Ren Meili, Liu Daixin, Qin Fupeng, Chen Xun, Ma Wenhao, Tian Rong, Weng Ting, Wang Deqang, Astruc Didier, Liang Liyuan
Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences & Chongqing School, University of Chinese Academy of Science, Chongqing 400714, PR China; Chongqing Jiaotong University, Chongqing 400014, PR China.
Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences & Chongqing School, University of Chinese Academy of Science, Chongqing 400714, PR China.
Adv Colloid Interface Sci. 2025 Apr;338:103417. doi: 10.1016/j.cis.2025.103417. Epub 2025 Jan 27.
Nanopore-based electrical detection technology holds single-molecule resolution and combines the advantages of high sensitivity, high throughput, rapid analysis, and label-free detection. It is widely applied in the determination of organic and biological macromolecules, small molecules, and nanomaterials, as well as in nucleic acid and protein sequencing. There are a wide variety of organic polymers and biopolymers, and their chemical structures, and conformation in solution directly affect their ensemble properties. Currently, there is limited approach available for the analysis of single-molecule conformation and self-assembled topologies of polymers, dendrimers and biopolymers. Nanopore single-molecule platform offers unique advantages over other sensing technologies, particularly in molecular size differentiation of macromolecules and complex conformation analysis. In this review, the classification of nanopore devices, including solid-state nanopores (SSNs), biological nanopores, and hybrid nanopores is introduced. The recent developments and applications of nanopore devices are summarized, with a focus on the applications of nanopore platform in the resolution of the structures of synthetic polymer, including dendritic, star-shaped, block copolymers, as well as biopolymers, including polysaccharides, nucleic acids and proteins. The future prospects of nanopore sensing technique are ultimately discussed.
基于纳米孔的电学检测技术具有单分子分辨率,结合了高灵敏度、高通量、快速分析和无标记检测等优点。它广泛应用于有机和生物大分子、小分子及纳米材料的测定,以及核酸和蛋白质测序。存在各种各样的有机聚合物和生物聚合物,它们在溶液中的化学结构和构象直接影响其整体性质。目前,用于分析聚合物、树枝状大分子和生物聚合物的单分子构象和自组装拓扑结构的方法有限。纳米孔单分子平台相对于其他传感技术具有独特优势,特别是在大分子的分子尺寸区分和复杂构象分析方面。在这篇综述中,介绍了纳米孔器件的分类,包括固态纳米孔(SSNs)、生物纳米孔和混合纳米孔。总结了纳米孔器件的最新进展和应用,重点关注纳米孔平台在解析合成聚合物结构中的应用,包括树枝状、星形、嵌段共聚物,以及生物聚合物,包括多糖、核酸和蛋白质。最后讨论了纳米孔传感技术的未来前景。