Wei Xiaolin, Li Xiao, Husson Scott M
Department of Chemical and Biomolecular Engineering, Clemson University, Clemson, South Carolina 29634-0909, USA.
Biomacromolecules. 2005 Mar-Apr;6(2):1113-21. doi: 10.1021/bm049311i.
Results are presented that demonstrate the successful preparation of ultrathin (< 10 nm), surface-confined, molecularly imprinted polymer (MIP) films on model gold substrates using atom transfer radical polymerization (ATRP). 2-Vinylpyridine (2Vpy) was investigated as the functional monomer, and ethylene glycol dimethacrylate (EGDMA) was the cross-linking monomer. Fluorescently labeled N,N'-didansyl-L-cystine and N,N'-didansyl-L-lysine were used as the template molecules to form the MIPs. Spectroscopic and ellipsometric results are presented that follow film formation and growth rates. Results are also presented from fluorescence experiments used to quantify and compare the adsorption capacities of MIP surface films and nonimprinted (NIP) control films. MIP films exhibited higher binding capacities than the control NIP films at all solution concentrations of N,N'-didansyl-L-cystine and N,N'-didansyl-L-lysine. Furthermore, template removal from these imprinted films appears to be 100% efficient. Selectivity studies showed that the MIPs display some cross-reactivity between these two molecules; nevertheless, MIPs prepared against one template showed selectivity for that template. A selectivity coefficient of 1.13 was achieved for MIP surfaces prepared against N,N'-didansyl-L-lysine; a value of 1.51 was observed for MIP surfaces prepared against N,N'-didansyl-L-cystine.
研究结果表明,利用原子转移自由基聚合(ATRP)在模型金基底上成功制备了超薄(<10 nm)、表面受限的分子印迹聚合物(MIP)薄膜。研究了2-乙烯基吡啶(2Vpy)作为功能单体,乙二醇二甲基丙烯酸酯(EGDMA)作为交联单体。使用荧光标记的N,N'-双丹磺酰-L-胱氨酸和N,N'-双丹磺酰-L-赖氨酸作为模板分子来形成MIP。给出了跟踪薄膜形成和生长速率的光谱和椭偏测量结果。还给出了用于量化和比较MIP表面薄膜与非印迹(NIP)对照薄膜吸附能力的荧光实验结果。在N,N'-双丹磺酰-L-胱氨酸和N,N'-双丹磺酰-L-赖氨酸的所有溶液浓度下,MIP薄膜均表现出比对照NIP薄膜更高的结合能力。此外,从这些印迹薄膜中去除模板的效率似乎为100%。选择性研究表明,MIP在这两种分子之间表现出一定的交叉反应性;然而,针对一种模板制备的MIP对该模板具有选择性。针对N,N'-双丹磺酰-L-赖氨酸制备的MIP表面的选择性系数为1.13;针对N,N'-双丹磺酰-L-胱氨酸制备的MIP表面观察到的值为1.51。