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Synthesis and computational investigation of molecularly imprinted nanospheres for selective recognition of alpha-tocopherol succinate

机译:用于选择性识别琥珀酸α-生育酚的分子印迹纳米球的合成和计算研究

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摘要

Molecularly imprinted polymers (MIPs) are macromolecular matrices that can mimic the functional properties of antibodies, receptors and enzymes while possessing higher durability. As such, these polymers are interesting materials for applications in biomimetic sensor, drug synthesis, drug delivery and separation. In this study, we prepared MIPs and molecularly imprinted nanospheres (MINs) as receptors with specific recognition properties toward tocopherol succinate (TPS) in comparison to tocopherol (TP) and tocopherol nicotinate (TPN). MIPs were synthesized using methacrylic acid (MAA) as functional monomer, ethylene glycol dimethacrylate (EGDMA) as crosslinking agent and dichloromethane or acetronitrile as porogenic solvent under thermal-induced polymerization condition. Results indicated that imprinted polymers of TPS-MIP, TP-MIP and TPN-MIP all bound specifically to their template molecules at 2 folds greater than the non-imprinted polymers. The calculated binding capacity of all MIP was approximately 2 mg per gram of polymer when using the optimal rebinding solvent EtOH:H2O (3:2, v/v). Furthermore, the MINs toward TPS and TP were prepared by precipitation polymerization that yielded particles that are 200-400 nm in size. The binding capacities of MINs to their templates were greater than that of the non-imprinted nanospheres when using the optimal rebinding solvent EtOH:H2O (4:1, v/v). Computer simulation was performed to provide mechanistic insights on the binding modalities of template-monomer complexes. In conclusion, we had successful prepared MIPs and MINs for binding specifically to TP and TPS. Such MIPs and MINs have great potential for industrial and medical applications, particularly for the selective separation of TP and TPS.
机译:分子印迹聚合物(MIP)是大分子基质,可以模拟抗体,受体和酶的功能特性,同时具有更高的耐久性。因此,这些聚合物是用于仿生传感器,药物合成,药物递送和分离的有趣材料。在这项研究中,我们制备了MIPs和分子印迹纳米球(MINs)作为受体,与生育酚(TP)和生育酚烟酸酯(TPN)相比,它们对生育酚琥珀酸酯(TPS)具有特定的识别特性。在热引发的聚合条件下,以甲基丙烯酸(MAA)为功能单体,乙二醇二甲基丙烯酸酯(EGDMA)为交联剂,二氯甲烷或乙腈为致孔剂,合成了MIP。结果表明,TPS-MIP,TP-MIP和TPN-MIP的印迹聚合物均特异性地结合到其模板分子上,比未印迹的聚合物高2倍。当使用最佳再结合溶剂EtOH:H2O(3:2,v / v)时,所有MIP的计算结合能力约为每克聚合物2 mg。此外,通过沉淀聚合制备朝向TPS和TP的MIN,得到的颗粒尺寸为200-400nm。当使用最佳的再结合溶剂EtOH:H2O(4:1,v / v)时,MIN对模板的结合能力要大于非印迹纳米球。进行计算机模拟以提供有关模板-单体复合物的结合方式的机理见解。总之,我们已经成功地制备了MIP和MIN,以特异性结合TP和TPS。这种MIP和MIN在工业和医疗应用中具有巨大潜力,尤其是对TP和TPS的选择性分离。

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