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O-Carboxymethyl chitosan-based pH-responsive amphiphilic chitosan derivatives: Characterization, aggregation behavior, and application

机译:基于O-羧甲基壳聚糖的pH-响应式两亲壳聚糖衍生物:表征,聚合行为和应用

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摘要

Chitosan has attracted much attention in drug delivery, however, carboxymethyl chitosan (CMC)-based self-aggregated nanocarriers are seldom reported. In this paper, two kinds of CMC-based pH-responsive amphiphilic chitosan derivatives, N-2-hydroxylpropyl-3-butyl ether-O-carboxymethyl chitosan (HBCC) and N-2-hydroxylpropyl-3-(2-ethylhexyl glycidyl ether)-O-carboxymethyl chitosan (H2ECC), have been synthesized by the homogeneous reaction. The molecular structures were characterized by FTIR, H-1 NMR and C-13 NMR. The optimum reaction condition was obtained based on the data of H-1 NMR spectrum: reaction time of 4 h, reaction temperature of 80 degrees C and n(epoxy)/n(-NH2) of 3/1, respectively. The XRD patterns showed the crystallinity of HBCC and H2ECC decreased due to the introduction of hydrophobic segments. The thermostability of HBCC and H2ECC was improved for the formation of heat-resistant stereo-complexed structures. The intermolecular hydrophobic interaction hindered the intermolecular mobility by increasing glass transition temperature of ca. 10 degrees C. Both HBCC and H2ECC have very low critical aggregation concentrations (HBCC: 0.66-1.56 g/L, H2ECC: 0.57-1.07 g/L) and moderate aggregate particle size, which is advantageous for utilization as a drug carrier. The curcumin loaded HBCC and H2ECC aggregates showed nontoxicity, meanwhile, HBCC and H2ECC showed good antibacterial activity against Staphylococcus aureus and Escherichia coli. As a result of these two favorable properties, HBCC and H2ECC could be used as curcumin nanocarriers as well as antibacterial agents.
机译:壳聚糖在药物递送中引起了许多关注,然而,基于羧甲基壳聚糖(CMC)的自聚集纳米载体很少报道。在本文中,两种基于CMC的pH-响应式两亲型壳聚糖衍生物,N-2-羟丙基-3-丁基醚-O-羧甲基壳聚糖(HBCC)和N-2-羟丙基-3-(2-乙基己基缩水甘油醚)-O-羧甲基壳聚糖(H2ECC)通过均相反应合成。分子结构的特征在于FTIR,H-1 NMR和C-13 NMR。基于H-1 NMR谱的数据获得最佳反应条件:4小时的反应时间,反应温度为80℃和N(环氧)/ N(-NH2)的3/1。 XRD图案显示HBCC的结晶度和H2ECC由于引入疏水区段而降低。改善了HBCC和H2ECC的热稳定性,用于形成耐热立体络合物结构。分子间疏水性相互作用通过增加Ca的玻璃化转变温度阻碍了分子间迁移率。 10℃C.HBCC和H2ECC两者都具有非常低的关键聚集浓度(HBCC:0.66-1.56g / L,H2ECC:0.57-1.07g / L)和中等骨料粒度,其是利用作为药物载体的有利性。姜黄素负载的HBCC和H2ECC聚集体显示出无毒,同时,HBCC和H2ECC对金黄色葡萄球菌和大肠杆菌的良好抗菌活性显示出良好的抗菌活性。由于这两个有利的性质,HBCC和H2ECC可以用作姜黄素纳米载体以及抗菌剂。

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