Department of Biology Engineering, School of Biology, Food and Environment Engineering, Hefei University, Hefei 230601, Anhui, China.
State Key Laboratory of Tea Plant Biology and Utilization, Anhui Agricultural University, 130 Changjiang West Road, Hefei 230036, Anhui, China.
ACS Appl Mater Interfaces. 2021 Dec 8;13(48):57981-57997. doi: 10.1021/acsami.1c17762. Epub 2021 Nov 22.
Herein, a strategy for a metal ion-imprinted artificial antibody with recognition sites tagged by fluorescein was carried out to construct the selective sites with a sensitive optical response signal to the specific metal ion. The synthesized silica nanoparticles were modified by the derivative residue group of 3-aminopropyltriethoxysilane conjugated with a 4-chloro-7-nitro-1,2,3-benzoxadiazole (NBD-Cl) molecule through the hydrolysis and condensation reactions. The as-prepared silica nanoparticles were encapsulated by metal ion (Cu, Cd, Hg, and Pb)-imprinted polymers with nanostructured layers through the copolymerization of ethyl glycol dimethyl methacrylate (EGDMA) as a cross-linker, AIBN as an initiator, metal ions as template molecules, AA as a functional monomer, and acetonitrile as a solvent. The layers of molecular imprinted polymers (MIPs) with a core-shell structure removed template molecules by EDTA-2Na to retain the cavities and spatial sizes to match the imprinted metal ions. The microsensor arrays were achieved by the self-assembly technique of SiO@MIP nanoparticles on the etched silicon wafer with regular dot arrays. The nanostructured-shell layers with fluorescence-tagged recognition sites rebound metal ions by the driving force of concentration difference demonstrates the high selective recognition and sensitive detection to heavy metal ions through the decline of fluorescence intensity. The LOD concentration for four metal ions is down to 10 mol·L. The method will provide biomimetic synthesis, analyte screen, and detection of highly dangerous materials in the environment for theoretical foundation and technological support.
在此,提出了一种带有荧光标记识别位点的金属离子印迹人工抗体的策略,以构建对特定金属离子具有敏感光学响应信号的选择性结合位点。合成的硅纳米粒子通过 3-氨丙基三乙氧基硅烷的衍生残留物与 4-氯-7-硝基-1,2,3-苯并恶二唑(NBD-Cl)分子的水解和缩合反应进行修饰。将制备的硅纳米粒子通过共聚作用封装在金属离子(Cu、Cd、Hg 和 Pb)印迹聚合物中,其中乙氧基乙二醇二甲基丙烯酸酯(EGDMA)用作交联剂,AIBN 用作引发剂,金属离子作为模板分子,AA 作为功能单体,乙腈作为溶剂。通过 EDTA-2Na 去除模板分子,保留具有空腔和空间尺寸以匹配印迹金属离子的核壳结构的分子印迹聚合物(MIP)层。通过自组装技术将 SiO@MIP 纳米粒子组装在具有规则点阵列的刻蚀硅片上,实现微传感器阵列。带有荧光标记识别位点的纳米结构化壳层通过浓度差的驱动力重新结合金属离子,通过荧光强度的下降表现出对重金属离子的高选择性识别和敏感检测。四种金属离子的检出限浓度低至 10 摩尔·L。该方法将为环境中高危险物质的仿生合成、分析物筛选和检测提供理论基础和技术支持。