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首页> 外文期刊>Journal of Applied Polymer Science >Poly(2-hydroxyethylmethacrylate)/chitosan dye and different metal-ion-immobilized interpenetrating network membranes: Preparation and application in metal affinity chromatography
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Poly(2-hydroxyethylmethacrylate)/chitosan dye and different metal-ion-immobilized interpenetrating network membranes: Preparation and application in metal affinity chromatography

机译:聚(甲基丙烯酸2-羟乙酯)/壳聚糖染料及不同的金属离子固定互穿网络膜的制备及其在金属亲和色谱中的应用

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Composite membranes were synthesized with 2-hydroxyethylmethacrylate and chitosan (pHEMA/chitosan) via an ultraviolet-initiated photopolymerization technique in the presence of an initiator (alpha,alpha'-azobisisobutyronitrile). The interpenetrating network (IPN) membranes were improved by the immobilization of dye molecules via hydroxyl and amino groups on the membrane surfaces from the IPNs. A triazidine dye (Procion Green H-4G) was covalently immobilized as a ligand onto the IPN membranes. The protein showed various affinities to different chelated metal ions on the membrane surfaces that best matched its own distribution of functional sites, resulting in a distribution of binding energies. In support of this interpretation, two different metal ions, Zn(II) and Fe(III), were chelated with the immobilized dye molecules. The adsorption and binding characteristics of the different metal-ion-chelated dye-immobilized IPN membranes for the lysozyme were investigated with aqueous solutions in magnetically stirred cells. The experimental data were analyzed with two adsorption kinetic models, pseudo-first-order and pseudo-second-order, to determine the best fit equation for the adsorption of lysozyme onto IPN membranes. The second-order equation for the lysozyme-dye-metal-chelated IPN membrane systems was the most appropriate equation for predicting the adsorption capacity for all the tested adsorbents. The reversible lysozyme adsorption on the dye-immobilized and metal-ion-chelated membranes obeyed the Temkin isotherm. The lysozyme adsorption capacity of the pHEMA/chitosan dye, pHEMA/chitosan dye-Zn(II), and pHEMA/chitosan dye-Fe(III) membranes were 2.54, 2.85, and 3.64 mg cm(-2), respectively. The nonspecific adsorption of the lysozyme on the plain pHEMA/chitosan membrane was about 0.18 mg cm(-2). (C) 2003 Wiley Periodicals, Inc. [References: 28]
机译:在引发剂(α,α′-偶氮二异丁腈)存在下,通过紫外线引发的光聚合技术,用甲基丙烯酸2-羟乙酯和壳聚糖(pHEMA /壳聚糖)合成复合膜。互穿网络(IPN)膜通过染料分子通过IPN在膜表面上的羟基和氨基固定化而得到改善。将三氮嗪染料(Procion Green H-4G)作为配体共价固定在IPN膜上。该蛋白质对膜表面上不同的螯合金属离子表现出各种亲和力,最适合其自身的功能位点分布,从而导致结合能的分布。为了支持这种解释,将两种不同的金属离子Zn(II)和Fe(III)与固定的染料分子螯合。用水溶液在磁力搅拌的细胞中研究了不同的金属离子螯合的染料固定IPN膜对溶菌酶的吸附和结合特性。用两种吸附动力学模型(拟一级和拟二级)分析了实验数据,以确定溶菌酶在IPN膜上的最佳吸附方程。溶菌酶-染料-金属螯合的IPN膜系统的二级方程是预测所有测试吸附剂吸附容量的最合适方程。染料固定和金属离子螯合膜上的可逆溶菌酶吸附遵循Temkin等温线。 pHEMA /壳聚糖染料,pHEMA /壳聚糖染料-Zn(II)和pHEMA /壳聚糖染料-Fe(III)膜的溶菌酶吸附能力分别为2.54、2.85和3.64 mg cm(-2)。溶菌酶在普通pHEMA /壳聚糖膜上的非特异性吸附约为0.18 mg cm(-2)。 (C)2003 Wiley Periodicals,Inc. [参考:28]

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