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首页> 外文期刊>Journal of Polymer Science, Part A. Polymer Chemistry >Chitosan-graft-poly(epsilon-caprolactone)s: An optimized chemical approach leading to a controllable structure and enhanced properties
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Chitosan-graft-poly(epsilon-caprolactone)s: An optimized chemical approach leading to a controllable structure and enhanced properties

机译:壳聚糖接枝聚(ε-己内酯)s:一种优化的化学方法,可控制结构,增强性能

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A novel synthetic approach was developed for the controllable modification of chitosan (CS) with poly(epsilon-caprolactone) (PCL). 6-O-Triphenylinethyl-chitosan (TMCS) was synthesized as a highly soluble intermediate in organic solvents to facilitate an efficient grafting reaction of PCL onto CS in a homogeneous reaction medium. Subsequently, the syntheses of CS-g-PCL copolymers with different degrees of substitution (ds) and various chain lengths of PCL (number-average molecular weight = 1200-11,000) were carried out by a coupling reaction between the carboxylic terminal groups of PCL chains and the amino groups of TMCS. The successful grafting reaction was confirmed by GPC measurements, which indicated that the products were graft copolymers rather than physical blends. The ds, defined as the number of PCL chains per saccharide unit, of the graft copolymers could be adjusted simply by changes in the molar feed ratios of PCL to CS, and graft copolymers with different ds values ranging from 0.28 to 0.49 were synthesized, as calculated by H-1 NMR and elemental analysis. DSC and X-ray measurements showed that the melting temperature and enthalpy of the PCL grafts of these graft copolymers could be adjusted by the ds and the chains length of PCL, respectively. Meanwhile, the CS-g-PCL copolymers exhibited better solubility in various solvents, such as in chloroform for some of the resultant graft copolymers, than the original CS. Finally, nanoparticles of 100-200 nm, having hydrophobic PCL domains and cationic hydrophilic surfaces, were obtained through the self-assembly of the copolymers in selective solvents. These types of graft copolymers have great potential in various applications, such as targeted drug and gene delivery as well as tissue engineering. (C) 2007 Wiley Periodicals, Inc.
机译:开发了一种新颖的合成方法,用于用聚ε-己内酯(PCL)可控制地修饰壳聚糖(CS)。合成6-O-三苯甲基乙基-壳聚糖(TMCS)作为有机溶剂中的高度可溶中间体,以促进PCL在均相反应介质中有效接枝到CS上。随后,通过PCL的羧基端基之间的偶联反应,合成具有不同取代度(ds)和各种PCL链长(数均分子量= 1200-11,000)的CS-g-PCL共聚物链和TMCS的氨基。通过GPC测量证实了成功的接枝反应,这表明产物是接枝共聚物而不是物理共混物。可以简单地通过改变PCL与CS的摩尔进料比来调节接枝共聚物的ds(定义为每糖单元的PCL链数),并合成了不同ds值在0.28至0.49之间的接枝共聚物,因为通过H-1 NMR和元素分析计算。 DSC和X射线测量表明,这些接枝共聚物的PCL接枝的熔融温度和焓可以分别通过PCL的ds和链长来调节。同时,CS-g-PCL共聚物在各种溶剂中显示出比原始CS更好的溶解性,例如对于某些所得的接枝共聚物,在氯仿中。最后,通过共聚物在选择性溶剂中的自组装,获得了具有疏水PCL域和阳离子亲水表面的100-200 nm纳米颗粒。这些类型的接枝共聚物在各种应用中具有巨大的潜力,例如靶向药物和基因递送以及组织工程。 (C)2007 Wiley期刊公司

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