from Capsosiphon Fulvescens for biomedical applications

机译:从胶囊填充胶囊衍生自显性纤维素多晶型物I和II的生物活性纤维素纳米晶体进行生物医学应用

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Cellulose I and II polymorphs were isolated from Capsosiphon fulvescens (CF) using the conventional method of extraction and direct mercerization of raw sample, respectively. The morphological and structural differences between the isolated polymorphs were studied by FTIR, FESEM and XRD. Direct mercerization of raw CF yielded the transformation of highly crystalline cellulose I (81.3%) to II (63.7%) as observed in the shifting of XRD patterns. The derived cellulose I and II were hydrolyzed (60% w/w H2SO4, 55 degrees C, 1 h, 10 mL/g) to obtain the spindle-shaped cellulose nanocrystals. Cellulose nanocrystal I was observed to have a mean thickness and length of 12.67 +/- 2.69 and 92.31 +/- 21.31 nm, respectively: while cellulose nanocrystal II has a mean thickness and length of 15.58 +/- 2.85 and 78.09 +/- 18.22 nm, respectively. Furthermore, a fiber-like mat assembly, which could be used as supplement support structure for tissue engineering, was obtained after subjecting the aqueous cellulose nanocrystal suspensions to freeze-drying. A possible application of this material can be as a biocompatible and biodegradable composite for tissue engineering and other biomedical applications. (C) 2017 Published by Elsevier B.V.
机译:纤维素I和II多晶型物是从使用提取和原始样品的直接丝光的传统方法中,分别针毛Capsosiphon(CF)分离。通过FTIR,FESEM和XRD进行了研究多晶型物中分离之间的形态和结构上的差异。生CF的直接丝光产生高度结晶的纤维素I(81.3%),以如在X射线衍射图案的移位观察II(63.7%)的转化。所导出的纤维素I和II进行水解(60%w / w的H 2 SO 4,55℃,1个小时,10毫升/克),得到纺锤形纤维素纳米晶体。纤维素纳米晶体我观察到分别具有12.67 +/- 2.69和92.31 +/- 21.31纳米,平均厚度和长度:当纤维素纳米晶体II具有15.58 +/- 2.85和78.09 +/- 18.22的平均厚度和长度纳米,分别。此外,纤维状垫组件,其可被用作补充支撑结构用于组织工程,是对所述水性纤维素纳米晶体悬浮液冷冻干燥后获得。这种材料的一种可能的应用可以是作为用于组织工程和其它生物医学应用的生物相容的和可生物降解的复合材料。 (c)2017年由Elsevier B.V发布。

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