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生物分子功能化固态离子纳米通道/纳米孔:特点与技术。

Biomolecule-Functionalized Solid-State Ion Nanochannels/Nanopores: Features and Techniques.

机构信息

Engineering Research Center of Nano-Geomaterials of Ministry of Education, Faculty of Materials Science and Chemistry, China University of Geosciences (CUG), 388 Lumo Road, Wuhan, 430074, P. R. China.

State Key Laboratory of Material Processing and Die & Mould Technology, School of Material Sciences and Engineering, Huazhong University of Science and Technology (HUST), Wuhan, 430074, P. R. China.

出版信息

Small. 2019 Aug;15(32):e1804878. doi: 10.1002/smll.201804878. Epub 2019 Feb 12.

Abstract

Solid-state ion nanochannels/nanopores, the biomimetic products of biological ion channels, are promising materials in real-world applications due to their robust mechanical and controllable chemical properties. Functionalizations of solid-state ion nanochannels/nanopores by biomolecules pave a wide way for the introduction of varied properties from biomolecules to solid-state ion nanochannels/nanopores, making them smart in response to analytes or external stimuli and regulating the transport of ions/molecules. In this review, two features for nanochannels/nanopores functionalized by biomolecules are abstracted, i.e., specificity and signal amplification. Both of the two features are demonstrated from three kinds of nanochannels/nanopores: nucleic acid-functionalized nanochannels/nanopores, protein-functionalized nanochannels/nanopores, and small biomolecule-functionalized nanochannels/nanopores, respectively. Meanwhile, the fundamental mechanisms of these combinations between biomolecules and nanochannels/nanopores are explored, providing reasonable constructs for applications in sensing, transport, and energy conversion. And then, the techniques of functionalizations and the basic principle about biomolecules onto the solid-state ion nanochannels/nanopores are summarized. Finally, some views about the future developments of the biomolecule-functionalized nanochannels/nanopores are proposed.

摘要

固态离子纳米通道/纳米孔是生物离子通道的仿生产物,由于其具有稳健的机械性能和可控制的化学性能,在实际应用中具有广阔的前景。通过生物分子对固态离子纳米通道/纳米孔进行功能化,为从生物分子向固态离子纳米通道/纳米孔引入各种性质铺平了道路,使它们能够对分析物或外部刺激做出智能响应,并调节离子/分子的传输。在这篇综述中,总结了两种通过生物分子功能化的纳米通道/纳米孔的特征,即特异性和信号放大。这两个特征分别从三种纳米通道/纳米孔中得到了证明:核酸功能化纳米通道/纳米孔、蛋白质功能化纳米通道/纳米孔和小分子生物功能化纳米通道/纳米孔。同时,探索了这些生物分子与纳米通道/纳米孔之间的组合的基本机制,为在传感、传输和能量转换中的应用提供了合理的构建。然后,总结了固态离子纳米通道/纳米孔的功能化技术和生物分子在其上的基本原理。最后,对生物分子功能化纳米通道/纳米孔的未来发展提出了一些看法。

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