Cargando…

Determination of Cadmium in Brown Rice Samples by Fluorescence Spectroscopy Using a Fluoroionophore after Purification of Cadmium by Anion Exchange Resin

Simple analytical methods are needed for determining the cadmium (Cd) content of brown rice samples. In the present study, we developed a new analytical procedure consisting of the digestion of rice using HCl, Cd purification using anion exchange resin, and then determining the Cd content using fluo...

Descripción completa

Detalles Bibliográficos
Autores principales: Hafuka, Akira, Takitani, Akiyoshi, Suzuki, Hiroko, Iwabuchi, Takuya, Takahashi, Masahiro, Okabe, Satoshi, Satoh, Hisashi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5677403/
https://www.ncbi.nlm.nih.gov/pubmed/28991211
http://dx.doi.org/10.3390/s17102291
_version_ 1783277237369307136
author Hafuka, Akira
Takitani, Akiyoshi
Suzuki, Hiroko
Iwabuchi, Takuya
Takahashi, Masahiro
Okabe, Satoshi
Satoh, Hisashi
author_facet Hafuka, Akira
Takitani, Akiyoshi
Suzuki, Hiroko
Iwabuchi, Takuya
Takahashi, Masahiro
Okabe, Satoshi
Satoh, Hisashi
author_sort Hafuka, Akira
collection PubMed
description Simple analytical methods are needed for determining the cadmium (Cd) content of brown rice samples. In the present study, we developed a new analytical procedure consisting of the digestion of rice using HCl, Cd purification using anion exchange resin, and then determining the Cd content using fluorescence spectroscopy. Digestion with 0.1 M HCl for 10 min at room temperature was sufficient to extract Cd from the ground rice samples. The Cd in the extract was successfully purified in preference to other metals using Dowex 1X8 chloride form resin. Low concentrations of Cd in the eluate could be determined using fluorescence spectroscopy with a fluoroionophore. Overall, the actual limit of quantification value for the Cd content in rice was about 0.1 mg-Cd/kg-rice, which was sufficiently low compared with the regulatory value (0.4 mg-Cd/kg-rice) given by the Codex Alimentarius Commission. We analyzed authentic brown rice samples using our new analytical procedure and the results agreed well with those determined using inductively coupled plasma optical emission spectrometry (ICP-OES). Since the fluoroionophore recognized Zn(2+) and Hg(2+) as well as Cd(2+), a sample containing high concentration of Zn(2+) or Hg(2+) might cause a false positive result.
format Online
Article
Text
id pubmed-5677403
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-56774032017-11-17 Determination of Cadmium in Brown Rice Samples by Fluorescence Spectroscopy Using a Fluoroionophore after Purification of Cadmium by Anion Exchange Resin Hafuka, Akira Takitani, Akiyoshi Suzuki, Hiroko Iwabuchi, Takuya Takahashi, Masahiro Okabe, Satoshi Satoh, Hisashi Sensors (Basel) Article Simple analytical methods are needed for determining the cadmium (Cd) content of brown rice samples. In the present study, we developed a new analytical procedure consisting of the digestion of rice using HCl, Cd purification using anion exchange resin, and then determining the Cd content using fluorescence spectroscopy. Digestion with 0.1 M HCl for 10 min at room temperature was sufficient to extract Cd from the ground rice samples. The Cd in the extract was successfully purified in preference to other metals using Dowex 1X8 chloride form resin. Low concentrations of Cd in the eluate could be determined using fluorescence spectroscopy with a fluoroionophore. Overall, the actual limit of quantification value for the Cd content in rice was about 0.1 mg-Cd/kg-rice, which was sufficiently low compared with the regulatory value (0.4 mg-Cd/kg-rice) given by the Codex Alimentarius Commission. We analyzed authentic brown rice samples using our new analytical procedure and the results agreed well with those determined using inductively coupled plasma optical emission spectrometry (ICP-OES). Since the fluoroionophore recognized Zn(2+) and Hg(2+) as well as Cd(2+), a sample containing high concentration of Zn(2+) or Hg(2+) might cause a false positive result. MDPI 2017-10-09 /pmc/articles/PMC5677403/ /pubmed/28991211 http://dx.doi.org/10.3390/s17102291 Text en © 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hafuka, Akira
Takitani, Akiyoshi
Suzuki, Hiroko
Iwabuchi, Takuya
Takahashi, Masahiro
Okabe, Satoshi
Satoh, Hisashi
Determination of Cadmium in Brown Rice Samples by Fluorescence Spectroscopy Using a Fluoroionophore after Purification of Cadmium by Anion Exchange Resin
title Determination of Cadmium in Brown Rice Samples by Fluorescence Spectroscopy Using a Fluoroionophore after Purification of Cadmium by Anion Exchange Resin
title_full Determination of Cadmium in Brown Rice Samples by Fluorescence Spectroscopy Using a Fluoroionophore after Purification of Cadmium by Anion Exchange Resin
title_fullStr Determination of Cadmium in Brown Rice Samples by Fluorescence Spectroscopy Using a Fluoroionophore after Purification of Cadmium by Anion Exchange Resin
title_full_unstemmed Determination of Cadmium in Brown Rice Samples by Fluorescence Spectroscopy Using a Fluoroionophore after Purification of Cadmium by Anion Exchange Resin
title_short Determination of Cadmium in Brown Rice Samples by Fluorescence Spectroscopy Using a Fluoroionophore after Purification of Cadmium by Anion Exchange Resin
title_sort determination of cadmium in brown rice samples by fluorescence spectroscopy using a fluoroionophore after purification of cadmium by anion exchange resin
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5677403/
https://www.ncbi.nlm.nih.gov/pubmed/28991211
http://dx.doi.org/10.3390/s17102291
work_keys_str_mv AT hafukaakira determinationofcadmiuminbrownricesamplesbyfluorescencespectroscopyusingafluoroionophoreafterpurificationofcadmiumbyanionexchangeresin
AT takitaniakiyoshi determinationofcadmiuminbrownricesamplesbyfluorescencespectroscopyusingafluoroionophoreafterpurificationofcadmiumbyanionexchangeresin
AT suzukihiroko determinationofcadmiuminbrownricesamplesbyfluorescencespectroscopyusingafluoroionophoreafterpurificationofcadmiumbyanionexchangeresin
AT iwabuchitakuya determinationofcadmiuminbrownricesamplesbyfluorescencespectroscopyusingafluoroionophoreafterpurificationofcadmiumbyanionexchangeresin
AT takahashimasahiro determinationofcadmiuminbrownricesamplesbyfluorescencespectroscopyusingafluoroionophoreafterpurificationofcadmiumbyanionexchangeresin
AT okabesatoshi determinationofcadmiuminbrownricesamplesbyfluorescencespectroscopyusingafluoroionophoreafterpurificationofcadmiumbyanionexchangeresin
AT satohhisashi determinationofcadmiuminbrownricesamplesbyfluorescencespectroscopyusingafluoroionophoreafterpurificationofcadmiumbyanionexchangeresin