The sources, fate, and toxicity of chemical warfare agent degradation products.

Источники, судьба и токсичность продуктов распада отравляющих веществ.
Nancy B. Munro, Sylvia S. Talmage, Guy D. Griffin, L.C. Waters, Annetta P. Watson, Joe King, Veronique Hauschild
1999-12-01

Lewisite and Lewisite oxidechemical warfare agent degradation productsdegradation processes: hydrolysis, microbial degradation, oxidation, photolysisnerve agent hydrolysis products (VX, GB, GD) and methyl phosphonic acids (ethyl methyl phosphonic acid, methylphosphonic acid, EA-2192)sulfur mustard (HD) and thiodiglycol
We include in this review an assessment of the formation, environmental fate, and mammalian and ecotoxicity of CW agent degradation products relevant to environmental and occupational health. These parent CW agents include several vesicants: sulfur mustards [undistilled sulfur mustard (H), sulfur mustard (HD), and an HD/agent T mixture (HT)]; nitrogen mustards [ethylbis(2-chloroethyl)amine (HN1), methylbis(2-chloroethyl)amine (HN2), tris(2-chloroethyl)amine (HN3)], and Lewisite; four nerve agents (O-ethyl S-[2-(diisopropylamino)ethyl] methylphosphonothioate (VX), tabun (GA), sarin (GB), and soman (GD)); and the blood agent cyanogen chloride. The degradation processes considered here include hydrolysis, microbial degradation, oxidation, and photolysis. We also briefly address decontamination but not combustion processes. Because CW agents are generally not considered very persistent, certain degradation products of significant persistence, even those that are not particularly toxic, may indicate previous CW agent presence or that degradation has occurred. Of those products for which there are data on both environmental fate and toxicity, only a few are both environmentally persistent and highly toxic. Major degradation products estimated to be of significant persistence (weeks to years) include thiodiglycol for HD; Lewisite oxide for Lewisite; and ethyl methyl phosphonic acid, methyl phosphonic acid, and possibly S-(2-diisopropylaminoethyl) methylphosphonothioic acid (EA 2192) for VX. Methyl phosphonic acid is also the ultimate hydrolysis product of both GB and GD. The GB product, isopropyl methylphosphonic acid, and a closely related contaminant of GB, diisopropyl methylphosphonate, are also persistent. Of all of these compounds, only Lewisite oxide and EA 2192 possess high mammalian toxicity. Unlike other CW agents, sulfur mustard agents (e.g., HD) are somewhat persistent; therefore, sites or conditions involving potential HD contamination should include an evaluation of both the agent and thiodiglycol.
1
CW agent degradation processes considered include hydrolysis, microbial degradation, oxidation, photolysis, and briefly decontamination (not combustion).
2
Certain degradation products are significantly persistent (weeks to years) and can indicate prior CW agent presence even if not highly toxic.
3
Major persistent degradation products identified: thiodiglycol (HD), Lewisite oxide (Lewisite), and ethyl methyl phosphonic acid, methyl phosphonic acid, and possibly EA 2192 (VX).
4
Of the persistent degradation products, only Lewisite oxide and EA 2192 exhibit high mammalian toxicity; methyl phosphonic acid is the ultimate hydrolysis product of GB and GD.
5
Review assesses formation, environmental fate, and mammalian/ecotoxicity of degradation products from various chemical warfare (CW) agents.
6
Sulfur mustard agents (e.g., HD) are somewhat persistent, so contamination assessments should evaluate both the parent agent and thiodiglycol.

Degradation products of chemical warfare (CW) agents in the environment

Their sources, environmental fate (formation, persistence, degradation pathways) and toxicity (mammalian and ecotoxicity), including identification of persistent and highly toxic degradation products

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1999-12-01
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Authors
Nancy B. Munro
Sylvia S. Talmage
Guy D. Griffin
L.C. Waters
Annetta P. Watson
Joe King
Veronique Hauschild
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