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用于灵敏对映体识别的纳米通道中局部超工程化级联识别-定量区域

Locally superengineered cascade recognition-quantification zones in nanochannels for sensitive enantiomer identification.

作者信息

Guo Junli, Xu Huijie, Zhao Junjian, Gao Zhida, Wu Zeng-Qiang, Song Yan-Yan

机构信息

College of Sciences, Northeastern University Shenyang 110819 China

School of Public Health, Nantong University Nantong 226019 China

出版信息

Chem Sci. 2022 Aug 8;13(34):9993-10002. doi: 10.1039/d2sc03198a. eCollection 2022 Aug 31.

Abstract

As an intriguing and intrinsic feature of life, chirality is highly associated with many significant biological processes. Simultaneous recognition and quantification of enantiomers remains a major challenge. Here, a sensitive enantiomer identification device is developed on TiO nanochannels the design of cascade recognition-quantification zones along the nanochannels. In this system, β-cyclodextrin (β-CD) is self-assembled on one side of the nanochannels for the selective recognition of enantiomers; CuMOFs are designed as the target-responsive partners on the other side of the nanochannels for the quantification of enantiomers that pass through the nanochannels. As a proof-of-principle of the cascade design, arginine (Arg) enantiomers are tested as the identification targets. The l-Arg molecules selectively bind in the recognition zone; d-Arg molecules pass through the recognition zone and then interact with the quantification zone a specialized reduction reaction. As verified by nanofluidic simulations, because of the confinement effect of nanoscale channels combined with the condensation effect of porous structure, the reaction in the quantification zone contributes to an unprecedented variation in transmembrane K flux, leading to an improved identification signal. This novel cascade-zone nanochannel membrane provides a smart strategy to design multifunctional nanofluidic devices.

摘要

作为生命中一种有趣且内在的特征,手性与许多重要的生物过程高度相关。对映体的同时识别和定量仍然是一项重大挑战。在此,基于TiO纳米通道开发了一种灵敏的对映体识别装置,其设计了沿纳米通道的级联识别 - 定量区域。在该系统中,β - 环糊精(β - CD)在纳米通道的一侧自组装以选择性识别对映体;金属有机框架(CuMOFs)被设计为纳米通道另一侧的目标响应伙伴,用于对穿过纳米通道的对映体进行定量。作为级联设计的原理验证,精氨酸(Arg)对映体被用作识别目标进行测试。L - Arg分子在识别区域选择性结合;D - Arg分子穿过识别区域,然后与定量区域发生相互作用——一种特殊的还原反应。正如纳米流体模拟所验证的,由于纳米级通道的限制效应与多孔结构的凝聚效应相结合,定量区域的反应导致跨膜K通量出现前所未有的变化,从而提高了识别信号。这种新型的级联区域纳米通道膜为设计多功能纳米流体装置提供了一种巧妙的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1551/9430310/f771628c64cf/d2sc03198a-f1.jpg

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