Journal Article10.1177/00220345900690S105
Evaluation of Analytical Methods for Fluorine in Biological and Related Materials
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TL;DR: During the past two decades, some major pitfalls in fluorine analysis have been recognized and overcome and Trace amounts of inorganic fluoride in biological samples can now be accurately determined with the fluoride electrode either directly or following diffusion, adsorption, or reverse extraction of fluoride (when necessary).
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Abstract: During the past two decades, some major pitfalls in fluorine analysis have been recognized and overcome. Therefore, it is important that facts be separated from fallacies in published literature on levels and forms of fluorine (ionic, bound, covalent, etc.) in biological materials, in order that correct perceptions of physiological, biochemical, and toxicological aspects of inorganic as well as organic fluorine compounds can be formed. Trace amounts of inorganic fluoride in biological samples can now be accurately determined with the fluoride electrode either directly or following diffusion, adsorption, or reverse extraction of fluoride (when necessary). The aluminum monofluoride molecular absorption technique provides an excellent rapid method for determination of trace amounts of inorganic fluoride (in the absence of organic fluorine). Fluorine in most organic fluorine compounds is not available for distillation, diffusion, or reverse-extraction. The sample needs to be ashed (open ashing) or combusted (oxygen flask, oxygen bomb, pyrohydrolysis) for covalently bound fluorine to be converted to fluoride ions. This can now be readily accomplished at room temperature by the reductive cleavage of the C-F bond with the sodium biphenyl reagent. Some recommendations for future research have been made.
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Citations
Development of gold standard ion-selective electrode-based methods for fluoride analysis
Esperanza A. Martinez-Mier,Jaime Aparecido Cury,J.R. Heilman,Barry P. Katz,Steven M. Levy,Yiming Li,Anne Maguire,J. Margineda,Denis O'Mullane,Prathip Phantumvanit,Armando E. Soto-Rojas,George K. Stookey,Alberto Villa,James S. Wefel,Helen Whelton,Gary M. Whitford,Domenick T. Zero,Wu Zhang,V. Zohouri +18 more
- 01 Jan 2011
TL;DR: It is demonstrated that the development and use of standardized protocols for F analysis significantly decreased differences among laboratories and resulted in more precise and true values.
Serum fluoride and sialic acid levels in osteosarcoma.
TL;DR: Results showing higher level of fluoride with osteosarcoma compared to others suggesting a role of fluoride in the disease are suggested.
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Daily dietary intake of fluoride by Slovenian Military based on analysis of total fluorine in total diet samples using fluoride ion selective electrode
TL;DR: In this paper, the authors developed an analytical procedure for determination of the amount of total fluoride in total diet samples, including drinking water and beverages, and the mean amount of fluoride determined in 20 total Diet samples obtained from the Slovenian Military was 1.84 −± −0.70
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Fluoride in Human Health and Nutrition.
Dona Štepec,Maja Ponikvar-Svet +1 more
TL;DR: The role and the effects of fluoride on human health are enlightened and some of the fluoride controversies are discussed and future research directions suggested.
Determination of total fluorine in blood at trace concentration levels by the Wickbold decomposition method with direct potentiometric detection
TL;DR: The Wickbold decomposition method was found to be suitable for routine total fluorine determination in blood samples despite its relatively low throughput and high operator skill requirements.
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- 01 Jan 1983
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