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Regulating drug release from pH-and temperature-responsive electrospun CTS-g-PNIPAAm/poly(ethylene oxide) hydrogel nanofibers

机译:调节pH和温度响应电纺CTS-g-PNIPAAm /聚(环氧乙烷)水凝胶纳米纤维的药物释放

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Temperature-and pH-responsive polymers have been widely investigated as smart drug release systems. However, dual-sensitive polymers in the form of nanofibers, which is advantageous in achieving rapid transfer of stimulus to the smart polymeric structures for regulating drug release behavior, have rarely been explored. In this study, chitosan-graftpoly(N-isopropylacrylamide) (CTS-g-PNIPAAm) copolymer was synthesized by using 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide (EDC) and N-hydroxy succinimide (NHS) as grafting agents to graft carboxyl-terminated PNIPAAm (PNIPAAm-COOH) chains onto the CTS biomacromolecules, and then CTS-g-PNIPAAm with or without bovine serum albumin(BSA) was fabricated into nanofibers through electrospinning using poly(ethylene oxide)(PEO, 10 wt%) as a fiber-forming facilitating additive. The BSA laden CTS-g-PNIPAAm/ PEO hydrogel nanofibers were tested to determine their drug release profiles by varying pH and temperature. Finally, cytotoxicity of the CTS-g-PNIPAAm/PEO hydrogel nanofibers was evaluated by assaying the L929 cell proliferation using the MTT method. It was found that the synthesized CTS-g-PNIPAAm possessed a temperature-induced phase transition and lower critical solution temperature (LCST) at 32℃ in aqueous solutions. The rate of BSA release could be well modulated by altering the environmental pH and temperature of the hydrogel nanofibers. The CTS-g-PNIPAAm/PEO hydrogel nanofibers supported L929 cell growth, indicative of appropriate cytocompatibility. Our current work could pave the way towards developing multi-stimuli responsive nanofibrous smart materials for potential applications in the fields of drug delivery and tissue engineering.
机译:温度和pH响应聚合物已被广泛研究为智能药物释放系统。然而,很少探索以纳米纤维形式存在的双敏感聚合物,其有利于实现将刺激快速转移至用于调节药物释放行为的智能聚合物结构。本研究以1-乙基-3-(3-二甲基氨基丙基)碳二亚胺(EDC)和N-羟基琥珀酰亚胺(NHS)为接枝剂合成了壳聚糖-接枝聚(N-异丙基丙烯酰胺)(CTS-g-PNIPAAm)共聚物将羧基末端的PNIPAAm(PNIPAAm-COOH)链接枝到CTS生物大分子上,然后使用聚环氧乙烷(PEO,10 wt%)通过静电纺丝将带有或不带有牛血清白蛋白(BSA)的CTS-g-PNIPAAm制成纳米纤维。 %)作为促进纤维形成的添加剂。测试了负载BSA的CTS-g-PNIPAAm / PEO水凝胶纳米纤维,以通过改变pH和温度来确定其药物释放曲线。最后,通过使用MTT方法测定L929细胞增殖来评估CTS-g-PNIPAAm / PEO水凝胶纳米纤维的细胞毒性。结果表明,合成的CTS-g-PNIPAAm在温度为32℃时具有温度诱导的相变和较低的临界溶液温度(LCST)。通过改变环境pH和水凝胶纳米纤维的温度,可以很好地调节BSA的释放速率。 CTS-g-PNIPAAm / PEO水凝胶纳米纤维支持L929细胞生长,表明具有适当的细胞相容性。我们当前的工作可以为开发多刺激响应的纳米纤维智能材料铺平道路,这些材料可用于药物输送和组织工程领域。

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