[1] |
YAN Z H, YANG H H, DONG H K, et al. Occurrence and ecological risk assessment of organic micropollutants in the lower reaches of the Yangtze River, China: A case study of water diversion [J]. Environmental Pollution, 2018, 239: 223-232. doi: 10.1016/j.envpol.2018.04.023
|
[2] |
GOTO A, TUE N M, SOMEYA M, et al. Occurrence of natural mixed halogenated dibenzo-p-dioxins: specific distribution and profiles in mussels from Seto Inland Sea, Japan [J]. Environmental Science & Technology, 2017, 51(20): 11771-11779.
|
[3] |
MOLBERT N, ALLIOT F, SANTOS R, et al. Multiresidue methods for the determination of organic micropollutants and their metabolites in fish matrices [J]. Environmental Toxicology and Chemistry, 2019, 38(9): 1866-1878. doi: 10.1002/etc.4500
|
[4] |
GOTO A, TUE N M, ISOBE T, et al. Nontarget and target screening of organohalogen compounds in mussels and sediment from Hiroshima Bay, Japan: occurrence of novel bioaccumulative substances [J]. Environmental Science & Technology, 2020, 54(9): 5480-5488.
|
[5] |
AGüERA A, BUENO M J M, FERNáNDEZ-ALBA A R. New trends in the analytical determination of emerging contaminants and their transformation products in environmental waters [J]. Environmental Science and Pollution Research, 2013, 20(6): 3496-3515. doi: 10.1007/s11356-013-1586-0
|
[6] |
BERLIOZ-BARBIER A, VAUCHEZ A, WIEST L, et al. Multi-residue analysis of emerging pollutants in sediment using QuEChERS-based extraction followed by LC-MS/MS analysis [J]. Analytical and Bioanalytical Chemistry, 2014, 406(4): 1259-1266. doi: 10.1007/s00216-013-7450-8
|
[7] |
BLETSOU A A, JEON J, HOLLENDER J, et al. Targeted and non-targeted liquid chromatography-mass spectrometric workflows for identification of transformation products of emerging pollutants in the aquatic environment [J]. TRAC Trends in Analytical Chemistry, 2015, 66: 32-44. doi: 10.1016/j.trac.2014.11.009
|
[8] |
MASIA A, BLASCO C, PICO Y. Last trends in pesticide residue determination by liquid chromatography–mass spectrometry [J]. Trends in Environmental Analytical Chemistry, 2014, 2: 11-24. doi: 10.1016/j.teac.2014.03.002
|
[9] |
GAGO-FERRERO P, SCHYMANSKI E L, HOLLENDER J, et al. Nontarget analysis of environmental samples based on liquid chromatography coupled to high resolution mass spectrometry (LC-HRMS) [J]. Comprehensive Analytical Chemistry, 2016, 71: 381-403.
|
[10] |
ACENA J, STAMPACHIACCHIERE S, PEREZ S, et al. Advances in liquid chromatography-high-resolution mass spectrometry for quantitative and qualitative environmental analysis [J]. Analytical and Bioanalytical Chemistry, 2015, 407(21): 6289-6299. doi: 10.1007/s00216-015-8852-6
|
[11] |
SAMANIPOUR S, REID M J, BAEK K, et al. Combining a deconvolution and a universal library search algorithm for the nontarget analysis of data-independent acquisition mode liquid chromatography-high-resolution mass spectrometry results [J]. Environmental Science & Technology, 2018, 52(8): 4694-4701.
|
[12] |
CAS. The gold standard for chemical substance information [EB/OL]. [2020-6-19]. Chemical Abstracts Service. American Chemical Society. Columbus, OH, USA, 2020,https://www.cas.org/content/chemical-substances. (Accessed: 19 June 2020, 14:00).
|
[13] |
CAS. Regulated chemicals-CHEMLIST[EB/OL]. [2020-6-19]. Chemical Service. American Chemical Society. Columbus, OH, USA, 2020,https://www.cas.org/support/documentation/regulated-chemicals. (Accessed: 19 June 2020, 14:00).
|
[14] |
UNEP. Global Chemical Outlook; towards sound management of chemicals[EB/OL]. [2020-6-19]. United Nations Environment Programme , 2013,https://sustainabledevelopment.un.org/index.php?page=view&type=400&nr=1966&menu=35. (Accessed: 19 June 2020, 14:00).
|
[15] |
GUILLEN D, GINEBREDA A, FARRE M, et al. Prioritization of chemicals in the aquatic environment based on risk assessment: analytical, modeling and regulatory perspective [J]. Science of the Total Environment, 2012, 440: 236-252. doi: 10.1016/j.scitotenv.2012.06.064
|
[16] |
USEPA. United States Environmental Protection Agency. TSCA Chemical Substance Inventory [EB/OL]. [2020-6-19]. United States Envionmental Protection Agency , 2020,https://www.epa.gov/tsca-inventory/about-tsca-chemical-substance-inventory. (Accessed: 19 June 2020, 14:00).
|
[17] |
DAUGHTON C G. Non-regulated water contaminants: emerging research [J]. Environmental Impact Assessment Review, 2004, 24(7-8): 711-732. doi: 10.1016/j.eiar.2004.06.003
|
[18] |
CRANE M, BABUT M. Environmental quality standards for water framework directive priority substances: challenges and opportunities [J]. Integrated Environmental Assessment & Management, 2007, 3(2): 290-296.
|
[19] |
SOBUS J R, WAMBAUGH J F, ISAACS K K, et al. Integrating tools for non-targeted analysis research and chemical safety evaluations at the US EPA [J]. Journal of Exposure Science & Environmental Epidemiology, 2018, 28(5): 411-426.
|
[20] |
GAGO-FERRERO P, KRETTEK A, FISCHER S, et al. Suspect screening and regulatory databases: a powerful combination to identify emerging micropollutants [J]. Environmental Science & Technology, 2018, 52(12): 6881-6894.
|
[21] |
FARRé M L, PéREZ S, KANTIANI L, et al. Fate and toxicity of emerging pollutants, their metabolites and transformation products in the aquatic environment [J]. TRAC Trends in Analytical Chemistry, 2008, 27(11): 991-1007. doi: 10.1016/j.trac.2008.09.010
|
[22] |
CCANCCAPA-CARTAGENA A, PICO Y, ORTIZ X, et al. Suspect, non-target and target screening of emerging pollutants using data independent acquisition: assessment of a Mediterranean River basin, seven golden rules [J]. Science of the Total Environment, 2019, 687: 355-368. doi: 10.1016/j.scitotenv.2019.06.057
|
[23] |
RUFF M, MUELLER M S, LOOS M, et al. Quantitative target and systematic non-target analysis of polar organic micro-pollutants along the river Rhine using high-resolution mass-spectrometry-identification of unknown sources and compounds [J]. Water Research, 2015, 87: 145-54.
|
[24] |
LAPWORTH D J, BARAN N, STUART M E, et al. Emerging organic contaminants in groundwater: a review of sources, fate and occurrence [J]. Environmental Pollution, 2012, 163: 287-303. doi: 10.1016/j.envpol.2011.12.034
|
[25] |
GAW S, THOMAS K V, HUTCHINSON T H. Sources, impacts and trends of pharmaceuticals in the marine and coastal environment [J]. Philosophical Transactions of the Royal Society B Biological Sciences, 2014, 369(1656): 3133-3146.
|
[26] |
SANCHEZ-AVILA J, TAULER R, LACORTE S. Organic micropollutants in coastal waters from NW Mediterranean Sea: sources distribution and potential risk [J]. Environment International, 2012, 46: 50-62. doi: 10.1016/j.envint.2012.04.013
|
[27] |
DOM I, BIRE R, HORT V, et al. Extended targeted and non-targeted srategies for the analysis of marine toxins in mussels and oysters by (LC-HRMS) [J]. Toxins, 2018, 10(9): 10375.
|
[28] |
MAIER D, BLAHA L, GIESY J P, et al. Biological plausibility as a tool to associate analytical data for micropollutants and effect potentials in wastewater, surface water, and sediments with effects in fishes [J]. Water Research, 2015, 72: 127-144. doi: 10.1016/j.watres.2014.08.050
|
[29] |
DAMALAS D E, BLETSOU A A, AGALOU A, et al. Assessment of the acute toxicity, uptake and biotransformation potential of benzotriazoles in zebrafish (Danio rerio) larvae combining HILIC- with RPLC-HRMS for high-throughput identification [J]. Environmental Science & Technology, 2018, 52(10): 6023-6031.
|
[30] |
SHAO Y, CHEN Z, HOLLERT H, et al. Toxicity of 10 organic micropollutants and their mixture: Implications for aquatic risk assessment [J]. Science of the Total Environment, 2019, 666: 1273-1282. doi: 10.1016/j.scitotenv.2019.02.047
|
[31] |
ANGELES L F, MULLEN R A, HUANG I J, et al. Assessing pharmaceutical removal and reduction in toxicity provided by advanced wastewater treatment systems [J]. Environmental Science-Water Research & Technology, 2020, 6(1): 62-77.
|
[32] |
CAPPIELLO A, FAMIGLINI G, PALMA P, et al. Determination of selected endocrine disrupting compounds in human fetal and newborn tissues by GC-MS [J]. Analytical and Bioanalytical Chemistry, 2014, 406(12): 2779-2788. doi: 10.1007/s00216-014-7692-0
|
[33] |
LIU M, JIANG Y, LIU R, et al. Structural features guided "fishing" strategy to identification of flavonoids from lotus plumule in a self-built data "pool" by ultra-high performance liquid chromatography coupled with hybrid quadrupole-orbitrap high resolution mass spectrometry [J]. Journal of Chromatography B-Analytical Technologies in the Biomedical and Life Sciences, 2019, 1124: 122-134. doi: 10.1016/j.jchromb.2019.06.002
|
[34] |
ALVAREZ-MUNOZ D, RODRIGUEZ-MOZAZ S, MAULVAULT A L, et al. Occurrence of pharmaceuticals and endocrine disrupting compounds in macroalgaes, bivalves, and fish from coastal areas in Europe [J]. Environmental Research, 2015, 143: 56-64. doi: 10.1016/j.envres.2015.09.018
|
[35] |
MARTINS M F, COSTA P G, BIANCHINI A. Contaminant screening and tissue distribution in the critically endangered Brazilian guitarfish Pseudobatos horkelii [J]. Environmental pollution (Barking, Essex:1987), 2020, 265: 114923. doi: 10.1016/j.envpol.2020.114923
|
[36] |
GUZZELLA L M, NOVATI S, CASATTA N, et al. Spatial and temporal trends of target organic and inorganic micropollutants in Lake Maggiore and Lake Lugano (Italian-Swiss water bodies): contamination in sediments and biota [J]. Hydrobiologia, 2018, 824(1): 271-290. doi: 10.1007/s10750-017-3494-7
|
[37] |
LV Y Z, YAO L, WANG L, et al. Bioaccumulation, metabolism, and risk assessment of phenolic endocrine disrupting chemicals in specific tissues of wild fish [J]. Chemosphere, 2019, 226: 607-615. doi: 10.1016/j.chemosphere.2019.03.187
|
[38] |
EMNET P, GAW S, NORTHCOTT G, et al. Personal care products and steroid hormones in the Antarctic coastal environment associated with two Antarctic research stations, McMurdo Station and Scott Base [J]. Environmental Research, 2015, 136: 331-342. doi: 10.1016/j.envres.2014.10.019
|
[39] |
ARYA G, TADAYON S, SADIGHIAN J, et al. Pharmaceutical chemicals, steroids and xenoestrogens in water, sediments and fish from the tidal freshwater Potomac River (Virginia, USA) [J]. Journal Of Environmental Science And Health Part A, 2017, 52(7): 686-696. doi: 10.1080/10934529.2017.1312975
|
[40] |
CHEN H, LIU S, XU X R, et al. Antibiotics in typical marine aquaculture farms surrounding Hailing Island, South China: Occurrence, bioaccumulation and human dietary exposure [J]. Marine Pollution Bulletin, 2015, 90(1/2): 181-187.
|
[41] |
CHEN H, LIU S, XU X R, et al. Tissue distribution, bioaccumulation characteristics and health risk of antibiotics in cultured fish from a typical aquaculture area [J]. Journal of Hazardous materials, 2018, 343: 140-148. doi: 10.1016/j.jhazmat.2017.09.017
|
[42] |
DWIYITNO, DSIKOWITZKY L, NORDHAUS I, et al. Accumulation patterns of lipophilic organic contaminants in surface sediments and in economic important mussel and fish species from Jakarta Bay, Indonesia [J]. Marine Pollution Bulletin, 2016, 110(2): 767-777. doi: 10.1016/j.marpolbul.2016.01.034
|
[43] |
FAURE F, DEMARS C, WIESER O, et al. Plastic pollution in Swiss surface waters: Nature and concentrations, interaction with pollutants [J]. Environmental Chemistry, 2015, 12(5): 582-591. doi: 10.1071/EN14218
|
[44] |
LIU Y N, D'AGOSTINO L A, QU G B, et al. High-resolution mass spectrometry (HRMS) methods for nontarget discovery and characterization of poly- and per-fluoroalkyl substances (PFASs) in environmental and human samples [J]. TRAC Trends in Analytical Chemistry, 2019, 121: 115420. doi: 10.1016/j.trac.2019.02.021
|
[45] |
HERNáNDEZ F, IBáñEZ M, BADE R, et al. Investigation of pharmaceuticals and illicit drugs in waters by liquid chromatography-high-resolution mass spectrometry [J]. TRAC Trends in Analytical Chemistry, 2014, 63: 140-157. doi: 10.1016/j.trac.2014.08.003
|
[46] |
HERNáNDEZ F, IBANEZ M, BOTERO-COY A M, et al. LC-QTOF MS screening of more than 1, 000 licit and illicit drugs and their metabolites in wastewater and surface waters from the area of Bogota, Colombia [J]. Analytical and Bioanalytical Chemistry, 2015, 407(21): 6405-16. doi: 10.1007/s00216-015-8796-x
|
[47] |
KRAUSS M, SINGER H, HOLLENDER J. LC-high resolution MS in environmental analysis: from target screening to the identification of unknowns [J]. Analytical and Bioanalytical Chemistry, 2010, 397(3): 943-951. doi: 10.1007/s00216-010-3608-9
|
[48] |
BENNETT R V, GAMAGE C M, GALHENA A S, et al. Contrast-enhanced differential mobility-desorption electrospray ionization-mass spectrometry imaging of biological tissues [J]. Analytical Chemistry, 2014, 86(8): 3756-3763. doi: 10.1021/ac5007816
|
[49] |
LI Y, RUAN Q, LI Y L, et al. A novel approach to transforming a non-targeted metabolic profiling method to a pseudo-targeted method using the retention time locking gas chromatography/mass spectrometry-selected ions monitoring [J]. Journal of Chromatography A, 2012, 1255: 228-236. doi: 10.1016/j.chroma.2012.01.076
|
[50] |
KAUFMANN A, BUTCHER P, MADEN K, et al. Semi-targeted residue screening in complex matrices with liquid chromatography coupled to high resolution mass spectrometry: Current possibilities and limitations [J]. Analyst, 2011, 136(9): 1898-1909. doi: 10.1039/c0an00902d
|
[51] |
SJERPS R M A, VUGHS D, VAN LEERDAM J A, et al. Data-driven prioritization of chemicals for various water types using suspect screening LC-HRMS [J]. Water Research, 2016, 93: 254-264. doi: 10.1016/j.watres.2016.02.034
|
[52] |
MOREIRA T D C S S. Targeted, semi-targeted and nontargeted screening for drugs in whole blood by UPLC TOF-MS with dataindependent acquisition (DIA) [D]. Porto: University of Porto, 2014.
|
[53] |
BU Q W, WANG D H, LIU X, et al. A high throughout semi-quantification method for screening organic contaminants in river sediments [J]. Journal of Environmental Management, 2014, 143: 135-139.
|
[54] |
FERNANDO S, RENAGULI A, MILLIGAN M S, et al. Comprehensive analysis of the great lakes top predator fish for novel halogenated organic contaminants by GCxGC-HR-ToF mass spectrometry [J]. Environmental Science & Technology, 2018, 52(5): 2909-2917.
|
[55] |
PATTI G J, TAUTENHAHN R, SIUZDAK G. Meta-analysis of untargeted metabolomic data from multiple profiling experiments [J]. Nature Protocol, 2012, 7(3): 508-516. doi: 10.1038/nprot.2011.454
|
[56] |
IBáñEZ M, SANCHO J V, HERNáNDEZ F, et al. Rapid non-target screening of organic pollutants in water by ultraperformance liquid chromatography coupled to time-of-light mass spectrometry [J]. TRAC Trends in Analytical Chemistry, 2008, 27(5): 481-489. doi: 10.1016/j.trac.2008.03.007
|
[57] |
GAGO-FERRERO P, SCHYMANSKI E L, BLETSOU A A, et al. Extended suspect and non-target strategies to characterize emerging polar organic contaminants in raw wastewater with LC-HRMS/MS [J]. Environmental Science & Technology, 2015, 49(20): 12333-12341.
|
[58] |
CHEN S L, KONG H W, LU X, et al. Pseudotargeted metabolomics method and its application in serum biomarker discovery for hepatocellular carcinoma based on ultra high-performance liquid chromatography/triple quadrupole mass spectrometry [J]. Analytical Chemistry, 2013, 85(17): 8326-8333. doi: 10.1021/ac4016787
|
[59] |
ZHENG F, ZHAO X, ZENG Z, et al. Development of a plasma pseudotargeted metabolomics method based on ultra-high-performance liquid chromatography–mass spectrometry[J]. Nature Ptotocol, 2020.
|
[60] |
唐才明, 新型卤代有机污染物及多环芳烃代谢物的准靶向定性分析[D]. 北京: 中国科学院大学, 2016.
TANG C M, Quasi-targeted qualitative analysis of novel halogenated organic pollutants and hydroxylation-related metabolites of polycyclic aromatic hydrocarbons[D]. Beijing: University of Chinese Academy of Sciences 2016 (in Chinese).
|
[61] |
PEDERSEN A J, DALSGAARD P W, RODE A J, et al. Screening for illicit and medicinal drugs in whole blood using fully automated SPE and ultra‐high‐performance liquid chromatography with TOF‐MS with data‐independent acquisition [J]. Journal of Separation Science, 2013, 36(13): 2081-2089. doi: 10.1002/jssc.201200921
|
[62] |
BADE R, ROUSIS N I, BIJLSMA L, et al. Screening of pharmaceuticals and illicit drugs in wastewater and surface waters of Spain and Italy by high resolution mass spectrometry using UHPLC-QTOF MS and LC-LTQ-Orbitrap MS [J]. Analytical and Bioanalytical Chemistry, 2015, 407(30): 8979-88. doi: 10.1007/s00216-015-9063-x
|
[63] |
XU G, STUPAK J, YANG L, et al. Deconvolution in mass spectrometry based proteomics [J]. Rapid Communications in Mass Spectrometry, 2018, 32(10): 763-774. doi: 10.1002/rcm.8103
|
[64] |
BENTON H P, WONG D M, TRAUGER S A, et al. XCMS2: processing tandem mass spectrometry data for metabolite identification and structural characterization [J]. Analytical Chemistry, 2008, 80(16): 6382-6389. doi: 10.1021/ac800795f
|
[65] |
PLUSKAL T, CASTILLO S, VILLAR-BRIONES A, et al. MZmine 2, Modular framework for processing, visualizing, and analyzing mass spectrometry-based molecular profile data [J]. BMC Boinformatics, 2010, 11: 395. doi: 10.1186/1471-2105-11-395
|
[66] |
CHAMBERS M C, MACLEAN B, BURKE R, et al. A cross-platform toolkit for mass spectrometry and proteomics [J]. Nature Biotechnology, 2012, 30(10): 918-920. doi: 10.1038/nbt.2377
|
[67] |
BERTRAND S, AZZOLLINI A, SCHUMPP O, et al. Multi-well fungal co-culture for de novo metabolite-induction in time-series studies based on untargeted metabolomics [J]. Mol Biosyst, 2014, 10(9): 2289-2298. doi: 10.1039/C4MB00223G
|
[68] |
OWIS A I, EL-HAWARY M S, EL AMIR D, et al. Molecular docking reveals the potential of Salvadora persica flavonoids to inhibit COVID-19 virus main protease [J]. RSC Advances, 2020, 10(33): 19570-19575. doi: 10.1039/D0RA03582C
|
[69] |
ALYGIZAKIS N A, OSWALD P, THOMAIDIS N S, et al. NORMAN digital sample freezing platform: A European virtual platform to exchange liquid chromatography high resolution-mass spectrometry data and screen suspects in “digitally frozen” environmental samples [J]. TRAC Trends in Analytical Chemistry, 2019, 115: 129-137. doi: 10.1016/j.trac.2019.04.008
|
[70] |
SCHYMANSKI E L, SINGER H P, SLOBODNIK J, et al. Non-target screening with high-resolution mass spectrometry: critical review using a collaborative trial on water analysis [J]. Analytical and Bioanalytical Chemistry, 2015, 407(21): 6237-6255. doi: 10.1007/s00216-015-8681-7
|
[71] |
ZEDDA M, ZWIENER C. Is nontarget screening of emerging contaminants by LC-HRMS succesful? A plea for compound libraries and computer tools [J]. Analytical and Bioanalytical Chemistry, 2012, 403(9): 2493-2502. doi: 10.1007/s00216-012-5893-y
|
[72] |
GASTEIGER J, HANEBECK W, SCHULZ K P. Prediction of mass spectra from structural information [J]. Journal of Chemical Information & Computer Sciences, 1992, 32(4): 264-271.
|
[73] |
SCHYMANSKI E L, JEON J, GULDE R, et al. Identifying small molecules via high resolution mass spectrometry: Communicating confidence [J]. Environmental Science & Technology, 2014, 48(4): 2097-2098.
|
[74] |
VAN DER OOST R, BEYER J, VERMEULEN N P E. Fish bioaccumulation and biomarkers in environmental risk assessment: A review [J]. Environmental Toxicology and Pharmacology, 2003, 13(2): 57-149. doi: 10.1016/S1382-6689(02)00126-6
|
[75] |
HAMILTON P B, COWX I G, OLEKSIAK M F, et al. Population-level consequences for wild fish exposed to sublethal concentrations of chemicals - A critical review [J]. Fish and Fisheries, 2016, 17(3): 545-566. doi: 10.1111/faf.12125
|
[76] |
PENA-ABAURREA M, COVACI A, RAMOS L. Comprehensive two-dimensional gas chromatography-time-of-flight mass spectrometry for the identification of organobrominated compounds in bluefin tuna [J]. Journal of Chromatography A, 2011, 1218(39): 6995-7002. doi: 10.1016/j.chroma.2011.08.031
|
[77] |
BYER J D, PACEPAVICIUS G, LEBEUF M, et al. Qualitative analysis of halogenated organic contaminants in American eel by gas chromatography/time-of-flight mass spectrometry [J]. Chemosphere, 2014, 116: 98-103. doi: 10.1016/j.chemosphere.2014.02.032
|
[78] |
LIU Y N, QIAN M L, MA X X, et al. Nontarget mass spectrometry reveals new perfluoroalkyl substances in fish from the Yangtze River and Tangxun Lake, China [J]. Environmental Science & Technology, 2018, 52(10): 5830-5840.
|
[79] |
DU B W, LOFTON J M, PETER K T, et al. Development of suspect and non-target screening methods for detection of organic contaminants in highway runoff and fish tissue with high-resolution time-of-flight mass spectrometry [J]. Environmental Science Processes & Impacts, 2017, 19(9): 1185-1196.
|
[80] |
NACHER-MESTRE J, IBANEZ M, SERRANO R, et al. Qualitative screening of undesirable compounds from feeds to fish by liquid chromatography coupled to mass spectrometry [J]. Journal of Agricultural and Food Chemistry, 2013, 61(9): 2077-2087. doi: 10.1021/jf304478n
|
[81] |
NACHER-MESTRE J, SERRANO R, PORTOLES T, et al. Screening of pesticides and polycyclic aromatic hydrocarbons in feeds and fish tissues by gas chromatography coupled to high-resolution mass spectrometry using atmospheric pressure chemical ionization [J]. Journal of Agricultural and Food Chemistry, 2014, 62(10): 2165-2174. doi: 10.1021/jf405366n
|
[82] |
JIA W, SHI L, CHU X G. Untargeted screening of sulfonamides and their metabolites in salmon using liquid chromatography coupled to quadrupole Orbitrap mass spectrometry [J]. Food Chemistry, 2018, 239: 427-433. doi: 10.1016/j.foodchem.2017.06.143
|
[83] |
JIA W, SHI L, CHU X G, et al. A strategy for untargeted screening of macrolides and metabolites in bass by liquid chromatography coupled to quadrupole orbitrap mass spectrometry [J]. Food Chemistry, 2018, 262: 110-117. doi: 10.1016/j.foodchem.2018.04.090
|
[84] |
BADUEL C, MUELLER J F, TSAI H, et al. Development of sample extraction and clean-up strategies for target and non-target analysis of environmental contaminants in biological matrices [J]. Journal of Chromatography A, 2015, 1426: 33-47. doi: 10.1016/j.chroma.2015.11.040
|
[85] |
TIAN L, GOODYER C G, ZHENG J Y, et al. Thermal degradation of bisphenol A and bisphenol S in water and fish (cod and basa) fillets [J]. Food Chemistry, 2020, 328: 126999. doi: 10.1016/j.foodchem.2020.126999
|
[86] |
TIAN L, VERREAULT J, HOUDE M, et al. Suspect screening of plastic-related chemicals in northern pike (Esox lucius) from the St. Lawrence River, Canada [J]. Environmental Pollution, 2019, 255: 113223. doi: 10.1016/j.envpol.2019.113223
|
[87] |
CRIMMINS B S, XIA X, HOPKE P K, et al. A targeted/non-targeted screening method for perfluoroalkyl carboxylic acids and sulfonates in whole fish using quadrupole time-of-flight mass spectrometry and MSe [J]. Analytical and Bioanalytical Chemistry, 2014, 406(5): 1471-1480. doi: 10.1007/s00216-013-7519-4
|
[88] |
JIA W, CHU X G, CHANG J, et al. High-throughput untargeted screening of veterinary drug residues and metabolites in tilapia using high resolution orbitrap mass spectrometry [J]. Analytica Chimica Acta, 2017, 957: 29-39. doi: 10.1016/j.aca.2016.12.038
|
[89] |
TURNIPSEED S B, STOREY J M, LOHNE J J, et al. Wide-scope screening method for multiclass veterinary drug residues in fish, shrimp, and eel using liquid chromatography-quadrupole high-resolution mass spectrometry [J]. Journal of Agricultural and Food Chemistry, 2017, 65(34): 7252-7267. doi: 10.1021/acs.jafc.6b04717
|
[90] |
MUSATADI M, GONZáLEZ-GAYA B, IRAZOLA M, et al. Focused ultrasound-based extraction for target analysis and suspect screening of organic xenobiotics in fish muscle [J]. Science of the Total Environment, 2020, 740: 139894. doi: 10.1016/j.scitotenv.2020.139894
|