Sun Xiaoyu, Ma Runtian, Shi Yanping
CAS Key Laboratory of Chemistry of Northwestern Plant Resources and Key Laboratory for Natural Medicine of Gansu Province, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, China.
University of Chinese Academy of Sciences, Chinese Academy of Sciences, Beijing 100049, China.
Se Pu. 2020 Jan 8;38(1):50-59. doi: 10.3724/SP.J.1123.2019.06017.
Proteins, which have complex structures and fall under diverse categories, are closely associated with different kinds of life activities. Majority of the proteins exist in low concentrations in complex biological samples, because of which their direct analysis without sample pretreatment is difficult. Thus, selective separation of the target proteins from complex biological samples is essential for efficient analysis. Molecularly imprinted polymers, containing numerous imprinted cavities that are complementary with the templates in terms of shape, size, and functional groups, have great potential for use in the selective recognition and separation of the target proteins from complex biological samples. However, the large size, structural flexibility, and complex structures of proteins hinder their efficient separation and analysis by conventional molecular imprinting technology. In this review, several novel molecular imprinting techniques, including surface imprinting, epitope imprinting, and metal chelate imprinting, are introduced. The emergence of these novel technologies has contributed to advances in protein analysis. The applications of these molecular imprinting techniques to the separation and analysis of proteins in the last three years are summarized herein. Finally, the promising future of molecular imprinting techniques in the area of proteins is prospected.
蛋白质具有复杂的结构,分属不同类别,与各种生命活动密切相关。大多数蛋白质在复杂生物样品中的浓度较低,因此未经样品预处理直接分析它们很困难。因此,从复杂生物样品中选择性分离目标蛋白质对于高效分析至关重要。分子印迹聚合物含有许多在形状、大小和官能团方面与模板互补的印迹空腔,在从复杂生物样品中选择性识别和分离目标蛋白质方面具有巨大的应用潜力。然而,蛋白质的大尺寸、结构灵活性和复杂结构阻碍了通过传统分子印迹技术对其进行高效分离和分析。在这篇综述中,介绍了几种新型分子印迹技术,包括表面印迹、表位印迹和金属螯合印迹。这些新技术的出现推动了蛋白质分析的进展。本文总结了这些分子印迹技术在过去三年中在蛋白质分离和分析中的应用。最后,展望了分子印迹技术在蛋白质领域的广阔前景。