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使用“特殊设计”的嵌段大分子链作为功能单体和交联剂构建高识别蛋白印迹材料。

Constructing High-Recognition Protein-Imprinted Materials Using "Specially Designed" Block Macromolecular Chains as Functional Monomers and Crosslinkers.

机构信息

Xi' an Key Laboratory of Advanced Photo-electronics Materials and Energy Conversion Device, School of Science, Xijing University, Xi'an 710123, PR China.

College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an 710021, PR China.

出版信息

ACS Appl Mater Interfaces. 2021 Nov 17;13(45):54428-54438. doi: 10.1021/acsami.1c18296. Epub 2021 Nov 4.

Abstract

The use of a macromolecularly functional monomer and crosslinker (MFM) to stabilize and imprint a template protein is a new method to construct high-recognition protein-imprinted materials. In this study, for the first time, a "specially designed" block MFM with both "functional capability" and "crosslinking capability" segments was synthesized via reversible addition-fragmentation chain-transfer polymerization and used to fabricate bovine serum albumin (BSA)-imprinted microspheres (SiO@MPS@MIPs-MFM) by the surface imprinting strategy. Results from circular dichroic spectrum experiments reflected that the block MFM could maintain the natural form of BSA, whereas its corresponding and equivalent micromolecularly functional monomer (MIM) seriously destroyed the secondary structure of proteins. Batch rebinding experiments showed that the maximum adsorption capacity and imprinting factor of SiO@MPS@MIPs-MFM reached 314.9 mg g and 4.02, which were significantly superior to that of MIM-based imprinted materials. In addition, since the crosslinking capability segments in block MFM involved zwitterionic functional groups with a protein-repelling effect, SiO@MPS@MIPs-MFM showed better specific rebinding ability than the imprinted material prepared by MFM without this component. Besides, scanning electron microscopy and transmission electron microscopy images showed that the shell thickness of SiO@MPS@MIPs-MFM was approximately 15 nm, and such a thin imprinted layer ensured its rapid adsorption equilibrium (120 min). As a result, SiO@MPS@MIPs-MFM revealed fantastic selectivity and recognition ability in a mixed protein solution and could efficiently extract BSA from biological samples of bovine calf serum. The proposal of block MFM enriched the options and designability of monomers in protein imprinting technology, thereby laying a foundation for developing high-performance protein-imprinted materials.

摘要

使用大分子功能单体和交联剂(MFM)来稳定和印迹模板蛋白是构建高识别蛋白印迹材料的新方法。在这项研究中,首次通过可逆加成-断裂链转移聚合合成了一种具有“功能能力”和“交联能力”片段的“专门设计”的嵌段 MFM,并通过表面印迹策略用于制备牛血清白蛋白(BSA)印迹微球(SiO@MPS@MIPs-MFM)。圆二色光谱实验结果表明,嵌段 MFM 可以保持 BSA 的天然形式,而其相应的和等效的小分子功能单体(MIM)则严重破坏了蛋白质的二级结构。批量结合实验表明,SiO@MPS@MIPs-MFM 的最大吸附容量和印迹因子达到 314.9 mg g 和 4.02,明显优于基于 MIM 的印迹材料。此外,由于嵌段 MFM 中的交联能力片段包含具有蛋白质排斥作用的两性离子官能团,因此 SiO@MPS@MIPs-MFM 表现出比不含此成分的 MFM 制备的印迹材料更好的特异性结合能力。此外,扫描电子显微镜和透射电子显微镜图像显示,SiO@MPS@MIPs-MFM 的壳层厚度约为 15nm,如此薄的印迹层确保了其快速吸附平衡(120min)。结果,SiO@MPS@MIPs-MFM 在混合蛋白质溶液中表现出出色的选择性和识别能力,并能够从牛犊血清的生物样品中有效提取 BSA。嵌段 MFM 的提出丰富了蛋白质印迹技术中单体的选择和设计性,从而为开发高性能蛋白质印迹材料奠定了基础。

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