Literature DB >> 18567305

Rapid postcolumn methodology for determination of paralytic shellfish toxins in shellfish tissue.

Wade A Rourke1, Cory J Murphy, Ginette Pitcher, Jeffery M van de Riet, B Garth Burns, Krista M Thomas, Michael A Quilliam.   

Abstract

A rapid liquid chromatographic (LC) method with postcolumn oxidation and fluorescence detection (excitation 330 nm, emission 390 nm) for the determination of paralytic shellfish toxins (PSTs) in shellfish tissue has been developed. Extracts prepared for mouse bioassay (MBA) were treated with trichloroacetic acid to precipitate protein, centrifuged, and pH-adjusted for LC analysis. Saxitoxin (STX), neoSTX (NEO), decarbamoylSTX (dcSTX), and the gonyautoxins, GTX1, GTX2, GTX3, GTX4, GTX5, dcGTX2, and dcGTX3, were separated on a polar-linked alkyl reversed-phase column using a step gradient elution; the N-sulfocarbamoyl GTXs, C1, C2, C3, and C4, were determined on a C-8 reversed-phase column in the isocratic mode. Relative toxicities were used to determine STX-dihydrochloride salt (diHCl) equivalents (STXeq). Calibration graphs were linear for all toxins studied with STX showing a correlation coefficient of 0.999 and linearity between 0.18 and 5.9 ng STX-diHCI injected (equivalent to 3.9-128 microg STXeq/100 g in tissue). Detection limits for individual toxins ranged from 0.07 microg STXeq/100 g for C1 and C3 to 4.1 microg STXeq/100 g for GTX1. Spike recoveries ranged from 76 to 112% in mussel tissue. The relative standard deviation (RSD) of repeated injections of GTX and STX working standard solutions was < 4%. Uncertainty of measurement at a level of 195 microg STXeq/100 g was 9%, and within-laboratory reproducibility expressed as RSD was 4.6% using the same material. Repeatability of a 65 microg STXeq/100 g sample was 3.0% RSD. Seventy-three samples were analyzed by the new postcolumn method and both AOAC Official Methods for PST determination: the MBA (y = 1.22x + 13.99, r2 = 0.86) and the precolumn LC oxidation method of Lawrence (y = 2.06x + 12.21, r2 = 0.82).

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Year:  2008        PMID: 18567305

Source DB:  PubMed          Journal:  J AOAC Int        ISSN: 1060-3271            Impact factor:   1.913


  17 in total

1.  Paralytic shellfish toxin content is related to genomic sxtA4 copy number in Alexandrium minutum strains.

Authors:  Anke Stüken; Pilar Riobó; José Franco; Kjetill S Jakobsen; Laure Guillou; Rosa I Figueroa
Journal:  Front Microbiol       Date:  2015-05-01       Impact factor: 5.640

2.  Influence of different shellfish matrices on the separation of PSP toxins using a postcolumn oxidation liquid chromatography method.

Authors:  Verónica Rey; Amparo Alfonso; Luis M Botana; Ana M Botana
Journal:  Toxins (Basel)       Date:  2015-04-15       Impact factor: 4.546

3.  Determination of Gonyautoxin-4 in Echinoderms and Gastropod Matrices by Conversion to Neosaxitoxin Using 2-Mercaptoethanol and Post-Column Oxidation Liquid Chromatography with Fluorescence Detection.

Authors:  Marisa Silva; Verónica Rey; Ana Botana; Vitor Vasconcelos; Luis Botana
Journal:  Toxins (Basel)       Date:  2015-12-30       Impact factor: 4.546

4.  Development and Validation of a Liquid Chromatography-Tandem Mass Spectrometry Method Coupled with Dispersive Solid-Phase Extraction for Simultaneous Quantification of Eight Paralytic Shellfish Poisoning Toxins in Shellfish.

Authors:  Xianli Yang; Lei Zhou; Yanglan Tan; Xizhi Shi; Zhiyong Zhao; Dongxia Nie; Changyan Zhou; Hong Liu
Journal:  Toxins (Basel)       Date:  2017-06-29       Impact factor: 4.546

5.  Multispecies mass mortality of marine fauna linked to a toxic dinoflagellate bloom.

Authors:  Michel Starr; Stéphane Lair; Sonia Michaud; Michael Scarratt; Michael Quilliam; Denis Lefaivre; Michel Robert; Andrew Wotherspoon; Robert Michaud; Nadia Ménard; Gilbert Sauvé; Sylvie Lessard; Pierre Béland; Lena Measures
Journal:  PLoS One       Date:  2017-05-04       Impact factor: 3.240

6.  Semiquantitation of Paralytic Shellfish Toxins by Hydrophilic Interaction Liquid Chromatography-Mass Spectrometry Using Relative Molar Response Factors.

Authors:  Jiangbing Qiu; Elliott J Wright; Krista Thomas; Aifeng Li; Pearse McCarron; Daniel G Beach
Journal:  Toxins (Basel)       Date:  2020-06-16       Impact factor: 4.546

7.  Optimization of Sample Preparation for the Identification and Quantification of Saxitoxin in Proficiency Test Mussel Sample using Liquid Chromatography-Tandem Mass Spectrometry.

Authors:  Kirsi Harju; Marja-Leena Rapinoja; Marc-André Avondet; Werner Arnold; Martin Schär; Stephen Burrell; Werner Luginbühl; Paula Vanninen
Journal:  Toxins (Basel)       Date:  2015-11-25       Impact factor: 4.546

8.  Liquid Chromatography with a Fluorimetric Detection Method for Analysis of Paralytic Shellfish Toxins and Tetrodotoxin Based on a Porous Graphitic Carbon Column.

Authors:  Veronica Rey; Ana M Botana; Mercedes Alvarez; Alvaro Antelo; Luis M Botana
Journal:  Toxins (Basel)       Date:  2016-06-28       Impact factor: 4.546

9.  A Kinetic and Factorial Approach to Study the Effects of Temperature and Salinity on Growth and Toxin Production by the Dinoflagellate Alexandrium ostenfeldii from the Baltic Sea.

Authors:  Pablo Salgado; José A Vázquez; Pilar Riobó; José M Franco; Rosa I Figueroa; Anke Kremp; Isabel Bravo
Journal:  PLoS One       Date:  2015-12-04       Impact factor: 3.240

10.  Paralytic Shellfish Toxins Occurrence in Non-Traditional Invertebrate Vectors from North Atlantic Waters (Azores, Madeira, and Morocco).

Authors:  Marisa Silva; Verónica Rey; Aldo Barreiro; Manfred Kaufmann; Ana Isabel Neto; Meryem Hassouani; Brahim Sabour; Ana Botana; Luis M Botana; Vitor Vasconcelos
Journal:  Toxins (Basel)       Date:  2018-09-06       Impact factor: 4.546

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