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Articles

Switchable hydrophilicity solvent based and solidification-assisted liquid-phase microextraction combined with GFAAS for quantification of trace soluble lead in raw bovine and derivative milk products

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Pages 1654-1666 | Received 10 May 2019, Accepted 11 Jul 2019, Published online: 30 Jul 2019

References

  • Bakary KM, Yao OA, Etchian MB, Soro A. 2015. Zinc, copper, cadmium, and lead concentrations in water, sediment, and Anadara senilis in a tropical estuary. Environ Monit Assess. 187:762–773.
  • de Oliverira TM, Peres JA, Felsner ML, Justi KC. 2017. Direct determination of Pb in raw milk by graphite furnace atomic absorption spectrometry (GFAAS) with electrothermal atomization sampling from slurries. Food Chem. 229:721–725.
  • Gao JJ, Wang H, Qu JG, Wang HL, Wang XD. 2017. Development and optimization of a naphthoic acid-based ionic liquid as a “non-organic solvent microextraction” for the determination of tetracycline antibiotics in milk and chicken eggs. Food Chem. 215:138–148.
  • Geraldes V, Carvalho M, Goncalves-Rosa N, Tavares C, Laranjo S, Rocha I. 2016. Lead toxicity promotes autonomic dysfunction with increased chemoreceptor sensitivity. Neurotoxicology. 54:170–177.
  • Hu C, He M, Chen B, Zhong C, Hu B. 2014. Sorptive extraction using polydimethylsiloxane/metal-organic framework coated stir bars coupled with high performance liquid chromatography-fluorescence detection for the determination of polycyclic aromatic hydrocarbons in environmental water samples. J Chromatogr A. 1356:45–53.
  • IRAC WHO/IARC (World Health Organization/International Agency for Research on Cancer). 2017. List of classifications, agents classified by the IARC monographs. http://monographs.iarc.fr/ENG/Classification/latest_classif.php.
  • Jalbani M, Soylak R. 2014. Ligandless surfactant mediated solid phase extraction combined with Fe3O4 nano-particle for the preconcentration and determination of cadmium and lead in water and soil samples followed by flame atomic absorption spectrometry: multivariate strategy. Ecotox Environ Safe. 10:2174–2178.
  • Jessop PG, Kozycz L, Rahami ZG, Scheonmakers D, Boyd AR, Wechsler D. 2011. Tertiary amine solvents having switchable hydrophilicity. Green Chem. 13:619–623.
  • Jessop PG, Phan L, Carrier A, Robinson S, Durr CJ, Harjani JR. 2010. A solvent having switchable hydrophilicity. Green Chem. 12:809–814.
  • Kalahasthi RB, Barman T, Rajmohan HR. 2014. The relationship between blood lead levels and morbidities among workers employed in a factory manufacturing lead acid storage battery. Int J Environ Health Res. 24:246–255.
  • Karamipour A, Hemati M, Fattahi N, Pirsaheb M, Jouibari TA. 2017. Optimization of a new methodology for trace determination of elements in biological fluids: application for speciation of inorganic selenium in children’s blood. J Pharm Biomed Anal. 140:155–161.
  • Kareem MA, Mjalli FS, Hashim MA, Ainashef IM. 2010. Phosphonium-based ionic liquids analgoues and their physical properties. J Chem Eng Data. 55:4632–4637.
  • Kazantzi V, Kabir A, Furton KG, Anthemidis A. 2018. Fabric fiber sorbent extraction for on-line toxic metal determination by atomic absorption spectrometry: determination of lead and cadmium in energy and soft drinks. Microchem J. 137:285–291.
  • Kumar NS, Dharmendra V, Sreenivasulu V, Asif M, Ibrahim AA, Balaram V. 2017. Separation and preconcentration of Pb and Cd in water samples using 3-(2-hydroxyphenyl)-1H-1,2,4-triazole-5(4H)-thione (HTT) and their determination by inductively coupled plasma atomic emission spectrometry (ICP-AES). J Metals. 240:1–12.
  • Li X, Row KW. 2016. Development of deep eutectic solvents applied in extraction and separation. J Sep Sci. 39:505–520.
  • Li Y, He Q, Peng GL. 2015. Dispersive liquid-liquid microextraction based on the solidification of floating organic drop followed by ICP-MS for the simultaneous determination of heavy metals in wastewaters. Spectrochim Acta Part A: Mol Biomol Spectrosc. 140:156–161.
  • Mandlate JS, Soares BM, Seeger TS, Vecchia PD, Mello PA, Flores E, Duarte FA. 2017. Determination of cadimium and lead at sub-ppt level in soft drinks: an efficient combination between dispersive liquid-liquid microextraction and graphite furnace atomic absorption spectrometry. Food Chem. 221:907–912.
  • March JG, Gerda V. 2016. A novel procedure for phase separation in dispersive liquid-liquid microextraction based on solidification of the aqueous phase. Talanta. 156–157:204–208.
  • Morton J, Tana E, Suvarn K. 2017. Multi elemental analysis of human lung samples using inductively coupled plasma mass spectrometry. J Trace Elem Med Biol. 43:63–71.
  • Nizamani S, Kazi TG, Afridi HI. 2018. Ultrasonic-energy enhance ionic-liquid-based dual microextraction to preconcentrate the lead in ground and stored rain water samples as compared to conventional shaking method. Ultrason Sonochem. 40:256–270.
  • Nordberg GF, Fowler BA, Norberg M, Friberg L. 2007. Handbook of the toxicology of metals. 2nd ed. Amsterdam: Atlantic Press.
  • Norouzirad R, Gonzalez-Montana JR, Martinez-Pastor F, Hosseini H, Moghaddam AF. 2018. Lead and cadium levels in raw bovine milk and dietary risk assessment in areas near petroleum extraction industries. Sci Total Environ. 635:308–314.
  • North AE, Sarpong-Kumanhomah S, Bellavie AR, White WM, Gailer J. 2017. Environmentally relevant concentrations of aminopolycarboxylate chelating agents mobilize Cd from humic acid. J Environ Sci. 57:249–257.
  • Ocana-Gonzalez JA, Fernandez-Torres R, Bello-Lopez MA, Ramos-Payan M. 2016. New developments in microextraction techniques in bioanalysis: A review. Anal Chim Acta. 905:8–23.
  • Perween R. 2015. Factors involving in fluctuation of trace metals concentrations in bovine milk. Pak J Pharm Sci. 28:1033–1038.
  • Phan L, Chiu D, Heldebrant DJ, Huttenhower H, John E, Li X. 2008. Switchable solvents consisting of amidine/alcohol or guanidine/alcohol mixtures. Ind Eng Chem Res. 47:539–545.
  • Rahimi E. 2013. Lead and cadmium concentrations in goat, cow, sheep and buffalo milks from different regions of Iran. Food Chem. 136:389–391.
  • Ramandi NF, Shemirani F. 2015. Selective ionic liquid ferrofluid based dispersive-solid phase extraction for simultaneous preconcentration/separation of lead and cadmium in milk and biological samples. Talanta. 13:404–411.
  • Singh N, Gautam A, Mishra R. 2011. Heavy metals and living systems: an overview. Indian J Pharm. 43:246–253.
  • Skalny AV, Nikonorov NV, Tinkov AA. 2017. Assessment of serum trace elements and electrolytes in children with childhood and atypical autism. J Trace Elem Med Biol. 43:9–14.
  • Soares V, Kus M, Peixoto A, Carroci J, Salazar R, Izario-Filho H. 2010. Determination of nutritional and toxic elements in pasteurized bovine milk from Vale do Paraiba region (Brazil). Food Control. 21:45–49.
  • Stanisz E, Werner J, Zgola-Grzeskowiak A. 2014. Liquid-phase microextraction techniques based on ionic liquids for preconcentration and determination of metals. Trends Anal Chem. 61:54–66.
  • Tunegova M, Toman R, Tancin V. 2016. Heavy metals-environmental contaminants and their occurrence in different types of milk. Slovak J Anim Sci. 49:122–131.
  • Vanderveen JR, Durelle J, Jessop PG. 2014. Design and evaluation of switchabale-hydrophlicity solvents. Green Chem. 16:1187–1197.
  • Wang XJ, Wu L, Cao JQ, Hong XC, Ye R, Chen W, Yuan T. 2016. Magnetic effervescent tablet-assisted ionic liquid dispersive liquid-liquid microextraction of selenium for speciation in foods and beverages. Food Add Contam Part A. 33:1190–1199.
  • Wang XR, Gao M, Zhang ZN, Gu HD, Liu TT, Yu NN, Wang XD, Wang HL. 2018. Development of CO2-mediated switchable hydrophilicity solvent-based microextraction combined with HPLC-UV for the determination of bisphenols in foods and drinks. Food Anal Methods. 11:2093–2104.
  • Werner J. 2018. Ionic liquid ultrasound-assisted dispersive liquid-liquid microextraction based on solidification of the aqueous phase for preconcentration of heavy metals ions prior to determination of LC-UV. Talanta. 182:69–73.
  • Yilmaz E, Soylak M. 2015. Switchable solvent based liquid phase microextraction of copper(II): optimization and application to environmental samples. J Anal At Spectrom. 30:1629–1635.
  • Zhang L, Chen B, He M, Liu X, Hu B. 2015. Hydrophilic polymer monolithic capillary microextraction online coupled to ICP-MS for the determination of carboxyl group-containing gold nanoparticles in environmental water. Anal Chem. 87:1789–1796.
  • Zhang S, Chen B, He M, Hu B. 2018. Switchable solvent based liquid phase microextraction of trace lead and cadmium from environmental and biological samples prior to graphite furnace atomic absorption spectrometry detection. Microchem J. 139:380–385.

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