Acta Agriculturae Zhejiangensis ›› 2026, Vol. 38 ›› Issue (1): 148-159.DOI: 10.3969/j.issn.1004-1524.20250048
• Quality and Safety of Agricultural Products • Previous Articles Next Articles
WANG Meiyu1,2(
), LIU Zhenzhen2, WANG Xinquan2, WANG Jiao2, LIU Xiaoqi1,2, GU Chenshu1,2, DU Lihui1,*(
), QI Peipei1,2,*(
)
Received:2025-01-20
Online:2026-01-25
Published:2026-02-11
CLC Number:
WANG Meiyu, LIU Zhenzhen, WANG Xinquan, WANG Jiao, LIU Xiaoqi, GU Chenshu, DU Lihui, QI Peipei. Determination of 16 anesthetic residues in fish muscle by magnetic dispersive solid-phase extraction combined with LC-MS/MS[J]. Acta Agriculturae Zhejiangensis, 2026, 38(1): 148-159.
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URL: http://www.zjnyxb.cn/EN/10.3969/j.issn.1004-1524.20250048
| 化合物 Compound | CAS号 CAS number | 化学式 Chemical formula | 保留时间/min Retention time/min | 母离子(m/z) Parent ions(m/z) | 子离子(m/z) Product ions(m/z) | 碰撞能量/eV Collision energy/eV |
|---|---|---|---|---|---|---|
| 三卡因MS-222 | 886-86-2 | C10H15NO5S | 3.73 | 166.2 | 138.3*, 120.0 | -22,-24 |
| 丁卡因Tetracaine | 94-24-6 | C15H24N2O2 | 3.67 | 265.2 | 176.2*, 72.1 | -21,-40 |
| 普鲁卡因Procaine | 59-46-1 | C13H20N2O2 | 2.42 | 237.2 | 100.2*, 164.4 | -22,-23 |
| 利多卡因Lidocaine | 137-58-6 | C14H22N2O | 3.06 | 235.1 | 85.9*, 99.0 | -27,-31 |
| 苯佐卡因Benzocaine | 94-09-7 | C9H11NO2 | 3.75 | 166.1 | 138.1*, 94.0 | -18,-24 |
| 布比卡因Bupivacaine | 2180-92-9 | C18H28N2O | 3.63 | 289.2 | 140.2*,98.0 | -24,-54 |
| 奥沙西泮Oxazepam | 604-75-1 | C15H11ClN2O2 | 4.12 | 287.2 | 241.1*,193.1 | -30,-21 |
| 地西泮Diazepam | 439-14-5 | C16H13ClN2O | 4.33 | 285.1 | 193.1*,154.1 | -32,-28 |
| 去甲地西泮Nordiazepam | 1088-11-5 | C15H11ClN2O | 4.26 | 271.0 | 140.0*,165.0 | -20,-20 |
| 替马西泮Temazepam | 846-50-4 | C16H13ClN2O2 | 4.18 | 301.0 | 254.9*,177.0 | -13,-34 |
| 硝西泮Nitrazepam | 146-22-5 | C15H11N3O3 | 4.02 | 282.1 | 236.0*,180.0 | -34,-52 |
| 阿普唑仑Alprazolam | 28981-97-7 | C17H13ClN4 | 4.13 | 309.1 | 281.1*,205.0 | -39,-55 |
| 三唑仑Triazolam | 28911-01-5 | C17H12Cl2N4 | 4.08 | 343.1 | 308.1*,239.0 | -36,-55 |
| 异丙嗪Promethazine | 60-87-7 | C17H20N2S | 3.86 | 285.2 | 86.1*,198.1 | -25,-31 |
| 丙酰丙嗪Propionylpromazine | 7681-67-6 | C20H25ClN2OS | 3.99 | 341.2 | 100.2*,164.4 | -22,-23 |
| 异丙嗪亚砜Promethazine sulfoxide | 7640-51-9 | C17H20N2OS | 3.21 | 301.2 | 86.1*,198.1 | -32,-34 |
Table 1 Mass spectrum parameters of 16 anesthetics
| 化合物 Compound | CAS号 CAS number | 化学式 Chemical formula | 保留时间/min Retention time/min | 母离子(m/z) Parent ions(m/z) | 子离子(m/z) Product ions(m/z) | 碰撞能量/eV Collision energy/eV |
|---|---|---|---|---|---|---|
| 三卡因MS-222 | 886-86-2 | C10H15NO5S | 3.73 | 166.2 | 138.3*, 120.0 | -22,-24 |
| 丁卡因Tetracaine | 94-24-6 | C15H24N2O2 | 3.67 | 265.2 | 176.2*, 72.1 | -21,-40 |
| 普鲁卡因Procaine | 59-46-1 | C13H20N2O2 | 2.42 | 237.2 | 100.2*, 164.4 | -22,-23 |
| 利多卡因Lidocaine | 137-58-6 | C14H22N2O | 3.06 | 235.1 | 85.9*, 99.0 | -27,-31 |
| 苯佐卡因Benzocaine | 94-09-7 | C9H11NO2 | 3.75 | 166.1 | 138.1*, 94.0 | -18,-24 |
| 布比卡因Bupivacaine | 2180-92-9 | C18H28N2O | 3.63 | 289.2 | 140.2*,98.0 | -24,-54 |
| 奥沙西泮Oxazepam | 604-75-1 | C15H11ClN2O2 | 4.12 | 287.2 | 241.1*,193.1 | -30,-21 |
| 地西泮Diazepam | 439-14-5 | C16H13ClN2O | 4.33 | 285.1 | 193.1*,154.1 | -32,-28 |
| 去甲地西泮Nordiazepam | 1088-11-5 | C15H11ClN2O | 4.26 | 271.0 | 140.0*,165.0 | -20,-20 |
| 替马西泮Temazepam | 846-50-4 | C16H13ClN2O2 | 4.18 | 301.0 | 254.9*,177.0 | -13,-34 |
| 硝西泮Nitrazepam | 146-22-5 | C15H11N3O3 | 4.02 | 282.1 | 236.0*,180.0 | -34,-52 |
| 阿普唑仑Alprazolam | 28981-97-7 | C17H13ClN4 | 4.13 | 309.1 | 281.1*,205.0 | -39,-55 |
| 三唑仑Triazolam | 28911-01-5 | C17H12Cl2N4 | 4.08 | 343.1 | 308.1*,239.0 | -36,-55 |
| 异丙嗪Promethazine | 60-87-7 | C17H20N2S | 3.86 | 285.2 | 86.1*,198.1 | -25,-31 |
| 丙酰丙嗪Propionylpromazine | 7681-67-6 | C20H25ClN2OS | 3.99 | 341.2 | 100.2*,164.4 | -22,-23 |
| 异丙嗪亚砜Promethazine sulfoxide | 7640-51-9 | C17H20N2OS | 3.21 | 301.2 | 86.1*,198.1 | -32,-34 |
Fig.1 Effects of different extraction solvents on recovery rates of 16 anesthetics (n=3) MS-222, Tricaine; TAC, Tetracaine; PCA, Procaine; LID, Lidocaine; BZK, Benzocaine; BPV, Bupivacaine; OXP, Oxazepam; DZP, Diazepam; NDZ, Nordiazepam; TMP, Temazepam; NTP, Nitrazepam; ALP, Alprazolam; TRI, Triazolam; PMZ, Promethazine; PROP, Propionylpromazine; PSX, Promethazine sulfoxide; ACN, Acetonitrile; ACN+0.5%FA, Acetonitrile with 0.5% formic acid; ACN+1%FA, Acetonitrile with 1% formic acid; ACN+0.5%AA, Acetonitrile with 0.5% acetic acid; ACN+1%AA, Acetonitrile with 1% acetic acid. The same as below.
Fig.2 Effect of different magnetic materials on recovery rate of 16 anesthetics (n=3) Fe3O4-PSA, N-propyl ethylenediamine modified Fe3O4 magnetic beads; Fe3O4-PLS, Magnetic polymer particle Fe3O4@SiO2@DVB-NVP; Fe3O4@SiO2@SALG, Sodium alginate modified Fe3O4 biopolymer.
Fig.4 Effect of purification material type on recovery rate of 16 anesthetics (n=3) C18, Octadecylsilane; PSA, N-propyl ethylenediamine; GCB, Graphitized carbon black.
| 化合物 Compound | 线性方程 Linear regression equation | 线性范围/(μg·kg-1) Linear range/ (μg·kg-1) | 相关系数 Correlation coefficient | 基质效应 Matrix effect | 检出限/(μg·kg-1) Limit of detection/ (μg·kg-1) |
|---|---|---|---|---|---|
| 三卡因MS-222 | Y=19 878X+19 312 | 0.5~200.0 | 0.999 | 0.83 | 0.57 |
| Y=24 069X+50 404 | 0.5~200.0 | 0.999 | 0.54 | ||
| 丁卡因Tetracaine | Y=311 769X+105 029 | 0.5~200.0 | 0.998 | 0.97 | 0.48 |
| Y=322 563X+7 290.8 | 0.5~200.0 | 0.999 | 0.52 | ||
| 普鲁卡因Procaine | Y=45 380X-21 710 | 0.5~200.0 | 0.998 | 1.06 | 0.44 |
| Y=42 921X-10 776 | 0.5~200.0 | 0.996 | 0.40 | ||
| 利多卡因Lidocaine | Y=274 357X-41 908 | 5.0~200.0 | 0.997 | 1.02 | 0.23 |
| Y=267 923X-53 578 | 5.0~200.0 | 0.998 | 0.25 | ||
| 苯佐卡因Benzocaine | Y=8 613.5X+741.44 | 0.5~200.0 | 1.000 | 0.85 | 0.42 |
| Y=10 130X+18 205 | 0.5~200.0 | 0.999 | 0.23 | ||
| 布比卡因Bupivacaine | Y=58 886X+148 900 | 2.0~200.0 | 0.997 | 1.05 | 0.08 |
| Y=56 115X-96 312 | 2.0~200.0 | 0.998 | 0.26 | ||
| 奥沙西泮Oxazepam | Y =1 772.9X-4 791.9 | 5.0~200.0 | 0.996 | 0.87 | 0.48 |
| Y=2 031.8X-5 816.1 | 5.0~200.0 | 0.997 | 0.44 | ||
| 地西泮Diazepam | Y=6 992.7X +2 291.2 | 1.0~200.0 | 0.996 | 0.88 | 0.50 |
| Y=7 948.1X-4 991.2 | 1.0~200.0 | 0.999 | 0.52 | ||
| 去甲地西泮Nordiazepam | Y=696.52X-1 346.3 | 2.0~200.0 | 0.999 | 0.93 | 0.33 |
| Y=752.32X+48.125 | 2.0~200.0 | 0.999 | 0.47 | ||
| 替马西泮Temazepam | Y=1 731.6 X-353.52 | 0.5~200.0 | 0.999 | 0.97 | 0.26 |
| Y=1 793.8X-320.5 | 0.5~200.0 | 0.996 | 0.41 | ||
| 硝西泮Nitrazepam | Y=975.71X+1 105.3 | 2.0~200.0 | 0.997 | 0.95 | 0.52 |
| Y=1 029.8X-2 018.5 | 2.0~200.0 | 0.998 | 0.39 | ||
| 阿普唑仑Alprazolam | Y=3 452X-855.7 | 0.5~200.0 | 0.999 | 0.92 | 0.46 |
| Y=3 745.5X-691.1 | 0.5~200.0 | 0.997 | 0.47 | ||
| 三唑仑Triazolam | Y=3 952.3X-158.53 | 0.5~200.0 | 0.999 | 1.05 | 0.32 |
| Y=3 747.9X+554.04 | 0.5~200.0 | 0.999 | 0.29 | ||
| 异丙嗪Promethazine | Y=23 559X-41 867 | 2.0~200.0 | 0.999 | 1.02 | 0.28 |
| Y=23 207X-21 523 | 2.0~200.0 | 0.999 | 0.23 | ||
| 丙酰丙嗪Propionylpromazine | Y=19 165X-22 787 | 2.0~200.0 | 0.998 | 1.03 | 0.33 |
| Y=18 539X-20 557 | 2.0~200.0 | 0.999 | 0.17 | ||
| 异丙嗪亚砜 | Y=5 951.2X-5 675.2 | 2.0~200.0 | 1.000 | 1.01 | 0.38 |
| Promethazine sulfoxide | Y=5 892.5X-8 374.2 | 2.0~200.0 | 0.999 | 0.29 |
Table 2 Regression equations, correlation coefficient, matrix effect and limit of detection for 16 anesthetics
| 化合物 Compound | 线性方程 Linear regression equation | 线性范围/(μg·kg-1) Linear range/ (μg·kg-1) | 相关系数 Correlation coefficient | 基质效应 Matrix effect | 检出限/(μg·kg-1) Limit of detection/ (μg·kg-1) |
|---|---|---|---|---|---|
| 三卡因MS-222 | Y=19 878X+19 312 | 0.5~200.0 | 0.999 | 0.83 | 0.57 |
| Y=24 069X+50 404 | 0.5~200.0 | 0.999 | 0.54 | ||
| 丁卡因Tetracaine | Y=311 769X+105 029 | 0.5~200.0 | 0.998 | 0.97 | 0.48 |
| Y=322 563X+7 290.8 | 0.5~200.0 | 0.999 | 0.52 | ||
| 普鲁卡因Procaine | Y=45 380X-21 710 | 0.5~200.0 | 0.998 | 1.06 | 0.44 |
| Y=42 921X-10 776 | 0.5~200.0 | 0.996 | 0.40 | ||
| 利多卡因Lidocaine | Y=274 357X-41 908 | 5.0~200.0 | 0.997 | 1.02 | 0.23 |
| Y=267 923X-53 578 | 5.0~200.0 | 0.998 | 0.25 | ||
| 苯佐卡因Benzocaine | Y=8 613.5X+741.44 | 0.5~200.0 | 1.000 | 0.85 | 0.42 |
| Y=10 130X+18 205 | 0.5~200.0 | 0.999 | 0.23 | ||
| 布比卡因Bupivacaine | Y=58 886X+148 900 | 2.0~200.0 | 0.997 | 1.05 | 0.08 |
| Y=56 115X-96 312 | 2.0~200.0 | 0.998 | 0.26 | ||
| 奥沙西泮Oxazepam | Y =1 772.9X-4 791.9 | 5.0~200.0 | 0.996 | 0.87 | 0.48 |
| Y=2 031.8X-5 816.1 | 5.0~200.0 | 0.997 | 0.44 | ||
| 地西泮Diazepam | Y=6 992.7X +2 291.2 | 1.0~200.0 | 0.996 | 0.88 | 0.50 |
| Y=7 948.1X-4 991.2 | 1.0~200.0 | 0.999 | 0.52 | ||
| 去甲地西泮Nordiazepam | Y=696.52X-1 346.3 | 2.0~200.0 | 0.999 | 0.93 | 0.33 |
| Y=752.32X+48.125 | 2.0~200.0 | 0.999 | 0.47 | ||
| 替马西泮Temazepam | Y=1 731.6 X-353.52 | 0.5~200.0 | 0.999 | 0.97 | 0.26 |
| Y=1 793.8X-320.5 | 0.5~200.0 | 0.996 | 0.41 | ||
| 硝西泮Nitrazepam | Y=975.71X+1 105.3 | 2.0~200.0 | 0.997 | 0.95 | 0.52 |
| Y=1 029.8X-2 018.5 | 2.0~200.0 | 0.998 | 0.39 | ||
| 阿普唑仑Alprazolam | Y=3 452X-855.7 | 0.5~200.0 | 0.999 | 0.92 | 0.46 |
| Y=3 745.5X-691.1 | 0.5~200.0 | 0.997 | 0.47 | ||
| 三唑仑Triazolam | Y=3 952.3X-158.53 | 0.5~200.0 | 0.999 | 1.05 | 0.32 |
| Y=3 747.9X+554.04 | 0.5~200.0 | 0.999 | 0.29 | ||
| 异丙嗪Promethazine | Y=23 559X-41 867 | 2.0~200.0 | 0.999 | 1.02 | 0.28 |
| Y=23 207X-21 523 | 2.0~200.0 | 0.999 | 0.23 | ||
| 丙酰丙嗪Propionylpromazine | Y=19 165X-22 787 | 2.0~200.0 | 0.998 | 1.03 | 0.33 |
| Y=18 539X-20 557 | 2.0~200.0 | 0.999 | 0.17 | ||
| 异丙嗪亚砜 | Y=5 951.2X-5 675.2 | 2.0~200.0 | 1.000 | 1.01 | 0.38 |
| Promethazine sulfoxide | Y=5 892.5X-8 374.2 | 2.0~200.0 | 0.999 | 0.29 |
| 化合物 Compound | 日内回收率(相对标准偏差) Intra-day recovery rate (RSD) | 日间回收率(相对标准偏差) Inter-day recovery rate(RSD) | ||||
|---|---|---|---|---|---|---|
| 1 μg·kg-1 | 10 μg·kg-1 | 100 μg·kg-1 | 1 μg·kg-1 | 10 μg·kg-1 | 100 μg·kg-1 | |
| 三卡因Tricaine | 84.4(6.9) | 88.6(2.0) | 99.2(5.6) | 84.7(4.0) | 91.1(3.3) | 83.5(2.3) |
| 丁卡因Tetracaine | 79.3(1.1) | 95.9(4.1) | 98.5(6.4) | 95.9(1.1) | 83.6(4.1) | 91.3(6.2) |
| 普鲁卡因Procaine | 82.1(2.8) | 82.9(0.4) | 81.2(6.7) | 87.7(6.4) | 89.2(2.4) | 81.2(6.7) |
| 利多卡因Lidocaine | 96.4(6.3) | 91.0(3.3) | 99.4(3.6) | 97.2(3.3) | 99.8(1.4) | 100.2(3.5) |
| 苯佐卡因Benzocaine | 81.3(2.0) | 77.4(3.8) | 97.4(3.9) | 103.8(2.0) | 87.8(3.8) | 92.8(1.1) |
| 布比卡因Bupivacaine | 76.9(5.7) | 74.4(6.1) | 76.9(3.9) | 81.4(1.5) | 98.0(1.8) | 110.8(4.7) |
| 奥沙西泮Oxazepam | 82.9(0.8) | 87.6(7.2) | 97.3(3.4) | 78.9(8.1) | 89.3(3.3) | 101.8(6.5) |
| 地西泮Diazepam | 74.9(4.9) | 110.8(2.6) | 108.4(3.8) | 87.3(3.9) | 84.3(8.4) | 77.9(8.1) |
| 去甲地西泮Nordiazepam | 85.6(4.1) | 92.4(0.6) | 99.8(6.7) | 75.4(3.7) | 97.8(7.4) | 89.9(8.3) |
| 替马西泮Temazepam | 79.8(3.7) | 108.3(4.8) | 88.1(6.7) | 85.9(7.6) | 76.9(8.1) | 107.5(4.4) |
| 硝西泮Nitrazepam | 72.4(3.4) | 79.2(7.7) | 89.9(5.1) | 75.1(3.9) | 97.7(5.5) | 110.3(1.4) |
| 阿普唑仑Alprazolam | 79.1(3.6) | 84.1(5.3) | 109.2(4.7) | 87.4(6.3) | 98.0(4.0) | 96.7(2.9) |
| 三唑仑Triazolam | 77.2(7.3) | 85.3(6.8) | 99.9(5.3) | 90.3(6.1) | 81.4(2.4) | 86.4(3.6) |
| 异丙嗪Promethazine | 76.9(4.0) | 101.3(5.9) | 87.3(2.0) | 91.9(6.6) | 92.8(4.6) | 103.3(3.1) |
| 丙酰丙嗪Propionylpromazine | 75.7(3.9) | 90.9(7.5) | 76.4(3.7) | 89.7(5.8) | 92.0(6.0) | 106.4(4.9) |
| 异丙嗪亚砜Promethazine sulfoxide | 85.3(0.8) | 100.2(4.4) | 87.5(3.8) | 74.0(6.9) | 81.3(2.8) | 96.8(5.7) |
Table 3 Recovery rate and intra-day and inter-day relative standard deviation (RSD) of 16 anesthetics at 3 additive levels (n=3) %
| 化合物 Compound | 日内回收率(相对标准偏差) Intra-day recovery rate (RSD) | 日间回收率(相对标准偏差) Inter-day recovery rate(RSD) | ||||
|---|---|---|---|---|---|---|
| 1 μg·kg-1 | 10 μg·kg-1 | 100 μg·kg-1 | 1 μg·kg-1 | 10 μg·kg-1 | 100 μg·kg-1 | |
| 三卡因Tricaine | 84.4(6.9) | 88.6(2.0) | 99.2(5.6) | 84.7(4.0) | 91.1(3.3) | 83.5(2.3) |
| 丁卡因Tetracaine | 79.3(1.1) | 95.9(4.1) | 98.5(6.4) | 95.9(1.1) | 83.6(4.1) | 91.3(6.2) |
| 普鲁卡因Procaine | 82.1(2.8) | 82.9(0.4) | 81.2(6.7) | 87.7(6.4) | 89.2(2.4) | 81.2(6.7) |
| 利多卡因Lidocaine | 96.4(6.3) | 91.0(3.3) | 99.4(3.6) | 97.2(3.3) | 99.8(1.4) | 100.2(3.5) |
| 苯佐卡因Benzocaine | 81.3(2.0) | 77.4(3.8) | 97.4(3.9) | 103.8(2.0) | 87.8(3.8) | 92.8(1.1) |
| 布比卡因Bupivacaine | 76.9(5.7) | 74.4(6.1) | 76.9(3.9) | 81.4(1.5) | 98.0(1.8) | 110.8(4.7) |
| 奥沙西泮Oxazepam | 82.9(0.8) | 87.6(7.2) | 97.3(3.4) | 78.9(8.1) | 89.3(3.3) | 101.8(6.5) |
| 地西泮Diazepam | 74.9(4.9) | 110.8(2.6) | 108.4(3.8) | 87.3(3.9) | 84.3(8.4) | 77.9(8.1) |
| 去甲地西泮Nordiazepam | 85.6(4.1) | 92.4(0.6) | 99.8(6.7) | 75.4(3.7) | 97.8(7.4) | 89.9(8.3) |
| 替马西泮Temazepam | 79.8(3.7) | 108.3(4.8) | 88.1(6.7) | 85.9(7.6) | 76.9(8.1) | 107.5(4.4) |
| 硝西泮Nitrazepam | 72.4(3.4) | 79.2(7.7) | 89.9(5.1) | 75.1(3.9) | 97.7(5.5) | 110.3(1.4) |
| 阿普唑仑Alprazolam | 79.1(3.6) | 84.1(5.3) | 109.2(4.7) | 87.4(6.3) | 98.0(4.0) | 96.7(2.9) |
| 三唑仑Triazolam | 77.2(7.3) | 85.3(6.8) | 99.9(5.3) | 90.3(6.1) | 81.4(2.4) | 86.4(3.6) |
| 异丙嗪Promethazine | 76.9(4.0) | 101.3(5.9) | 87.3(2.0) | 91.9(6.6) | 92.8(4.6) | 103.3(3.1) |
| 丙酰丙嗪Propionylpromazine | 75.7(3.9) | 90.9(7.5) | 76.4(3.7) | 89.7(5.8) | 92.0(6.0) | 106.4(4.9) |
| 异丙嗪亚砜Promethazine sulfoxide | 85.3(0.8) | 100.2(4.4) | 87.5(3.8) | 74.0(6.9) | 81.3(2.8) | 96.8(5.7) |
| 预处理方法 Preparation method | 吸附剂数量 Adsorbent amounts | 单个样品处理时间/min Single pretreatment time/min | 检出限/(μg·kg-1) Limit of detection/ (μg·kg-1) | 基质效应 Matrix effect | 回收率/% Recovery rate/% | 参考文献 Reference |
|---|---|---|---|---|---|---|
| SPE | Oasis PRiME HLB(150 mg/3 mL) | 22 | 1.50~6.00 | 0.58~0.85 | 76.8~110.0 | [ |
| DSPE | 50 mg PSA+10 mg C18+20 mg PS-GMA | 24 | 11.00~43.00 | 0.87~1.23 | 79.7~109.0 | [ |
| MDSPE | 20 mg Fe3O4-PLS+10 mg PSA | 7.5 | 0.08~0.57 | 0.83~1.06 | 72.4~110.8 | 本文This study |
Table 4 Comparison of the present method with those reported in other literatures
| 预处理方法 Preparation method | 吸附剂数量 Adsorbent amounts | 单个样品处理时间/min Single pretreatment time/min | 检出限/(μg·kg-1) Limit of detection/ (μg·kg-1) | 基质效应 Matrix effect | 回收率/% Recovery rate/% | 参考文献 Reference |
|---|---|---|---|---|---|---|
| SPE | Oasis PRiME HLB(150 mg/3 mL) | 22 | 1.50~6.00 | 0.58~0.85 | 76.8~110.0 | [ |
| DSPE | 50 mg PSA+10 mg C18+20 mg PS-GMA | 24 | 11.00~43.00 | 0.87~1.23 | 79.7~109.0 | [ |
| MDSPE | 20 mg Fe3O4-PLS+10 mg PSA | 7.5 | 0.08~0.57 | 0.83~1.06 | 72.4~110.8 | 本文This study |
Fig.6 Extraction of ion chromatograms for standard and positive samples A, MS-222 matrix-matched standard solution (20 μg·kg-1); B, Positive sample (6.34 μg·kg-1); C, Benzocaine matrix-matched standard solution (20 μg·kg-1); D, Positive sample (2.87 μg·kg-1).
| 序号 No. | 样品 Sample | 三卡因 MS-222 | 苯佐卡因 Benzocaine |
|---|---|---|---|
| 1 | 鳙鱼Hypophthalmichthys nobilis | ND | ND |
| 2 | 鳙鱼Hypophthalmichthys nobilis | ND | ND |
| 3 | 白条鱼Chanodichthys erythropterus | ND | 1.44 |
| 4 | 鳙鱼Hypophthalmichthys nobilis | ND | ND |
| 5 | 鳊鱼Megalobrama amblycephala | ND | ND |
| 6 | 花链Hypophthalmichthys nobilis | ND | ND |
| 7 | 鲫鱼Carassius auratus | ND | ND |
| 8 | 黑鱼Channa argus | ND | ND |
| 9 | 草鱼Ctenopharyngodon idella | ND | 1.47 |
| 10 | 光唇鱼Acrossocheilus fasciatus | ND | 1.50 |
| 11 | 光唇鱼Acrossocheilus fasciatus | ND | ND |
| 12 | 光唇鱼Acrossocheilus fasciatus | ND | ND |
| 13 | 光唇鱼Acrossocheilus fasciatus | ND | ND |
| 14 | 马口鱼Opsariichthys bidens | ND | ND |
| 15 | 马口鱼Opsariichthys bidens | ND | ND |
| 16 | 光唇鱼Acrossocheilus fasciatus | 2.07 | ND |
| 17 | 光唇鱼Acrossocheilus fasciatus | 2.15 | 1.53 |
| 18 | 鲫鱼Carassius auratus | 2.31 | 1.61 |
| 19 | 马口鱼Opsariichthys bidens | ND | 1.72 |
| 20 | 马口鱼Opsariichthys bidens | ND | 1.78 |
| 21 | 胖头鱼Hypophthalmichthys nobilis | 3.98 | 1.80 |
| 22 | 胖头鱼Hypophthalmichthys nobilis | 5.76 | 2.87 |
| 23 | 鲫鱼Carassius auratus | 6.34 | ND |
Table 5 Mass fractions of anesthetics detected in 23 samples (n=3) μg·kg-1
| 序号 No. | 样品 Sample | 三卡因 MS-222 | 苯佐卡因 Benzocaine |
|---|---|---|---|
| 1 | 鳙鱼Hypophthalmichthys nobilis | ND | ND |
| 2 | 鳙鱼Hypophthalmichthys nobilis | ND | ND |
| 3 | 白条鱼Chanodichthys erythropterus | ND | 1.44 |
| 4 | 鳙鱼Hypophthalmichthys nobilis | ND | ND |
| 5 | 鳊鱼Megalobrama amblycephala | ND | ND |
| 6 | 花链Hypophthalmichthys nobilis | ND | ND |
| 7 | 鲫鱼Carassius auratus | ND | ND |
| 8 | 黑鱼Channa argus | ND | ND |
| 9 | 草鱼Ctenopharyngodon idella | ND | 1.47 |
| 10 | 光唇鱼Acrossocheilus fasciatus | ND | 1.50 |
| 11 | 光唇鱼Acrossocheilus fasciatus | ND | ND |
| 12 | 光唇鱼Acrossocheilus fasciatus | ND | ND |
| 13 | 光唇鱼Acrossocheilus fasciatus | ND | ND |
| 14 | 马口鱼Opsariichthys bidens | ND | ND |
| 15 | 马口鱼Opsariichthys bidens | ND | ND |
| 16 | 光唇鱼Acrossocheilus fasciatus | 2.07 | ND |
| 17 | 光唇鱼Acrossocheilus fasciatus | 2.15 | 1.53 |
| 18 | 鲫鱼Carassius auratus | 2.31 | 1.61 |
| 19 | 马口鱼Opsariichthys bidens | ND | 1.72 |
| 20 | 马口鱼Opsariichthys bidens | ND | 1.78 |
| 21 | 胖头鱼Hypophthalmichthys nobilis | 3.98 | 1.80 |
| 22 | 胖头鱼Hypophthalmichthys nobilis | 5.76 | 2.87 |
| 23 | 鲫鱼Carassius auratus | 6.34 | ND |
| [1] | 王兴益, 陈彦龙, 肖小华, 等. 水产品中有害物质分析样品前处理技术研究进展[J]. 色谱, 2021, 39(1): 34-45. |
| WANG X Y, CHEN Y L, XIAO X H, et al. Recent advances in sample preparation technologies for analysis of harmful substances in aquatic products[J]. Chinese Journal of Chromatography, 2021, 39(1): 34-45. | |
| [2] | WANG M L, QIAO Y, LUO Z H, et al. Development of a QuEChERS combined with LC-MS/MS method for determining 24 sedatives and anesthetics in animal-derived foods[J]. Journal of Food Composition and Analysis, 2024, 127: 106000. |
| [3] | ZHAO C Y, MA X Y, ZANG J L, et al. In situ enrichment and determination of 6 kinds of caine-type anesthetics in cosmetics and rat serum by thin layer chromatography-Raman spectroscopy[J]. Arabian Journal of Chemistry, 2023, 16(10): 105121. |
| [4] | 王展华, 梁晶晶, 施贝, 等. 通过式固相萃取结合UPLC-MS/MS同时检测水产品中麻醉剂及其代谢物残留[J]. 中国现代应用药学, 2023, 40(16): 2282-2287. |
| WANG Z H, LIANG J J, SHI B, et al. Simultaneous determination of anesthetics and metabolites in aquatic products by UPLC-MS/MS coupled with pass-through solid phase extraction[J]. Chinese Journal of Modern Applied Pharmacy, 2023, 40(16): 2282-2287. | |
| [5] | 吴少明, 欧阳立群, 孟鹏, 等. 固相萃取净化-超高效液相色谱-串联质谱法测定畜肉中18种卡因类麻醉剂[J]. 色谱, 2023, 41(5): 434-442. |
| WU S M, OUYANG L Q, MENG P, et al. Determination of 18 caine anesthetics in animal meat using solid phase extraction combined with ultra-performance liquid chromatography-tandem mass spectrometry[J]. Chinese Journal of Chromatography, 2023, 41(5): 434-442. | |
| [6] | HONG S, KWON N, KANG H S, et al. Development of an analytical method for detection of anesthetics and sedatives in fish[J]. Journal of AOAC International, 2022, 105(3): 774-783. |
| [7] | HUANG Q, ZHOU H, WU X L, et al. Simultaneous determination of the residues of anesthetics and sedatives in fish using LC-QLIT-MS/MS combined with DSPE[J]. Food Chemistry, 2023, 403: 134407. |
| [8] | 肖璇, 周凌聿, 陈春泉, 等. 超高效液相色谱-串联质谱法测定水产品中5种卡因类麻醉剂及其代谢物的不确定度[J]. 化学分析计量, 2024, 33(3): 121-128. |
| XIAO X, ZHOU L Y, CHEN C Q, et al. Uncertainty evaluation for determination of 5 caine anesthetics and their metabolites in aquatic products by ultra high performance liquid chromatography-tandem mass spectrometry[J]. Chemical Analysis and Meterage, 2024, 33(3): 121-128. | |
| [9] | BOYER S E, WHITE J S, STIER A C, et al. Effects of the fish anesthetic, clove oil (eugenol), on coral health and growth[J]. Journal of Experimental Marine Biology and Ecology, 2009, 369(1): 53-57. |
| [10] | YE L. Development and validation of a LC-MS/MS method for the determination of isoeugenol in finfish[J]. Food Chemistry, 2017, 228: 70-76. |
| [11] | 陈源. UPLC-MS/MS同时测定水产品中7种丁香酚类麻醉剂残留量[J]. 食品工业, 2024, 45(1): 280-283. |
| CHEN Y. Determination of 7 eugenol residues in aquatic products by UPLC-MS/MS[J]. The Food Industry, 2024, 45(1): 280-283. | |
| [12] | HUANG S Y, XU J Q, WU J Y, et al. Rapid detection of five anesthetics in tilapias by in vivo solid phase microextraction coupling with gas chromatography-mass spectrometry[J]. Talanta, 2017, 168: 263-268. |
| [13] | LIANG X, FENG T T, WU J H, et al. Vortex-assisted liquid-liquid micro-extraction followed by head space solid phase micro-extraction for the determination of eugenol in fish using GC-MS[J]. Food Analytical Methods, 2018, 11(3): 790-796. |
| [14] | 金慧玲, 刘真真, 范晓民, 等. 磁性“一步法”-液相色谱-串联质谱法测定水产品中28种有机磷农药残留[J]. 分析化学, 2024, 52(3): 419-439. |
| JIN H L, LIU Z Z, FAN X M, et al. Determination of 28 kinds of organophosphorus pesticide residues in aquatic products by magnetic “One-step” method combined with liquid chromatography-tandem mass spectrometry[J]. Chinese Journal of Analytical Chemistry, 2024, 52(3): 419-439. | |
| [15] | PENG X T, JIANG L, GONG Y, et al. Preparation of mesoporous ZrO2-coated magnetic microsphere and its application in the multi-residue analysis of pesticides and PCBs in fish by GC-MS/MS[J]. Talanta, 2015, 132: 118-125. |
| [16] | LIU H M, LI Y, WANG S K, et al. Magnetic solid-phase extraction of tetracyclines from milk using metal-organic framework MIL-101(Cr)-NH2 functionalised hydrophilic magnetic nanoparticles[J]. Food Chemistry, 2024, 452: 139579. |
| [17] | 刘真真. 功能磁性材料制备及其在海水和水产品中农药和抗生素残留分析中的应用研究[D]. 厦门: 厦门大学, 2021. |
| LIU Z Z. Preparation of functional magnetic material and its application in the determination of pesticide and antibiotic residues in seawater and aquatic products[D]. Xiamen: Xiamen University, 2021. | |
| [18] | LIU Z Z, ZHAO H Y, WANG J, et al. Magnetic polymer particles as a highly efficient and facile cleanup adsorbent for multi-pesticide residues analysis in aquatic products[J]. Ecotoxicology and Environmental Safety, 2022, 241: 113830. |
| [19] | LIU Z Z, QI P P, WANG J, et al. Development, validation, comparison, and implementation of a highly efficient and effective method using magnetic solid-phase extraction with hydrophilic-lipophilic-balanced materials for LC-MS/MS analysis of pesticides in seawater[J]. Science of The Total Environment, 2020, 708: 135221. |
| [20] | LIU Z Z, QI P P, WANG X Y, et al. Multi-pesticides residue analysis of grains using modified magnetic nanoparticle adsorbent for facile and efficient cleanup[J]. Food Chemistry, 2017, 230: 423-431. |
| [21] | 刘真真, 齐沛沛, 王新全, 等. 磁纳米材料净化-超高效液相色谱-串联质谱测定猕猴桃中多农药残留[J]. 色谱, 2016, 34(8): 762-772. |
| LIU Z Z, QI P P, WANG X Q, et al. Determination of pesticide multiresidue in kiwifruit by magnetic nanoparticles adsorbent purification and ultra performance liquid chromatographytandem mass spectrometry[J]. Chinese Journal of Chromatography, 2016, 34(8): 762-772. | |
| [22] | LI F, WANG Z H, ZHU B Q, et al. Development and application of a rapid screening SPE-LC-QTOF method for the quantification of 14 anesthetics in aquatic products[J]. Food Analytical Methods, 2023, 16(3): 633-649. |
| [23] | 魏丹, 国明, 张菊. 加速溶剂萃取-磁固相萃取-高效液相色谱-串联质谱法测定水产品中10种氟喹诺酮类药物残留[J]. 色谱, 2020, 38(12): 1413-1422. |
| WEI D, GUO M, ZHANG J. Determination of 10 fluoroquinolones residues in aquatic products by accelerated solvent extraction, magnetic solid-phase extraction, and high-performance liquid chromatography-tandem mass spectrometry[J]. Chinese Journal of Chromatography, 2020, 38(12): 1413-1422. | |
| [24] | 童学智, 陈东洋, 冯家力, 等. QuEChERS-超高效液相色谱-串联质谱法快速测定水产品中5种卤代苯醌[J]. 色谱, 2023, 41(6): 490-496. |
| TONG X Z, CHEN D Y, FENG J L, et al. Rapid determination of five halobenzoquinones in aquatic products by QuEChERS-ultra performance liquid chromatography-tandem mass spectrometry[J]. Chinese Journal of Chromatography, 2023, 41(6): 490-496. | |
| [25] | 刘小琦, 刘真真, 王美玉, 等. QuEChERS-超高效液相色谱-串联质谱分析鱼中13种全氟及多氟烷基化合物[J]. 色谱, 2024, 42(8): 740-748. |
| LIU X Q, LIU Z Z, WANG M Y, et al. Determination of 13 perfluorinated and polyfluoroalkyl substances in fishes by QuEChERS-ultra-high performance liquid chromatography-tandem mass spectrometry[J]. Chinese Journal of Chromatography, 2024, 42(8): 740-748. | |
| [26] | 周书威, 傅红, 杨方. 伯仲胺基团修饰Fe3O4磁性材料的制备和性能表征[J]. 复合材料学报, 2024, 41(4): 1977-1986. |
| ZHOU S W, FU H, YANG F. Preparation and performance characterization of primary secondary amine-modified Fe3O4 magnetic materials[J]. Acta Materiae Compositae Sinica, 2024, 41(4): 1977-1986. | |
| [27] | 王玮, 赵莹, 郭蓉, 等. QuEChERS-三重四极杆-气质联用法测定西洋参中227种农药残留[J]. 药物分析杂志, 2023, 43(11): 1897-1908. |
| WANG W, ZHAO Y, GUO R, et al. Determination of 227 pesticide residues in Panacis Quinquefolii Radix by QuEChERS-triple quadrupole-gas chromatography[J]. Chinese Journal of Pharmaceutical Analysis, 2023, 43(11): 1897-1908. | |
| [28] | 杨霄, 万译文, 黄华伟, 等. 分散固相萃取-超高效液相色谱-串联质谱法测定水产品中5种硝基咪唑类和6种苯二氮卓类药物[J]. 色谱, 2022, 40(7): 625-633. |
| YANG X, WAN Y W, HUANG H W, et al. Determination of five nitroimidazoles and six benzodiazepines in aquatic products using ultra-high performance liquid chromatography-tandem mass spectrometry coupled with dispersive solid-phase extraction[J]. Chinese Journal of Chromatography, 2022, 40(7): 625-633. | |
| [29] | QI P P, WANG J, LIU Z Z, et al. Integrated QuEChERS strategy for high-throughput multi-pesticide residues analysis of vegetables[J]. Journal of Chromatography A, 2021, 1659: 462589. |
| [30] | 高平, 杨曦, 莫彩娜, 等. 通过式固相萃取净化/高效液相色谱-串联质谱法快速测定水产品中6种麻醉剂残留[J]. 分析测试学报, 2019, 38(9): 1059-1065. |
| GAO P, YANG X, MO C N, et al. Rapid determination of six anesthetics residues in aquatic products by high performance liquid chromatography-tandem mass spectrometry with pass-through solid phase extraction[J]. Journal of Instrumental Analysis, 2019, 38(9): 1059-1065. | |
| [31] | 石芳, 寿旦, 金米聪, 等. 分散固相萃取-高效液相色谱法测定水产品中7种麻醉剂[J]. 色谱, 2022, 40(2): 139-147. |
| SHI F, SHOU D, JIN M C, et al. Dispersive solid-phase extraction combined with high-performance liquid chromatography for determination of seven anesthetics in aquatic products[J]. Chinese Journal of Chromatography, 2022, 40(2): 139-147. |
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