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A chiral metal-organic framework {(HQA)(ZnCl(2))(2.5H(2)O)}(n) for the enantioseparation of chiral amino acids and drugs

Chiral metal-organic frameworks (CMOFs) with enantiomeric subunits have been employed in chiral chemistry. In this study, a CMOF formed from 6-methoxyl-(8S,9R)-cinchonan-9-ol-3-carboxylic acid (HQA) and ZnCl(2), {(HQA)(ZnCl(2))(2.5H(2)O)}(n), was constructed as a chiral stationary phase (CSP) via an...

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Autores principales: Zheng, Xiangtai, Zhang, Qi, Ma, Qianjie, Li, Xinyu, Zhao, Liang, Sun, Xiaodong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Xi'an Jiaotong University 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10173174/
https://www.ncbi.nlm.nih.gov/pubmed/37181296
http://dx.doi.org/10.1016/j.jpha.2023.03.003
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author Zheng, Xiangtai
Zhang, Qi
Ma, Qianjie
Li, Xinyu
Zhao, Liang
Sun, Xiaodong
author_facet Zheng, Xiangtai
Zhang, Qi
Ma, Qianjie
Li, Xinyu
Zhao, Liang
Sun, Xiaodong
author_sort Zheng, Xiangtai
collection PubMed
description Chiral metal-organic frameworks (CMOFs) with enantiomeric subunits have been employed in chiral chemistry. In this study, a CMOF formed from 6-methoxyl-(8S,9R)-cinchonan-9-ol-3-carboxylic acid (HQA) and ZnCl(2), {(HQA)(ZnCl(2))(2.5H(2)O)}(n), was constructed as a chiral stationary phase (CSP) via an in situ fabrication approach and used for chiral amino acid and drug analyses for the first time. The {(HQA)(ZnCl(2))(2.5H(2)O)}(n) nanocrystal and the corresponding chiral stationary phase were systematically characterised using a series of analytical techniques including scanning electron microscopy, X-ray diffraction, Fourier transform infrared spectroscopy, circular dichroism, X-ray photoelectron spectroscopy, thermogravimetric analysis, and Brunauer-Emmett-Teller surface area measurements. In open-tubular capillary electrochromatography (CEC), the novel chiral column exhibited strong and broad enantioselectivity toward a variety of chiral analytes, including 19 racemic dansyl amino acids and several model chiral drugs (both acidic and basic). The chiral CEC conditions were optimised, and the enantioseparation mechanisms are discussed. This study not only introduces a new high-efficiency member of the MOF-type CSP family but also demonstrates the potential of improving the enantioselectivities of traditional chiral recognition reagents by fully using the inherent characteristics of porous organic frameworks.
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spelling pubmed-101731742023-05-12 A chiral metal-organic framework {(HQA)(ZnCl(2))(2.5H(2)O)}(n) for the enantioseparation of chiral amino acids and drugs Zheng, Xiangtai Zhang, Qi Ma, Qianjie Li, Xinyu Zhao, Liang Sun, Xiaodong J Pharm Anal Original Article Chiral metal-organic frameworks (CMOFs) with enantiomeric subunits have been employed in chiral chemistry. In this study, a CMOF formed from 6-methoxyl-(8S,9R)-cinchonan-9-ol-3-carboxylic acid (HQA) and ZnCl(2), {(HQA)(ZnCl(2))(2.5H(2)O)}(n), was constructed as a chiral stationary phase (CSP) via an in situ fabrication approach and used for chiral amino acid and drug analyses for the first time. The {(HQA)(ZnCl(2))(2.5H(2)O)}(n) nanocrystal and the corresponding chiral stationary phase were systematically characterised using a series of analytical techniques including scanning electron microscopy, X-ray diffraction, Fourier transform infrared spectroscopy, circular dichroism, X-ray photoelectron spectroscopy, thermogravimetric analysis, and Brunauer-Emmett-Teller surface area measurements. In open-tubular capillary electrochromatography (CEC), the novel chiral column exhibited strong and broad enantioselectivity toward a variety of chiral analytes, including 19 racemic dansyl amino acids and several model chiral drugs (both acidic and basic). The chiral CEC conditions were optimised, and the enantioseparation mechanisms are discussed. This study not only introduces a new high-efficiency member of the MOF-type CSP family but also demonstrates the potential of improving the enantioselectivities of traditional chiral recognition reagents by fully using the inherent characteristics of porous organic frameworks. Xi'an Jiaotong University 2023-04 2023-03-22 /pmc/articles/PMC10173174/ /pubmed/37181296 http://dx.doi.org/10.1016/j.jpha.2023.03.003 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Zheng, Xiangtai
Zhang, Qi
Ma, Qianjie
Li, Xinyu
Zhao, Liang
Sun, Xiaodong
A chiral metal-organic framework {(HQA)(ZnCl(2))(2.5H(2)O)}(n) for the enantioseparation of chiral amino acids and drugs
title A chiral metal-organic framework {(HQA)(ZnCl(2))(2.5H(2)O)}(n) for the enantioseparation of chiral amino acids and drugs
title_full A chiral metal-organic framework {(HQA)(ZnCl(2))(2.5H(2)O)}(n) for the enantioseparation of chiral amino acids and drugs
title_fullStr A chiral metal-organic framework {(HQA)(ZnCl(2))(2.5H(2)O)}(n) for the enantioseparation of chiral amino acids and drugs
title_full_unstemmed A chiral metal-organic framework {(HQA)(ZnCl(2))(2.5H(2)O)}(n) for the enantioseparation of chiral amino acids and drugs
title_short A chiral metal-organic framework {(HQA)(ZnCl(2))(2.5H(2)O)}(n) for the enantioseparation of chiral amino acids and drugs
title_sort chiral metal-organic framework {(hqa)(zncl(2))(2.5h(2)o)}(n) for the enantioseparation of chiral amino acids and drugs
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10173174/
https://www.ncbi.nlm.nih.gov/pubmed/37181296
http://dx.doi.org/10.1016/j.jpha.2023.03.003
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