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Articles

Separation of selenium species in plant tissues by high performance liquid chromatography-ultraviolet treatment-hydride generation atomic fluorescence spectrometry using various mobile phases

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Pages 812-820 | Received 07 Dec 2020, Accepted 29 Mar 2021, Published online: 29 Jun 2021

References

  • Thiry C, Ruttens A, Temmerman LD, et al. Current knowledge in species-related bioavailability of selenium in food. Food Chem. 2012; 130(4):767–784.
  • Kuras R, Janasik B, Stanislawska M, et al. Revision of reciprocal action of mercury and selenium. Int J Occup Med Environ Health. 2018; 31(5):575–592.
  • Zhu YG, Pilon-Smits EAH, Zhao FJ, et al. Selenium in higher plants: understanding mechanisms for biofortification and phytoremediation. Trends Plant Sci. 2009; 14(8):436–442.
  • Zhou F, Yang WH, Wang MK, et al. Effects of selenium application on Se content and speciation in Lentinula edodes. Food Chem. 2018; 265:182–188.
  • Sun M, Liu GJ, Wu QH. Speciation of organic and inorganic selenium in selenium-enriched rice by graphite furnace atomic absorption spectrometry after cloud point extraction. Food Chem. 2013; 141(1):66–71.
  • Ali ZR, Mustafa T, Yar KM. Determination of selenium and arsenic ions in edible mushroom samples by novel chloride-oxalic acid deep eutectic solvent extraction using graphite furnace-atomic absorption spectrometry. J AOAC Int. 2018; 101(2):593–600.
  • Carey AM, Scheckel KG, Lombi E, et al. Grain accumulation of selenium species in rice (Oryza sativa L.). Environ Sci Technol. 2012; 46(10):5557–5564.
  • Valdez Barillas JR, Quinn CF, Freeman JL, et al. Selenium distribution and speciation in the hyperaccumulator astragalus bisulcatus and associated ecological partners. Plant Physiol. 2012; 159(4):1834–1844.
  • Lin JR, Chen N, Feng RF, et al. Sequestration of selenite and selenate in gypsum (CaSO4·2H2O): Insights from the single-crystal electron paramagnetic resonance spectroscopy and synchrotron X-ray absorption spectroscopy study. Environ Sci Technol. 2020; 54(6):3169–3180.
  • Li YX, Zhu NL, Liang XJ, et al. A comparative study on the accumulation, translocation and transformation of selenite, selenate, and SeNPs in a hydroponic-plant system. Ecotoxicol Environ Saf. 2020; 189:109955.
  • Lenz M, Van Hullebusch ED, Farges F, et al. Combined speciation analysis by X-ray absorption near-edge structure spectroscopy, ion chromatography, and solid-phase microextraction gas chromatography-mass spectrometry to evaluate biotreatment of concentrated selenium wastewaters. Environ Sci Technol. 2011; 45(3):1067–1073.
  • Gionfriddo E, Naccarato A, Sindona G, et al. A reliable solid phase microextraction-gas chromatography-triple quadrupole mass spectrometry method for the assay of selenomethionine and selenomethylselenocysteine in aqueous extracts: difference between selenized and not-enriched selenium potatoes . Anal Chim Acta. 2012; 747:58–66.
  • Zhao YQ, Zheng JP, Yang MW, et al. Speciation analysis of selenium in rice samples by using capillary electrophoresis-inductively coupled plasma mass spectrometry. Talanta. 2011; 84(3):983–988.
  • Liu LH, Yun ZJ, He B, et al. Efficient interface for online coupling of capillary electrophoresis with inductively coupled plasma-mass spectrometry and its application in simultaneous speciation analysis of arsenic and selenium. Anal Chem. 2014; 86(16):8167–8175.
  • Sánchez-Martínez M, Silva EGPD, Pérez-Corona T, et al. Selenite biotransformation during brewing. Evaluation by HPLC-ICP-MSTalanta. 2012; 88:272–276.
  • Gao HH, Chen MX, Hu XQ, et al. Separation of selenium species and their sensitive determination in rice samples by ion-pairing reversed-phase liquid chromatography with inductively coupled plasma tandem mass spectrometry. J Sep Sci. 2018; 41(2):432–439.
  • Chan Q, Afton SE, Caruso JA. Selenium speciation profiles in selenite-enriched soybean (Glycine Max) by HPLC-ICPMS and ESI-ITMS. Metallomics. 2010; 2(2):147–153.
  • Floor GH, Iglesías M, Román-Ross G, et al. Selenium speciation in acidic environmental samples: Application to acid rain-soil interaction at Mount Etna volcano. Chemosphere. 2011; 84(11):1664–1670.
  • Lenz M, Floor GH, Winkel LHE, et al. Online Preconcentration-IC-ICP-MS for Selenium Quantification and Speciation at Ultratraces. Environ Sci Technol. 2012; 46(21):11988–11994.
  • Da Silva EG, Verola Mataveli LR, Zezzi Arruda MA. Speciation analysis of selenium in plankton, Brazil nut and human urine samples by HPLC-ICP-MS. Talanta. 2013;110:53–57.
  • Sanchez-Rodas D, Mellano F, Morales E, et al. A simplified method for inorganic selenium and selenoaminoacids speciation based on HPLC-TR-HG-AFS. Talanta. 2013; 106(106C):298–304.
  • Xie XX, Feng CC, Ye MD, et al. Speciation determination of selenium in seafood by high-performance ion-exchange chromatography-hydride generation-atomic fluorescence spectrometry. Food Anal Methods. 2015; 8(7):1739–1745.
  • Chen ZL, Akter KF, Rahman MM, et al. The separation of arsenic species in soils and plant tissues by anion-exchange chromatography with inductively coupled mass spectrometry using various mobile phases. Microchem J. 2008; 89(1):20–28.
  • Dai XQ, Zhang HY, Spiertz JHJ, et al. Crop response of aerobic rice and winter wheat to nitrogen, phosphorus and potassium in a double cropping system. Nutr Cycl Agroecosyst. 2010; 86(3):301–315.
  • Han D, Li XH, Xiong SL, et al. Selenium uptake, speciation and stressed response of Nicotiana tabacum L. Environ Exp Bot. 2013; 95(1):6–14.
  • Han D, Xiong SL, Tu SX, et al. Interactive effects of selenium and arsenic on growth, antioxidant system, arsenic and selenium species of Nicotiana tabacum L. Environ Exp Bot. 2015; 117:12–19.
  • Leblanc KL, Kawamoto MS, Le PM, et al. Quantitation of selenomethionine in multivitamins and selenium supplements by high performance liquid chromatography inductively-coupled plasma mass spectrometry. Food Anal Methods. 2019;12(6):1316–1326.
  • Herath I, Kumarathilaka P, Bundschuh J, et al. A fast analytical protocol for simultaneous speciation of arsenic by Ultra-High Performance Liquid Chromatography (UHPLC) hyphenated to Inductively Coupled Plasma Mass Spectrometry (ICP-MS) as a modern advancement in liquid chromatography approaches. Talanta. 2020; 208:120457.
  • Chen BB, He M, Mao XJ, et al. Ionic liquids improved reversed-phase HPLC on-line coupled with ICP-MS for selenium speciation. Talanta. 2011; 83(3):724–731.
  • Nozohour YM, Yamini Y. Inorganic selenium speciation in water and biological samples by three phase hollow fiber-based liquid phase microextraction coupled with HPLC-UV. New J Chem. 2017; 41(6):2378–2385.
  • Mazej D, Falnoga I, Veber M, et al. Determination of selenium species in plant leaves by HPLC-UV-HG-AFS. Talanta. 2006; 68(3):558–568.
  • Chen SZ, Liu LP, Tang DJ. Determination of total and inorganic selenium in selenium-enriched rice, tea, and garlic by high-performance liquid chromatography-inductively coupled plasma mass spectrometry (HPLC-ICP-MS). Anal. Lett. 2020; 53:1–17.
  • Lavu RVS, Du Laing G, Tom VDW, et al. Fertilizing soil with selenium fertilizers: impact on concentration, speciation, and bioaccessibility of selenium in leek (Allium ampeloprasum). J Agric Food Chem. 2012; 60(44):10930–10935.
  • Dai ZH, Imtiaz M, Rizwan M, et al. Dynamics of selenium uptake, speciation, and antioxidant response in rice at different panicle initiation stages. Sci Total Environ. 2019; 691(15):827–834.
  • Zhang HQ, Zhao ZQ, Zhang X, et al. Effects of foliar application of selenate and selenite at different growth stages on Selenium accumulation and speciation in potato (Solanum tuberosum L.). Food Chem. 2019; 286:550–556.
  • Wu MR, Cong X, Li M, et al. Effects of different exogenous selenium on Se accumulation, nutrition quality, elements uptake, and antioxidant response in the hyperaccumulation plant Cardamine violifolia. Ecotox. Environ. Safe. 2020; 204:111045.
  • Hu T, Liu LP, Chen SZ, et al. Determination of selenium species in Cordyceps militaris by high-performance liquid chromatography coupled to hydride generation atomic fluorescence spectrometry. Anal. Lett. 2018; 51(14):2316–2330.