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用于选择性识别抗肿瘤药物 6-硫代鸟嘌呤的衍生化胞嘧啶双(2,2'-联噻吩)甲烷分子印迹聚合物。

Cytosine derivatized bis(2,2'-bithienyl)methane molecularly imprinted polymer for selective recognition of 6-thioguanine, an antitumor drug.

机构信息

Department of Physical Chemistry of Supramolecular Complexes, Institute of Physical Chemistry, Polish Academy of Sciences (IPC PAS), Kasprzaka 44/52, 01-224 Warsaw, Poland; Department of Chemistry, University of North Texas, Denton, TX 76203-5017, USA.

Department of Physical Chemistry of Supramolecular Complexes, Institute of Physical Chemistry, Polish Academy of Sciences (IPC PAS), Kasprzaka 44/52, 01-224 Warsaw, Poland.

出版信息

Biosens Bioelectron. 2015 Aug 15;70:153-60. doi: 10.1016/j.bios.2015.03.001. Epub 2015 Mar 12.

Abstract

A molecularly imprinted polymer (MIP) was designed and synthesized to serve as a functional material for selective recognition of 6-thioguanine (6TG), an antitumor drug. For that, the newly synthesized functional monomer, cytosine-bis(2,2'-bithienyl)-(4-carboxyphenyl)methane ester (Cyt-S4), revealed Watson-Crick type nucleobase pairing of 6TG. Formation of the Cyt-S4 and 6TG complex of the 2:1 stoichiometry was postulated based on the DFT calculations at the B3LYP/3-21G((⁎)) level and experimentally confirmed by fluorescence titration. The molecularly imprinted polymer (MIP) film was deposited by potentiodynamic electropolymerization on a Pt disk electrode as well as on an Au-coated glass slide and on an Au-quartz crystal resonator. The statistical model of formation of this film was successfully simulated by molecular dynamics. Completeness of the subsequent 6TG template extraction from MIP was confirmed by the UV-visible spectroscopy. An imprinting factor of 2.9 for the MIP film was determined by piezoelectric microgravimetry using ECQM. The double-layer capacity and alternating current measurements under flow-injection analysis (FIA) conditions were selected to transduce the 6TG recognition signal into the change of the double-layer capacity dependence on the 6TG concentration in solution for different supporting electrolyte concentrations. Detectability of the resulting chemosensor was 10 µM 6TG for the 0.5 M KF carrier solution in FIA. Selectivity of the chemosensor with respect to common interferences was high, e.g., it exceeded 130 to 2-amino-6-methylmercaptopurine, a 6TG metabolite.

摘要

设计并合成了一种分子印迹聚合物(MIP),用作选择性识别抗肿瘤药物 6-硫代鸟嘌呤(6TG)的功能材料。为此,新合成的功能单体胞嘧啶-双(2,2'-联噻吩)-(4-羧基苯基)甲烷酯(Cyt-S4),揭示了 6TG 的 Watson-Crick 型核碱基配对。基于 B3LYP/3-21G((⁎))水平的密度泛函理论计算和荧光滴定实验证实了该配合物以 2:1 的化学计量比形成。通过恒电位电化学聚合在 Pt 圆盘电极、Au 涂覆的玻璃片和 Au 石英晶体谐振器上沉积了分子印迹聚合物(MIP)薄膜。该薄膜的形成的统计模型成功地通过分子动力学进行了模拟。通过紫外-可见光谱证实了从 MIP 中完全提取模板 6TG。使用 ECQM 通过压电微重力法确定了 MIP 薄膜的印迹因子为 2.9。双层电容和交流测量在流动注射分析(FIA)条件下被选择用来将 6TG 识别信号转换为双层电容随溶液中 6TG 浓度变化的关系,用于不同的支持电解质浓度。在 FIA 中,对于 0.5 M KF 载体溶液,所得化学传感器对 10 µM 6TG 的检测限为 10 µM。化学传感器对常见干扰物的选择性很高,例如,对于 6TG 的代谢物 2-氨基-6-甲基巯基嘌呤,其选择性超过 130。

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