Ju Hongyu, Cheng Li, Li Mengmeng, Mei Kunrong, He Suhang, Jia Chuancheng, Guo Xuefeng
School of Pharmaceutical Science and Technology, Tianjin University, Tianjin, 300072, P. R. China.
Center of Single-Molecule Sciences, Institute of Modern Optics, Frontiers Science Center for New Organic Matter, Tianjin Key Laboratory of Microscale Optical Information Science and Technology, College of Electronic Information and Optical Engineering, Nankai University, Tianjin, 300350, P. R. China.
Adv Sci (Weinh). 2024 Jul;11(28):e2401877. doi: 10.1002/advs.202401877. Epub 2024 Apr 19.
In recent decades, there has been a significant increase in the application of single-molecule electrical analysis platforms in studying proteins and peptides. These advanced analysis methods have the potential for deep investigation of enzymatic working mechanisms and accurate monitoring of dynamic changes in protein configurations, which are often challenging to achieve in ensemble measurements. In this work, the prominent research progress in peptide and protein-related studies are surveyed using electronic devices with single-molecule/single-event sensitivity, including single-molecule junctions, single-molecule field-effect transistors, and nanopores. In particular, the successful commercial application of nanopores in DNA sequencing has made it one of the most promising techniques in protein sequencing at the single-molecule level. From single peptides to protein complexes, the correlation between their electrical characteristics, structures, and biological functions is gradually being established. This enables to distinguish different molecular configurations of these biomacromolecules through real-time electrical monitoring of their life activities, significantly improving the understanding of the mechanisms underlying various life processes.
近几十年来,单分子电分析平台在蛋白质和肽研究中的应用显著增加。这些先进的分析方法有潜力深入研究酶的作用机制,并精确监测蛋白质构象的动态变化,而这些在整体测量中往往难以实现。在这项工作中,我们使用具有单分子/单事件灵敏度的电子设备,包括单分子结、单分子场效应晶体管和纳米孔,对肽和蛋白质相关研究的显著进展进行了综述。特别是,纳米孔在DNA测序中的成功商业应用使其成为单分子水平蛋白质测序中最有前途的技术之一。从单肽到蛋白质复合物,它们的电学特性、结构和生物学功能之间的相关性正在逐步建立。这使得通过对这些生物大分子生命活动的实时电监测来区分其不同的分子构象成为可能,从而显著增进了对各种生命过程潜在机制的理解。