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Locally superengineered cascade recognition-quantification zones in nanochannels for sensitive enantiomer identification.
Guo, Junli; Xu, Huijie; Zhao, Junjian; Gao, Zhida; Wu, Zeng-Qiang; Song, Yan-Yan.
Afiliación
  • Guo J; College of Sciences, Northeastern University Shenyang 110819 China yysong@mail.neu.edu.cn.
  • Xu H; College of Sciences, Northeastern University Shenyang 110819 China yysong@mail.neu.edu.cn.
  • Zhao J; College of Sciences, Northeastern University Shenyang 110819 China yysong@mail.neu.edu.cn.
  • Gao Z; College of Sciences, Northeastern University Shenyang 110819 China yysong@mail.neu.edu.cn.
  • Wu ZQ; School of Public Health, Nantong University Nantong 226019 China zqwu@ntu.edu.cn.
  • Song YY; College of Sciences, Northeastern University Shenyang 110819 China yysong@mail.neu.edu.cn.
Chem Sci ; 13(34): 9993-10002, 2022 Aug 31.
Article en En | MEDLINE | ID: mdl-36128237
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 TiO2 nanochannels via the design of cascade recognition-quantification zones along the nanochannels. In this system, ß-cyclodextrin (ß-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 via 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 in situ 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.

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Tipo de estudio: Diagnostic_studies Idioma: En Revista: Chem Sci Año: 2022 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Tipo de estudio: Diagnostic_studies Idioma: En Revista: Chem Sci Año: 2022 Tipo del documento: Article