Comparison of chemical modifiers for simultaneous determination of different selenium compounds in serum and urine by Zeeman-effect electrothermal atomic absorption spectrometry
Journal of Analytical Atomic Spectrometry Pub Date: DOI: 10.1039/JA9930800999
Abstract
The thermal stability of selenite, selenate, selenomethionine and trimethylselenonium was studied using different chemical modifiers in various amounts. The normally recommended amounts of nickel nitrate, magnesium nitrate, copper nitrate, copper nitrate mixed with magnesium nitrate, palladium nitrate and palladium nitrate in combination with magnesium nitrate were investigated. None of the studied modifiers stabilized the four species to the same extent. In aqueous solutions, addition of 2.7 μg of Pd or 7.5 μg of Pd + 5 μg of Mg(NO3)2 stabilized selenite, selenate and selenomethionine equally, while the sensitivity of trimethylselenonium was only 55% using palladium and 85% using palladium and magnesium nitrate. These chemical modifiers were used for the determination of selenium in serum. In aqueous solution, addition of 11 μg of Pd + 1128 μg of Mg(NO3)2 resulted in an equal stabilization of selenite, selenate and trimethylselenonium, while the sensitivity of selenomethionine was 15% higher. This chemical modifier was not applicable to serum and urine, as a white layer accumulated in the graphite tube during the experiments. Using the modifier containing 7.5 μg of Pd + 5 μg of Mg(NO3)2 for analysis of National Institute of Standards and Technology (NIST) Standard Reference Material (SRM) Freeze-dried Urine the selenium concentration was 27.2 ± 1.3 μg l–1(certified value, 30 ± 8 μg l–1). The result of the analysis of the serum reference material. Seronorm, was 96.6 ± 1.8 μg l–1 of Se (recommended value 96 μg l–1). This chemical modifier is proposed as the best choice among the examined modifiers for determination of selenium in serum and urine.
Recommended Literature
- [1] Emerging investigator series: first-principles and thermodynamics comparison of compositionally-tuned delafossites: cation release from the (001) surface of complex metal oxides? Joseph W. Bennett,Diamond T. Jones,Blake G. Hudson,Joshua Melendez-Rivera,Robert J. Hamers,Sara E. MasonEnviron. Sci.: Nano, 2020,7, 1642-1651 10.1039/C9EN01304K
- [2] Dissociative dynamics of O2 on Ag(110)? Ivor Lon?ari?Phys. Chem. Chem. Phys., 2015,17, 9436-9445 10.1039/C4CP05900J
- [3] Emulsion technologies for multicellular tumour spheroid radiation assays? Kay S. McMillan,Anthony G. McCluskey,Annette Sorensen,Marie Boyd,Michele ZagnoniAnalyst, 2016,141, 100-110 10.1039/C5AN01382H
- [4] Establishing empirical design rules of nucleic acid templates for the synthesis of silver nanoclusters with tunable photoluminescence and functionalities towards targeted bioimaging applications? Jason Y. C. Lim,Yong Yu,Guorui Jin,Kai Li,Yi Lu,Jianping XieNanoscale Adv., 2020,2, 3921-3932 10.1039/D0NA00381F
- [5] Exchangeability of amino acid residues with similar physicochemical properties in coiled-coil interactions? Guiying Zhang,Maosheng Cheng,Yanni Li,Keliang Liu,Lifeng CaiChem. Commun., 2013,49, 11086-11088 10.1039/C3CC46560H
- [6] Evolution and characterization of a benzylguanine-binding RNA aptamer? J. Xu,T. J. Carrocci,A. A. HoskinsChem. Commun., 2016,52, 549-552 10.1039/C5CC07605F
- [7] Fc microparticles can modulate the physical extent and magnitude of complement activity? David White,Sean R. StowellBiomater. Sci., 2017,5, 463-474 10.1039/C6BM00608F
- [8] Embedding heteroatoms: an effective approach to create porphyrin-based functional materials Norihito Fukui,Keisuke Fujimoto,Hideki Yorimitsu,Atsuhiro OsukaDalton Trans., 2017,46, 13322-13341 10.1039/C7DT02815F
- [9] Excess electrons in lithium–ethylamine solutions—density, electrical conductivity and EPR studies Phys. Chem. Chem. Phys., 1999,1, 3561-3565 10.1039/A900683D
- [10] Emergence of cationic polyamine dendrimersomes: design, stimuli sensitivity and potential biomedical applications Partha Laskar,Christine DufèsNanoscale Adv., 2021,3, 6007-6026 10.1039/D1NA00536G
Journal Name:Journal of Analytical Atomic Spectrometry
research_products
-
CAS no.: 89640-58-4