Ionizable copolymer functionalized magnetic nanocomposite as an adsorbent for boosting the extraction selectivity of aristolochic acids.

IF 2.6 3区 农林科学 Q2 FOOD SCIENCE & TECHNOLOGY
Qi-Yue Xie, Yang Chen, Chang-Jun Li, Jia-Bin Zhang, Xiu-Jun Cao, Jun Lu
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Abstract

Aristolochic acid nephropathy (AAN) has drawn increasing public attention. Organic anion transporters (OATs) are considered to be responsible for mediating nephrotoxicity of aristolochic acids (AAs), as AAs are typical OAT1 substrates that exhibit anionic properties and contain one hydrophobic domain. Inspired by the OAT1 three-dimensional structure or substrate/protein interactions involved in transport, we designed a magnetic polymeric hybrid, mimicking the effect of basic and aromatic residues of OAT1, for efficient enriching aristolochic acid I (AA I) and aristolochic acid II (AA II) in Traditional Chinese patent medicines (TCPM). N, N-dimethylaminopropyl acrylamide (DMAPAm) was used as a cationic monomer and copolymerized with divinylbenzene (DVB) onto the surface of monodisperse magnetic nanoparticles (denoted as MNs@SiO2T-DvbDam). The magnetic polymer hybrid demonstrated high selectivity and capacity for AAs, which was mainly attributed to (1) electrostatic interactions from the cationic or basic moiety of DMAPAm and (2) the hydrophobic and π-π stacking interactions from the aromatic ring of DVB. Additionally, the surface of the hybrid exhibited amphiphilic property according to the ionization of DMAPAm, thus improving the compatibility of the adsorbent with the aqueous sample matrix. This strategy was proven to be robust in the analysis of real drug samples, which was characterized by a good linearity, high recovery and satisfactory reusability. This work confirmed that the proposed tool could be a promising candidate for enhancing the extraction selectivity of AAs in Traditional Chinese medicines (TCM).

可离子化的共聚物功能化磁性纳米复合材料作为一种吸附剂,用于提高马兜铃酸的萃取选择性。
马兜铃酸肾病(AAN)越来越受到公众的关注。有机阴离子转运体(OATs)被认为是马兜铃酸(AAs)肾毒性的介导因素,因为AAs是典型的OAT1底物,具有阴离子特性并含有一个疏水结构域。受 OAT1 三维结构或转运过程中底物/蛋白质相互作用的启发,我们设计了一种磁性聚合物杂交体,模仿 OAT1 的碱性和芳香残基效应,用于高效富集中成药(TCPM)中的马兜铃酸 I(AA I)和马兜铃酸 II(AA II)。以 N,N-二甲基氨基丙基丙烯酰胺(DMAPAm)为阳离子单体,与二乙烯基苯(DVB)共聚于单分散磁性纳米粒子(MNs@SiO2T-DvbDam)表面。磁性聚合物混合物对 AAs 具有高选择性和高容量,这主要归因于:(1)DMAPAm 的阳离子或碱性分子产生的静电相互作用;(2)DVB 的芳香环产生的疏水和 π-π 堆积相互作用。此外,根据 DMAPAm 的电离情况,混合物的表面表现出两亲性,从而提高了吸附剂与水性样品基质的相容性。事实证明,这种策略在实际药物样品的分析中表现出良好的线性、高回收率和令人满意的重复使用性。这项工作证实,所提出的工具在提高中药(TCM)中 AAs 的提取选择性方面大有可为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Food and Drug Analysis
Journal of Food and Drug Analysis 医学-食品科技
CiteScore
6.30
自引率
2.80%
发文量
36
审稿时长
3.8 months
期刊介绍: The journal aims to provide an international platform for scientists, researchers and academicians to promote, share and discuss new findings, current issues, and developments in the different areas of food and drug analysis. The scope of the Journal includes analytical methodologies and biological activities in relation to food, drugs, cosmetics and traditional Chinese medicine, as well as related disciplines of topical interest to public health professionals.
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