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Overview on Analysis of Free Metabolites for Detection of Exposure to Chemical Warfare Agents


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1. M. Mesilaakso, Chemical Weapons Convention Chemicals Analysis. Sample collection, preparation and analytical methods, (England: John Wiley & Sons Ltd, 2005).10.1002/0470012285Search in Google Scholar

2. Presentations by and interviews of Dr. Yasuo Seto, National Research Institute of Police Science, and LTC K. Nakamura, Chemical School Japan Ground Self-Defense Force, CAVTAT, Croatia, (2009).Search in Google Scholar

3. A.T. Tu, “Horrors in Tokyo Subway and Matsumoto City”, Chemical Terrorism. Alaken Inc., Fort Collins, Colorado, (2002).Search in Google Scholar

4. E.R.J. Wils, A.G. Hulst, A.L. de Jong, A. Verweij and H.L. Boter, “Analysis of thiodiglycol in urine of victims of an alleged attack with mustard gas”, Journal of Analytical Toxicology, 9, Oxford University Press, (1985): 254-257.10.1093/jat/9.6.254Search in Google Scholar

5. E.R.J. Wils, A.G. Hulst, and A.G. van Laar, “Analysis of thiodiglycol in urine of victims of an alleged attack with mustard gas”, Part II, Journal of Analytical Toxicology, 12, Oxford University Press, (1988): 15-19.10.1093/jat/12.1.15Search in Google Scholar

6. R.M. Black, R.J. Clarke, J.M. Harrison and R.W. Read, “Biological fate of sulfur mustard: identification of valine and histidine adducts in haemoglobin from casulaties of sulfur mustard poisoning”, Xenobiotica, 27, Informa - UK, (1997): 499-512.Search in Google Scholar

7. T. Nakajima, K. Sasaki, H. Ozawa, Y. Sekijima, H. Morita, Y. Fukushima and N. Yanagisawa, “Urinary metabolites of sarin in a patient of the Matsumoto sarin incident”, Archives of Toxicology, 72, Springer Berlin Heidelberg, (1998): 601-603.10.1007/s002040050549Search in Google Scholar

8. D. Noort, A.G. Hulst, D.H.J.M. Platenburg, M. Polhuijs and H.P. Benschop, “Quantitative analysis of O-isopropyl methylphosphonic acid in serum samples of Japanese citizens allegedly exposed to sarin: estimation of internal dosage”, Archives of Toxicology, 72, Springer Berlin Heidelberg, (1998): 671-675.Search in Google Scholar

9. H. Tsuchihashi, M. Katagi, M. Tatsuno, M. Nishikawa and A. Miki, “Determination of metabolites of nerve agent O-ethyl-S-2-diisopropylaminoethyl methylphosphothioate (VX), in Natural and Selected Synthetic Toxins”, ACS Symposium Series, 745, American Chemical Society, Washington, (2000), 369-386.10.1021/bk-2000-0745.ch024Search in Google Scholar

10. E.M. Jakubowski Read, F.R. Sidell, R.A. Evans, M.A. Carter, J.R. Keeler, J.D. McMonagle, A. Swift, J.R. Smith and T.W. Dolzine, “Quantification of thiodiglycol in human urine after an accidental sulfur mustard exposure”, Toxicology Mechanisms and Methods, 10, United Kingdom, (2000), 143-150.10.1080/10517230050083375Search in Google Scholar

11. R.M. Black and J.M. Harrison, “The chemistry of organophosphorus chemical warfare agents”, in The Chemistry of Organophosphorus Compounds, vol. 4, ed. F.R. Hartley, (New York: John Wiley & Sons, Ltd, 1996), 781-840.10.1002/0470034351.ch10Search in Google Scholar

12. The Organisation for the Prohibition of Chemical Weapons, http://www.opcw.org/Search in Google Scholar

13. M. Minami, D.-M. Hui, M. Katsumata, H. Inagaki and C.A. Boulet, “Method for the analysis of the methylphosphonic acid metabolites of sarin and its ethanol-substituted analogue in urine as applied to the victims of the Tokyo sarin disaster”, Journal of Chromatography, B, 695, Elsevier, USA, (1997), 237-244.10.1016/S0378-4347(97)00203-XSearch in Google Scholar

14. H. Tsuchihashi, M. Katagi, M. Nishikawa and M. Tatsuno, „Identification of metabolites of nerve agent VX in serum collected from a victim”, Journal of Analytical Toxicology, 22, Oxford University Press, (1998), 383-388.10.1093/jat/22.5.3839737333Search in Google Scholar

15. N.L. Koryagina, E.S. Ukolova, E.I. Savel’eva, N.G. Voitenko, O.I. Orlova, R.O. Jenkins, and N.V. Goncharov, “High-sensitivity determination of 2-chlorovinylarsonous acid in biomedical samples for retrospective detection of exposure to lewisite upon antidotal therapy”, Spectroscopy 26, Hindawi Publishing Corporation, Egypt, (2011), 1-10.10.1155/2011/840141Search in Google Scholar

16. E.M. Jakubowski, J.R. Smith, T.P. Logan, N.D. Wiltshire, C.L. Woodard, R.A. Evans, and T.W. Dolzine, “Verification of Lewisite exposure: quantification of chlorovinyl arsonous acid in biological samples”, Proceedings of the 1993 Medical Defense Bioscience Review, U.S. Army Medical Research Institute of Chemical Defense, Aberdeen Proving Ground, (1993), 361-368.Search in Google Scholar

17. T.P. Logan, J.R. Smith, E.M. Jakubowski, and R.E. Nielson, “Verification of Lewisite exposure by the analysis of 2-chlorovinyl arsonous acid in urine”, Toxicology Mechanisms and Methods, 9, United Kingdom, (1999), 275-284.10.1080/105172399242627Search in Google Scholar

18. J.V. Wooten, D.L. Ashley, and A.M. Calafat, “Quantification of 2-chlorovinylarsonous acid in human urine by automated soli-phase microextraction gas chromatography - mass spectrometry”, Journal of Chromatography, B, 772, Elsevier, USA, (2002), 147-153.10.1016/S1570-0232(02)00069-7Search in Google Scholar

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