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超高效液相色谱-高分辨率质谱联用超声辅助萃取和凝胶渗透色谱净化法测定食用鱼中12种卤代有机污染物

[Determination of 12 halogenated organic pollutants in edible fish by ultra performance liquid chromatography-high resolution mass spectrometry combined with ultrasound-assisted extraction and gel permeation chromatography purification].

作者信息

Zhu Yi-Zhe, Zheng Rui-Fen, Fan Zi-Hao, Liu Ling, Ye Jing-Yao, Wang Kai, Tang Cai-Ming

机构信息

Research Center for Eco-Environmental Engineering, Dongguan University of Technology, Dongguan 523808, China.

Guangdong Key Laboratory of Environmental Resources Utilization and Protection, Guangzhou Institute of Geochemistry, Chinese Academy of Sciences, Guangzhou 510640, China.

出版信息

Se Pu. 2025 Jan;43(1):68-77. doi: 10.3724/SP.J.1123.2023.12028.

Abstract

Halogenated organic pollutants (HOPs) have attracted considerable attention owing to their persistence, bioaccumulation, and toxicity. The development of methods to detect HOPs in fish is challenging owing to the compositional complexity of fish matrices, which contain high levels of lipids and relatively low concentrations of HOPs. In addition, the lipophilicity of most HOPs renders their extraction difficult. Moreover, the simultaneous determination of multiple HOPs to achieve the high-throughput screening of these analytes is complex. In this study, a reliable and efficient pretreatment method based on ultrasound-assisted extraction, gel permeation chromatography purification, and ultra performance liquid chromatography-high resolution mass spectrometry (UPLC-HRMS) was developed for the determination of 12 HOPs in edible fish. The procedures of sample extraction and purification and LC-HRMS detection parameters were optimized to improve the performance of the method. Fresh fish samples were thoroughly rinsed with water, and non-edible parts, including the skin, bones, and phosphorus, were removed. The fish were weighed, cut into small pieces, and vacuum freeze-dried for 48 h. Subsequently, a freeze grinder was used to grind the dried fish into a fine powder. Exactly 2 g of the fish powder was weighed, fortified with isotope-labeled internal standards of the HOPs, and allowed to stand for 5 min. Methanol-acetonitrile (1∶1, v/v) was then added, followed by vortex mixing and ultrasonication. After centrifugation, the supernatant was transferred to a fresh tube. The extraction process was repeated twice and all extracts were combined. The extract was evaporated under a gentle nitrogen flow and redissolved in a mixture of ethyl acetate-cyclohexane (1∶1, v/v). The sample mixture was cleaned using gel permeation chromatography, and the eluate was collected and concentrated under a nitrogen flow. Sample residuals were reconstituted with water-methanol (1∶1, v/v) prior to instrumental analysis. Chromatographic separation was performed using an ACQUITY UPLC BEH C18 column (100 mm×2.1 mm, 1.7 μm). Water containing 2 mmol/L NHAc and acetonitrile were used as the mobile phases, and an optimized gradient elution program was applied. Isotope dilution and an internal standard method were used to quantify the HOPs. An electrospray ionization source operated in negative mode was applied to ionize the HOPs, and a full scan together with data-dependent acquisition (DDA) was applied for HRMS. Excellent linearities (>0.99) were obtained for all HOPs in the quantification range of 1.0-1000.0 ng/mL. The limits of quantification were 0.5 ng/g. The analytical method was validated using pooled fish samples fortified with HOP standards (4, 40, and 400 ng/g). The recoveries of the HOPs were in the range of 67.6%-133.8%, and the corresponding RSDs were 0.5%-15.6%. A total of 27 commercially available fish samples were analyzed using the developed method, and the results revealed the presence of HOPs in the fish, indicating the practicability of the method for real-world samples. The developed method is rapid, accurate, precise, and suitable for detecting HOPs in fish. This study provides a useful approach for environmental monitoring and food safety assurance by enabling the accurate and efficient analysis of HOPs in commonly consumed fish. Given increasing global concerns over HOPs, the method developed in this study will provide practical technical support for consumers aiming to reduce their exposure to and the adverse impacts of HOPs via fish.

摘要

卤代有机污染物(HOPs)因其持久性、生物累积性和毒性而备受关注。由于鱼类基质成分复杂,含有大量脂质且HOPs浓度相对较低,因此开发检测鱼类中HOPs的方法具有挑战性。此外,大多数HOPs的亲脂性使其提取困难。而且,同时测定多种HOPs以实现这些分析物的高通量筛选很复杂。在本研究中,开发了一种基于超声辅助萃取、凝胶渗透色谱净化和超高效液相色谱 - 高分辨率质谱(UPLC - HRMS)的可靠且高效的预处理方法,用于测定食用鱼中的12种HOPs。对样品提取和净化程序以及LC - HRMS检测参数进行了优化,以提高该方法的性能。将新鲜鱼样品用水彻底冲洗,去除包括皮肤、骨头和磷在内的不可食用部分。称取鱼的重量,切成小块,真空冷冻干燥48小时。随后,使用冷冻研磨机将干燥的鱼研磨成细粉。准确称取2克鱼粉,加入HOPs的同位素标记内标,静置5分钟。然后加入甲醇 - 乙腈(1∶1,v/v),接着涡旋混合并超声处理。离心后,将上清液转移至新管中。提取过程重复两次,合并所有提取物。提取物在温和的氮气流下蒸发,再溶解于乙酸乙酯 - 环己烷(1∶1,v/v)的混合物中。使用凝胶渗透色谱法净化样品混合物,收集洗脱液并在氮气流下浓缩。在仪器分析之前,用甲醇 - 水(1∶1,v/v)复溶样品残渣。使用ACQUITY UPLC BEH C18柱(100 mm×2.1 mm,1.7μm)进行色谱分离。含有2 mmol/L NHAc的水和乙腈用作流动相,并应用优化的梯度洗脱程序。采用同位素稀释和内标法对HOPs进行定量。采用在负模式下运行的电喷雾电离源对HOPs进行电离,并对HRMS应用全扫描和数据依赖采集(DDA)。在1.0 - 1000.0 ng/mL的定量范围内,所有HOPs均获得了出色的线性(>0.99)。定量限为0.5 ng/g。使用添加了HOP标准品(4、40和400 ng/g)的混合鱼样品对分析方法进行了验证。HOPs的回收率在67.6% - 133.8%范围内,相应的相对标准偏差为0.5% - 15.6%。使用所开发的方法对总共27种市售鱼样品进行了分析,结果表明鱼中存在HOPs,表明该方法对实际样品具有实用性。所开发的方法快速、准确、精密,适用于检测鱼类中的HOPs。本研究通过能够准确高效地分析常见食用鱼中的HOPs,为环境监测和食品安全保障提供了一种有用的方法。鉴于全球对HOPs的关注度不断提高,本研究中开发的方法将为旨在减少通过鱼类接触HOPs及其不利影响的消费者提供实际技术支持。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a8db/11686473/4891989f868c/img_1.jpg

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