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Synthesis of core-shell imprinting polymers with uniform thin imprinting layer via iniferter-induced radical polymerization for the selective recognition of thymopentin in aqueous solution

机译:通过引发引发的自由基聚合反应合成具有均匀薄印迹层的核-壳印迹聚合物,以选择性识别水溶液中的胸腺五肽

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摘要

An approach for synthesizing core-shell imprinting polymers using P(EGDMA-CMS) microspheres prepared via dispersion polymerization as a core and employing a surface imprinting technique and iniferter-induced radical polymerization is described. N, N-Diethyldithiocarbamyl groups were immobilized on the surface of the supporting microspheres to form the surface iniferter and further prepare the imprinting layer. Thymopentin (TP5) was selected as the template molecule, which was known to be an immunomodulating agent that had medical properties. Here, a bifunctional ionic liquid (IL), namely, 1-vinyl- 3-carbamoylmethyl-imidazolium chloride ([VACMIM] Cl), was synthesized and employed as a novel functional monomer on the basis of the demands of peptide imprinting and the designability of ILs. Under irradiation by UV light, the surface iniferter decomposed and then polymerization was initiated to form a thin surface imprinting layer with specific recognition cavities for TP5. The surface imprinting layer possessed a uniform thickness of similar to 35 nm, which was beneficial for the mass transfer of the template TP5, owing to good control of the thickness of the imprinting layer by controlled/living radical polymerization (CRP). The polymeric microspheres were fully characterized and their adsorption properties were investigated. The surface molecular imprinting microspheres (SMIMs) displayed high binding affinity, good selective specificity, rapid adsorption equilibrium and satisfactory reusability. The Scatchard plots of the SMIMs could be fitted to one straight line, which suggested that there was only one kind of binding site. Furthermore, the method of combining a surface imprinting technique and CRP together can be extended to a wide range of applications for chemical sensors, drug delivery and the separation of biomacromolecules.
机译:描述了一种使用通过分散聚合制备的P(EGDMA-CMS)微球为核,并采用表面印迹技术和引发引发的自由基聚合的方法合成核-壳印迹聚合物的方法。将N,N-二乙基二硫代氨基甲酰基固定在支撑微球的表面上,以形成表面发炎剂并进一步制备压印层。选择胸腺五肽(TP5)作为模板分子,已知其是具有医学特性的免疫调节剂。在此,根据肽印迹和可设计性的要求,合成了一种双功能离子液体(IL),即1-乙烯基-3-氨基甲酰基甲基咪唑鎓氯化物([VACMIM] Cl),并用作新型功能单体IL。在紫外线照射下,表面发炎的物质分解,然后引发聚合反应,形成了一个薄的表面印迹层,该印迹层具有对TP5的特定识别腔。表面压印层具有约35nm的均匀厚度,这由于通过受控/活性自由基聚合(CRP)对压印层的厚度的良好控制而有利于模板TP5的传质。聚合物微球被充分表征,并研究了它们的吸附性能。表面分子印迹微球(SMIMs)具有高结合亲和力,良好的选择性特异性,快速的吸附平衡和令人满意的可重复使用性。 SMIM的Scatchard图可以拟合为一条直线,这表明只有一种结合位点。此外,将表面压印技术和CRP结合在一起的方法可以扩展到化学传感器,药物输送和生物大分子分离的广泛应用。

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