...
首页> 外文期刊>ACS applied materials & interfaces >Fabrication of High-Performance Magnetic Lysozyme-Imprinted Microsphere and Its NIR-Responsive Controlled Release Property
【24h】

Fabrication of High-Performance Magnetic Lysozyme-Imprinted Microsphere and Its NIR-Responsive Controlled Release Property

机译:磁性溶菌酶印迹微球的制备及其近红外响应控释性能

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

The preparation of efficient and practical biomacromolecules imprinted polymer materials is still a challenging task because of the spatial hindrance caused by the large size of template and target molecules in the imprinting and recognition process. Herein, we provided a novel pathway to coat a NIR-light responsive lysozyme-imprinted polydopamine (PDA) layer on a fibrous SiO2 (F-SiO2) microsphere grown up from a magnetic Fe3O4 core nanoparticle. The magnetic coreshell structured lysozyme-imprinted Fe3O4@F-SiO2@PDA microspheres (MIP-lysozyme) can be easily separated by a magnet and have a high saturation adsorption capacity of lysozyme of 700 mg/g within 30 min because of the high surface area of 570 m(2)/g and the mesopore size of 12 nm of the Fe3O4@F-SiO2 support. The MIP-lysozyme microspheres also show an excellent selective adsorption of lysozyme (IF > 4). The binding thermodynamic parameters studied by ITC proves that the lysozyme should be restricted by the well-defined 3D structure of MIP-lysozyme microspheres. The MIP-lysozyme can extract lysozyme efficiently from real egg white. Owing to the efficient NIR light photothermal effect of PDA layer, the MIP-lysozyme microspheres show the controlled release property triggered by NIR laser. The released lysozyme molecules still maintain good bioactivity, which can efficiently decompose E. coli. Therefore, this work provides a novel strategy to build practical NIR-light-responsive MIPs for the extraction and application of biomacromolecules.
机译:有效和实用的生物大分子印迹聚合物材料的制备仍然是一项艰巨的任务,因为在印迹和识别过程中,模板和目标分子的大尺寸会造成空间障碍。在这里,我们提供了一种新的途径,可在由磁性Fe3O4核纳米颗粒长大的纤维状SiO2(F-SiO2)微球上涂覆NIR光响应溶菌酶印迹的聚多巴胺(PDA)层。磁性核壳结构的溶菌酶印迹Fe3O4 @ F-SiO2 @ PDA微球(MIP-溶菌酶)易于被磁体分离,并且由于表面积大,在30分钟内具有700 mg / g的溶菌酶饱和吸附能力Fe3O4 @ F-SiO2载体的中孔尺寸为570 m(2)/ g,中孔尺寸为12 nm。 MIP溶菌酶微球也表现出出色的溶菌酶选择性吸附(IF> 4)。 ITC研究的结合热力学参数证明,溶菌酶应受到MIP溶菌酶微球的3D结构的明确限制。 MIP溶菌酶可以从真正的蛋清中有效地提取溶菌酶。由于PDA层具有高效的近红外光热效应,因此MIP溶菌酶微球具有由近红外激光触发的控释特性。释放的溶菌酶分子仍保持良好的生物活性,可以有效分解大肠杆菌。因此,这项工作为构建用于生物大分子的提取和应用的近红外光响应性MIP提供了一种新颖的策略。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号