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用于石榴皮渣中杨梅素高效固相萃取和高效液相色谱分析的磁性分子印迹聚合物

Magnetic molecularly imprinted polymers for efficient solid-phase extraction and HPLC analysis of myricetin in pomegranate pomace.

作者信息

Yimin Resalat, Aimaiti Zulihumaer, Tursun Erkin, Tuerxun Maimaiti

机构信息

Xinjiang Key Laboratory of Novel Functional Materials Chemistry, College of Chemistry and Environmental Sciences, Kashi University Kashi 844000 PR China

Laboratory of Xinjiang Native Medicinal and Edible Plant Resources Chemistry, College of Chemistry and Environmental Sciences, Kashi University Kashi 844000 PR China

出版信息

RSC Adv. 2025 Jul 17;15(31):25425-25435. doi: 10.1039/d5ra03380b. eCollection 2025 Jul 15.

Abstract

Molecularly imprinted polymers (MIPs) show great promise for the targeted identification of active components in complex mixtures. Nevertheless, the intentional use of MIPs for the accurate extraction of bioactive phytochemicals from neglected fruit processing byproducts is a new area of exploration in sustainable biorefinery practices. In this study, a magnetic molecularly imprinted polymer (FeO-NH@MIP) was synthesized utilizing a surface imprinting technique on the amino-functionalized magnetic iron trioxide (FeO-NH) to improve selectivity and separation efficiency for the extraction of myricetin in pomegranate pomace. The polymerization process was successful when the ratio of myricetin, acrylamide (AM), and ethylene glycol dimethacrylate (EGDMA) was established at 1 : 4 : 20. A series of characterizations were performed to validate the successful synthesis, morphology, structural properties, and magnetic strength of the materials. The super-magnetic FeO-NH@MIP demonstrated significant adsorption capacity and stability. The adsorption behavior of FeO-NH@MIP for myricetin was effectively characterized by the Langmuir isotherm model and the Pseudo-second order kinetic model. Additionally, these materials were employed for the extraction and quantification of myricetin in pomegranate pomace under optimal conditions. The experimental results indicate that the adsorption capacity of FeO-NH@MIP was up to 19.10 μg mg under the best conditions, with an adsorption time of 60 minutes and a myricetin concentration of 100 μg mL. FeO-NH@MIP posses high selectivity for myricetin compared to rutin and resveratrol, the adsorption capacity was up to 18.8 μg mg, 4.1 μg mg and 3.7 μg mg, respectively. And the content of myricetin in the pomegranate pomace was calculated to be 5.01 μg g. The findings indicate that the proposed methodology serves as a viable alternative for the selective quantification of myricetin in samples characterized by complex matrices.

摘要

分子印迹聚合物(MIPs)在复杂混合物中活性成分的靶向识别方面显示出巨大潜力。然而,有意使用MIPs从被忽视的水果加工副产品中准确提取生物活性植物化学物质是可持续生物炼制实践中的一个新探索领域。在本研究中,利用表面印迹技术在氨基功能化磁性三氧化二铁(FeO-NH)上合成了磁性分子印迹聚合物(FeO-NH@MIP),以提高石榴皮渣中杨梅素提取的选择性和分离效率。当杨梅素、丙烯酰胺(AM)和乙二醇二甲基丙烯酸酯(EGDMA)的比例设定为1∶4∶20时,聚合过程成功。进行了一系列表征以验证材料的成功合成、形态、结构性质和磁强度。超磁性FeO-NH@MIP表现出显著的吸附容量和稳定性。FeO-NH@MIP对杨梅素的吸附行为通过Langmuir等温线模型和伪二级动力学模型进行了有效表征。此外,在最佳条件下,这些材料被用于石榴皮渣中杨梅素的提取和定量。实验结果表明,在最佳条件下,FeO-NH@MIP的吸附容量高达19.10μg/mg,吸附时间为60分钟,杨梅素浓度为100μg/mL。与芦丁和白藜芦醇相比,FeO-NH@MIP对杨梅素具有高选择性,吸附容量分别高达18.8μg/mg、4.1μg/mg和3.7μg/mg。计算得出石榴皮渣中杨梅素的含量为5.01μg/g。研究结果表明,所提出的方法是对复杂基质样品中杨梅素进行选择性定量的可行替代方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e5b/12269750/c23a99384723/d5ra03380b-f1.jpg

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