Research progress on pretreatment and analysis methods of aquatic products samples

  • DENG Jianchao ,
  • ZHAO Yang ,
  • JIA Bofan ,
  • HUANG Long ,
  • QI Bo ,
  • HU Xiao ,
  • LI Chunsheng ,
  • ZHAO Yongqiang ,
  • CHEN Shengjun
Expand
  • 1(South China Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Key Laboratory of Aquatic Product Processing, Ministry of Agriculture and Rural Affairs, Guangzhou 510300, China)
    2(College of Food Science, Shanghai Ocean University, Shanghai 201306, China)
    3(Sanya Tropical Fisheries Research Institute, Key Laboratory of Efficient Utilization and Processing of Marine Fishery Resources of Hainan Province, Sanya 572018, China)
    4(Foshan Institute of Agricultural Sciences, Foshan 528000, China)

Received date: 2024-01-24

  Revised date: 2024-03-18

  Online published: 2024-12-30

Abstract

Aquatic products are favored by many consumers because of their rich nutrition and convenient acquisition.In recent years, quality and safety problems of aquatic products have been frequent in the process of breeding, transportation, and preservation, among which the use of illegal drugs (chloramphenicol, malachite green, nitrofurans, etc.) and excessive use of conventional drugs (enrofloxacin, etc.) are an important reason that affects the quality and safety of aquatic products.There are low drug residues, complex matrices, and many interfering substances in aquatic product samples, so it is necessary to develop sample pretreatment methods and detection technologies with strong selectivity, good separation, and high sensitivity.This paper mainly expounded on the pretreatment technology, detection methods, and advantages and disadvantages of drug residues in aquatic products at home and abroad in recent years and looked forward to the development prospect of drug residue detection technology, providing a technical basis and methodological basis for drug residues detection in aquatic products.

Cite this article

DENG Jianchao , ZHAO Yang , JIA Bofan , HUANG Long , QI Bo , HU Xiao , LI Chunsheng , ZHAO Yongqiang , CHEN Shengjun . Research progress on pretreatment and analysis methods of aquatic products samples[J]. Food and Fermentation Industries, 2024 , 50(24) : 373 -380 . DOI: 10.13995/j.cnki.11-1802/ts.038696

References

[1] MENG C Y, WANG K W, XU G Q. Metals in ten commercial demersal fish from the East China Sea: Contribution to aquatic products nutrition and toxic risk assessment[J]. Biological Trace Element Research, 2022, 200(12):5242-5250.
[2] LYU Z M, DU W W, ZHANG J G, et al. Level of body fat percentage among adults aged 18-65 years old in 15 provinces (autonomous regions and municipalities) of China in 2015 and its relationship with body mass index[J]. Wei Sheng Yan Jiu = Journal of Hygiene Research, 2020, 49(2):195-200.
[3] 本刊讯. 农业农村部公布2022年第一次国家农产品质量安全抽检水产品合格率97.4%[J]. 中国水产, 2022(6):33.
This newspaper news. Ministry of Agriculture and Rural Affairs announced in 2022 the first national agricultural product quality and safety sampling inspection of aquatic products qualified rate of 97.4%[J]. China Fisheries, 2022(6):33.
[4] 谢飞鸿, 阚欢, 刘云. 2018—2020年福建地区水产品抽检结果分析[J]. 食品安全导刊, 2023(33):104-110.
XIE F H, KAN H, LIU Y. Analysis of sampling results of aquatic products in Fujian province from 2018 to 2020[J]. China Food Safety Magazine, 2023(33):104-110.
[5] 蓝小飞, 谢琳, 张丽娟, 等. 食品安全指数法评价嘉兴市售水产品污染物残留风险[J]. 湖北农业科学, 2023, 62(S1):200-204.
LAN X F, XIE L, ZHANG L J, et al. Risk evaluation of contaminant residues in aquatic products sold of Jiaxing City by food safety index method[J]. Hubei Agricultural Sciences, 2023, 62(S1):200-204.
[6] 王立娜, 卢玉琦. 大连市水产品质量状况分析[J]. 食品安全导刊, 2021(6):36; 39.
WANG L N, LU Y Q. Analysis on the quality of aquatic products in Dalian[J]. China Food Safety Magazine, 2021(6):36, 39.
[7] 庞雨樵, 赵雅霞, 安彦青. 新疆地区2019年度食品安全抽检动物性水产品现状调查分析[J]. 食品安全质量检测学报, 2020, 11(15):5094-5098.
PANG Y Q, ZHAO Y X, AN Y Q. Investigation and analysis on food safety sampling inspection of animal derived aquatic products in Xinjiang in 2019[J]. Journal of Food Safety & Quality, 2020, 11(15):5094-5098.
[8] XIA S J, NIU B, CHEN J H, et al. Risk analysis of veterinary drug residues in aquatic products in the Yangtze River Delta of China[J]. Journal of Food Protection, 2021, 84(7):1228-1238.
[9] 许磊. 简述动物源食品中氟喹诺酮类药物残留的危害及检测方法[J]. 四川农业科技, 2022(9):92-94.
XU L. Harm and detection methods of fluoroquinolones residues in animal-derived foods[J]. Sichuan Agricultural Science and Technology, 2022(9):92-94.
[10] FARHADIAN S, HASHEMI-SHAHRAKI F, AMIRIFAR S, et al. Malachite Green, the hazardous materials that can bind to Apo-transferrin and change the iron transfer[J]. International Journal of Biological Macromolecules, 2022, 194:790-799.
[11] GHARAVI-NAKHJAVANI M S, NIAZI A, HOSSEINI H, et al. Malachite green and leucomalachite green in fish: A global systematic review and meta-analysis[J]. Environmental Science and Pollution Research International, 2023, 30(17):48911-48927.
[12] KHATIBI S A, HAMIDI S, SIAHI-SHADBAD M R. Application of liquid-liquid extraction for the determination of antibiotics in the foodstuff: Recent trends and developments[J]. Critical Reviews in Analytical Chemistry, 2022, 52(2):327-342.
[13] 王昌泽, 朱炜锦, 陈瑞, 等. 液液萃取-液相色谱法监测工业废水中单质硫含量[J]. 广东化工, 2023, 50(2):176-178; 154.
WANG C Z, ZHU W J, CHEN R, et al. Monitoring sulfur content in industrial wastewater by liquid-liquid extraction-liquid chromatography[J]. Guangdong Chemical Industry, 2023, 50(2):176-178; 154.
[14] 周艳华, 李涛, 潘小红, 等. 液液萃取—超高效液相色谱—串联质谱法快速检测原料乳中18种喹诺酮药物残留[J]. 食品与机械, 2021, 37(8):63-69; 76.
ZHOU Y H, LI T, PAN X H, et al. Simultaneous rapid determination of 18 quinolones residues in raw milk by liquid-liquid extraction and ultra performance liquid chromatography tandem mass spectrometry[J]. Food & Machinery, 2021, 37(8):63-69; 76.
[15] 杨霄, 刘伶俐, 李小玲, 等. 盐析辅助液液萃取/高效液相色谱-串联质谱法测定渔业水体中的7种喹诺酮类抗生素[J]. 分析测试学报, 2021, 40(10):1509-1514.
YANG X, LIU L L, LI X L, et al. Determination of seven quinolones antibiotics in fishery water using salting-out assisted liquid-liquid extraction and high performance liquid chromatography-tandem mass spectrometry[J]. Journal of Instrumental Analysis, 2021, 40(10):1509-1514.
[16] DA SILVA SOUSA J, DO NASCIMENTO H O, DE OLIVEIRA GOMES H, et al. Pesticide residues in groundwater and surface water: Recent advances in solid-phase extraction and solid-phase microextraction sample preparation methods for multiclass analysis by gas chromatography-mass spectrometry[J]. Microchemical Journal, 2021, 168:106359.
[17] JALILI V, BARKHORDARI A, GHIASVAND A. A comprehensive look at solid-phase microextraction technique: A review of reviews[J]. Microchemical Journal, 2020, 152:104319.
[18] 马凯, 杨昌彪, 崔姗姗, 等. 增强型脂质去除固相萃取结合柱切换色谱技术测定水产品中硝基呋喃代谢物残留量[J]. 食品科技, 2023, 48(2):317-324.
MA K, YANG C B, CUI S S, et al. Rapid determination of nitrofuran metabolites residues in aquatic products by enhanced matrix removal-lipid solid phase extraction and column-switching chromatography[J]. Food Science and Technology, 2023, 48(2):317-324.
[19] 邱巧丽, 陈晓红, 潘胜东, 等. 固相萃取-超高效液相色谱-串联质谱法同时测定牛蛙中喹诺酮类和磺胺类抗生素[J]. 中国卫生检验杂志, 2022, 32(12):1439-1443.
QIU Q L, CHEN X H, PAN S D, et al. Simultaneous determination of quinolones and sulfonamides antibiotics in bullfrogs by solid-phase extraction and ultra performance liquid chromatography-tandem mass spectrometry[J]. Chinese Journal of Health Laboratory Technology, 2022, 32(12):1439-1443.
[20] FENG G, PING W H, ZHU X S. Fe3O4-β-cyclodextrin polymer nano composites solid-phase extraction-UV-vis spectrophotometry for separation analysis malachite green[J]. Guang Pu Xue Yu Guang Pu Fen Xi = Guang Pu, 2016, 36(2):436-441.
[21] ZAMBONIN C, ARESTA A. Recent applications of solid phase microextraction coupled to liquid chromatography[J]. Separations, 2021, 8(3):34.
[22] 孟恒立, 汤毅佳, 姜水, 等. 基于固相微萃取技术的河鲀体内喹诺酮类与磺胺类药物活体追踪及其代谢过程研究[J]. 食品安全质量检测学报, 2023, 14(3):177-183.
MENG H L, TANG Y J, JIANG S, et al. In vivo tracing and metabolism study of fluoroquinolones and sulfonamides in Takifugu obscurus based on solid-phase microextraction[J]. Journal of Food Safety & Quality, 2023, 14(3):177-183.
[23] 马丽莎, 尹怡, 田斐, 等. QuEChERS-气相色谱质谱法快速测定水产品中扑草净残留[J]. 南方水产科学, 2022, 18(4):170-176.
MA L S, YIN Y, TIAN F, et al. Rapid determination of prometryn in aquatic products by QuEChERS combined with gas chromatography mass spectrometry[J]. South China Fisheries Science, 2022, 18(4):170-176.
[24] CHEN J, WEI Z, CAO X Y. QuEChERS pretreatment combined with ultra-performance liquid chromatography–tandem mass spectrometry for the determination of four veterinary drug residues in marine products[J]. Food Analytical Methods, 2019, 12(5):1055-1066.
[25] 常波. QuEChERS-UPLC-MS/MS法快速测定水产品中氯霉素[J]. 食品安全导刊, 2023(3):92-94.
CHANG B. Using QuEChERS-UPLC-MS/MS for rapid determination of chloramphenicol in aquatic products[J]. China Food Safety Magazine, 2023(3):92-94.
[26] 许晓辉, 吴兴强, 张虹艳, 等. QuEChERS-SPE-UPLC-MS/MS法快速测定水产品中氯霉素[J]. 中国食品药品监管, 2022(2):69-73.
XU X H, WU X Q, ZHANG H Y, et al. Using QuEChERS-SPE-UPLC-MS/MS for rapid determination of chloramphenicol in aquatic products[J]. China Food & Drug Administration Magazine, 2022(2):69-73.
[27] AHANGARI H, KING J W, EHSANI A, et al. Supercritical fluid extraction of seed oils-A short review of current trends[J]. Trends in Food Science & Technology, 2021, 111:249-260.
[28] 安军红. 超临界二氧化碳萃取天然产物的应用现状[J]. 广州化工, 2022, 50(15):25-28.
AN J H. Application status of supercritical carbon dioxide extraction of natural products[J]. Guangzhou Chemical Industry, 2022, 50(15):25-28.
[29] 董琨, 宫晓平, 李晓东, 等. 在线超临界流体萃取-超临界流体色谱-串联质谱法快速测定水产品中孔雀石绿、结晶紫及其代谢物[J]. 农产品质量与安全, 2022(4):33-37.
DONG K, GONG X P, LI X D, et al. Rapid determination of malachite green, gentian violet and their metabolites in aquatic products by online SFE-SFC-MS/MS[J]. Quality and Safety of Agro-Products, 2022(4):33-37.
[30] BACHTLER S, BART H J. Increase the yield of bioactive compounds from elder bark and annatto seeds using ultrasound and microwave assisted extraction technologies[J]. Food and Bioproducts Processing, 2021, 125:1-13.
[31] 陈涛, 陈安珍, 杨钊. 超高效液相色谱-串联质谱法测定动物源产品中11种喹诺酮类药物残留[J]. 药物分析杂志, 2010, 30(6):1087-1089.
CHEN T, CHEN A Z, YANG Z. UPLC-MS/MS determination of 11 quinolone residuces in animal products[J]. Chinese Journal of Pharmaceutical Analysis, 2010, 30(6):1087-1089.
[32] 蒋翠红, 杨翼羽, 于林海, 等. 水产品中孔雀石绿残留量测定前处理方法研究与优化[J]. 渔业致富指南, 2022(10):69-72.
JIANG C H, YANG Y Y, YU L H, et al. Study and optimization of pretreatment methods for malachite green residues in aquatic products[J]. Fishery Guide to Be Rich, 2022(10):69-72.
[33] COTUGNO P, MASSARI F, ARESTA A, et al. Advanced gel permeation chromatography system with increased loading capacity: Polycyclic aromatic hydrocarbons detection in olive oil as a case of study[J]. Journal of Chromatography A, 2021, 1639:461920.
[34] KAUR R, HEENA, KAUR R, et al. Trace determination of parabens in cosmetics and personal care products using fabric-phase sorptive extraction and high-performance liquid chromatography with UV detection[J]. Journal of Separation Science, 2020, 43(13):2626-2635.
[35] BERGWERFF A A, SCHERPENISSE P. Determination of residues of malachite green in aquatic animals[J]. Journal of Chromatography B, 2003, 788(2):351-359.
[36] 王丽娟, 张骊, 钱卓真, 等. 液相色谱检测水产品中喹诺酮类药物的方法改进研究[J]. 中国兽药杂志, 2015, 49(5):37-42.
WANG L J, ZHANG L, QIAN Z Z, et al. Improvements of retention time of quinolones in liquid chromatography[J]. Chinese Journal of Veterinary Drug, 2015, 49(5):37-42.
[37] ZHU S Y, ZHENG Z J, PENG H W, et al. Quadruplex stable isotope derivatization strategy for the determination of panaxadiol and panaxatriol in foodstuffs and medicinal materials using ultra high performance liquid chromatography tandem mass spectrometry[J]. Journal of Chromatography A, 2020, 1616:460794.
[38] 梁晶晶, 徐潇颖, 丁宇琦, 等. 高效液相色谱-串联质谱法快速测定水产品中19种喹诺酮类药物残留[J]. 分析测试学报, 2018, 37(2):224-230.
LIANG J J, XU X Y, DING Y Q, et al. Determination of 19 quinolone antibacterials residues in aquatic products by high performance liquid chromatography-tandem mass spectrometry[J]. Journal of Instrumental Analysis, 2018, 37(2):224-230.
[39] 徐媛原, 林敏霞, 李凯华, 等. 超高效液相色谱-串联质谱法测定水产品中50种兽药残留[J]. 食品安全质量检测学报, 2021, 12(16):6384-6392.
XU Y Y, LIN M X, LI K H, et al. Determination of 50 kinds of veterinary drug residues in aquatic products by ultra performance liquid chromatography-tandem mass spectrometry[J]. Journal of Food Safety & Quality, 2021, 12(16):6384-6392.
[40] ZHANG H X, LI B Y, LIU Y P, et al. Immunoassay technology: Research progress in microcystin-LR detection in water samples[J]. Journal of Hazardous Materials, 2022, 424(Pt B):127406.
[41] 王强, 王旭峰, 杨金兰, 等. 直接竞争ELISA法快速测定水产品中6种氟喹诺酮类药物[J]. 食品工业科技, 2014, 35(8):61-65.
WANG Q, WANG X F, YANG J L, et al. Rapid determination of six fluoroquinolones in aquatic product by direct competitive enzyme-linked immunosorbent assay[J]. Science and Technology of Food Industry, 2014, 35(8):61-65.
[42] 谢焕龙, 王宇, 徐振林, 等. 基于混合抗体的酶联免疫分析方法同时检测孔雀石绿和隐孔雀石绿[J]. 现代食品科技, 2015, 31(12):325-330.
XIE H L, WANG Y, XU Z L, et al. Simultaneous detection of malachite green and leucomalachite green based on hybrid antibody ELISA analysis method[J]. Modern Food Science and Technology, 2015, 31(12):325-330.
[43] 杨金易, 张燕, 曾道平, 等. 基于QuEChERS前处理技术的水产品中喹诺酮类药物多残留ELISA检测方法的建立[J]. 食品工业科技, 2015, 36(1):292-298.
YANG J Y, ZHANG Y, ZENG D P, et al. Simultaneous determination of fluoroquinolones in seafood by modified Qu ECh ERS and enzyme- linked immunosorbent assay[J]. Science and Technology of Food Industry, 2015, 36(1):292-298.
[44] XIANG J, YAN M Z, LI H Z, et al. Evaluation of enzyme-linked immunoassay and colloidal gold- immunochromatographic assay kit for detection of novel coronavirus (SARS-cov-2) causing an outbreak of pneumonia (COVID-19)[J]. MedRxiv, 2020.
[45] 李倩, 陈煜, 阎安婷. 胶体金免疫层析法检测带鱼中氯霉素残留的前处理方法研究[J]. 现代食品, 2022, 28(20):182-184.
LI Q, CHEN Y, YAN A T. Study on the pretreatment method for the detection of chloramphenicol residues in hairtail by colloidal gold immunochromatography[J]. Modern Food, 2022, 28(20):182-184.
[46] 宗婧婧, 张小军, 严忠雍, 等. 胶体金免疫层析法检测水产品中15种喹诺酮类药物[J]. 理化检验-化学分册, 2018, 54(5):591-595.
ZONG J J, ZHANG X J, YAN Z Y, et al. Detection of 15 quinolones in aquatic products by colloidal gold immunochromatography assay[J]. Physical Testing and Chemical Analysis (Part B (Chemical Analysis)), 2018, 54(5):591-595.
[47] TA H Y, COLLIN F, PERQUIS L, et al. Twenty years of amino acid determination using capillary electrophoresis: A review[J]. Analytica Chimica Acta, 2021, 1174:338233.
[48] 陈宗保, 刘林海, 尹月春, 等. 改性纳米金富集-毛细管电泳法测定水产品中硝基呋喃类药物残留[J]. 分析试验室, 2018, 37(7):760-764.
CHEN Z B, LIU L H, YIN Y C, et al. The determination of nitrofuran drug residue in aquatic products with the modified nanoparticles enrichment-capillary electrophoresis method[J]. Chinese Journal of Analysis Laboratory, 2018, 37(7):760-764.
[49] CONG Z Z, SONG Z F, MA Y X, et al. Highly emissive metal-organic frameworks for sensitive and selective detection of nitrofuran and quinolone antibiotics[J]. Chemistry, an Asian Journal, 2021, 16(13):1773-1779.
[50] WANG Q, XUE Q, CHEN T, et al. Recent advances in electrochemical sensors for antibiotics and their applications[J]. Chinese Chemical Letters, 2021, 32(2):609-619.
[51] 尚晶晶. 纳米电化学传感器法快速测定水产品中孔雀石绿的研究[D]. 石家庄: 河北科技大学, 2020.
SHANG J J. Study on rapid determination of malachite green in aquatic products by nano-electrochemical sensor[D]. Shijiazhuang: Hebei University of Science and Technology, 2020.
[52] YI X, YUAN Z S, YU X, et al. Novel microneedle patch-based surface-enhanced Raman spectroscopy sensor for the detection of pesticide residues[J]. ACS Applied Materials & Interfaces, 2023, 15(4):4873-4882.
[53] 李晨, 赵超敏, 古淑青, 等. 水产品中孔雀石绿和结晶紫残留的拉曼光谱法快速检测[J]. 现代食品科技, 2022, 38(3):286-292; 298.
LI C, ZHAO C M, GU S Q, et al. Rapid determination of malachite green and crystal violet residues in aquatic products by Raman spectroscopy[J]. Modern Food Science and Technology, 2022, 38(3):286-292; 298.
[54] 张苑怡. 基于表面增强拉曼光谱技术快速检测水产品中组胺和孔雀石绿的研究[D]. 上海: 上海海洋大学, 2021.
ZHANG Y Y. Rapid detection of histamine and malachite green in aquatic products based on surface-enhanced Raman spectroscopy [D]. Shanghai: Shanghai Ocean University, 2021.
Outlines

/