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Acid- and Base-Mediated Hydrolysis of Dichloroacetamide Herbicide Safeners

[Image: see text] Safeners are used extensively in commercial herbicide formulations. Although safeners are regulated as inert ingredients, some of their transformation products have enhanced biological activity. Here, to fill gaps in our understanding of safener environmental fate, we determined ra...

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Autores principales: McFadden, Monica E., Patterson, Eric V., Reber, Keith P., Gilbert, Ian W., Sivey, John D., LeFevre, Gregory H., Cwiertny, David M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8733929/
https://www.ncbi.nlm.nih.gov/pubmed/34920670
http://dx.doi.org/10.1021/acs.est.1c05958
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author McFadden, Monica E.
Patterson, Eric V.
Reber, Keith P.
Gilbert, Ian W.
Sivey, John D.
LeFevre, Gregory H.
Cwiertny, David M.
author_facet McFadden, Monica E.
Patterson, Eric V.
Reber, Keith P.
Gilbert, Ian W.
Sivey, John D.
LeFevre, Gregory H.
Cwiertny, David M.
author_sort McFadden, Monica E.
collection PubMed
description [Image: see text] Safeners are used extensively in commercial herbicide formulations. Although safeners are regulated as inert ingredients, some of their transformation products have enhanced biological activity. Here, to fill gaps in our understanding of safener environmental fate, we determined rate constants and transformation products associated with the acid- and base-mediated hydrolysis of dichloroacetamide safeners AD-67, benoxacor, dichlormid, and furilazole. Second-order rate constants for acid- (HCl) and base-mediated (NaOH) dichloroacetamide hydrolysis (2.8 × 10(–3) to 0.46 and 0.3–500 M(–1) h(–1), respectively) were, in many cases (5 of 8), greater than those reported for their chloroacetamide herbicide co-formulants. In particular, the rate constant for base-mediated hydrolysis of benoxacor was 2 orders of magnitude greater than that of its active ingredient co-formulant, S-metolachlor. At circumneutral pH, only benoxacor underwent appreciable hydrolysis (5.3 × 10(–4) h(–1)), and under high-pH conditions representative of lime-soda softening, benoxacor’s half-life was 13 h—a timescale consistent with partial transformation during water treatment. Based on Orbitrap LC–MS/MS analysis of dichloroacetamide hydrolysis product mixtures, we propose structures for major products and three distinct mechanistic pathways that depend on the system pH and compound structure. These include base-mediated amide cleavage, acid-mediated amide cleavage, and acid-mediated oxazolidine ring opening. Collectively, this work will help to identify systems in which hydrolysis contributes to the transformation of dichloroacetamides, while also highlighting important differences in the reactivity of dichloroacetamides and their active chloroacetamide co-formulants.
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spelling pubmed-87339292022-01-06 Acid- and Base-Mediated Hydrolysis of Dichloroacetamide Herbicide Safeners McFadden, Monica E. Patterson, Eric V. Reber, Keith P. Gilbert, Ian W. Sivey, John D. LeFevre, Gregory H. Cwiertny, David M. Environ Sci Technol [Image: see text] Safeners are used extensively in commercial herbicide formulations. Although safeners are regulated as inert ingredients, some of their transformation products have enhanced biological activity. Here, to fill gaps in our understanding of safener environmental fate, we determined rate constants and transformation products associated with the acid- and base-mediated hydrolysis of dichloroacetamide safeners AD-67, benoxacor, dichlormid, and furilazole. Second-order rate constants for acid- (HCl) and base-mediated (NaOH) dichloroacetamide hydrolysis (2.8 × 10(–3) to 0.46 and 0.3–500 M(–1) h(–1), respectively) were, in many cases (5 of 8), greater than those reported for their chloroacetamide herbicide co-formulants. In particular, the rate constant for base-mediated hydrolysis of benoxacor was 2 orders of magnitude greater than that of its active ingredient co-formulant, S-metolachlor. At circumneutral pH, only benoxacor underwent appreciable hydrolysis (5.3 × 10(–4) h(–1)), and under high-pH conditions representative of lime-soda softening, benoxacor’s half-life was 13 h—a timescale consistent with partial transformation during water treatment. Based on Orbitrap LC–MS/MS analysis of dichloroacetamide hydrolysis product mixtures, we propose structures for major products and three distinct mechanistic pathways that depend on the system pH and compound structure. These include base-mediated amide cleavage, acid-mediated amide cleavage, and acid-mediated oxazolidine ring opening. Collectively, this work will help to identify systems in which hydrolysis contributes to the transformation of dichloroacetamides, while also highlighting important differences in the reactivity of dichloroacetamides and their active chloroacetamide co-formulants. American Chemical Society 2021-12-17 2022-01-04 /pmc/articles/PMC8733929/ /pubmed/34920670 http://dx.doi.org/10.1021/acs.est.1c05958 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle McFadden, Monica E.
Patterson, Eric V.
Reber, Keith P.
Gilbert, Ian W.
Sivey, John D.
LeFevre, Gregory H.
Cwiertny, David M.
Acid- and Base-Mediated Hydrolysis of Dichloroacetamide Herbicide Safeners
title Acid- and Base-Mediated Hydrolysis of Dichloroacetamide Herbicide Safeners
title_full Acid- and Base-Mediated Hydrolysis of Dichloroacetamide Herbicide Safeners
title_fullStr Acid- and Base-Mediated Hydrolysis of Dichloroacetamide Herbicide Safeners
title_full_unstemmed Acid- and Base-Mediated Hydrolysis of Dichloroacetamide Herbicide Safeners
title_short Acid- and Base-Mediated Hydrolysis of Dichloroacetamide Herbicide Safeners
title_sort acid- and base-mediated hydrolysis of dichloroacetamide herbicide safeners
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8733929/
https://www.ncbi.nlm.nih.gov/pubmed/34920670
http://dx.doi.org/10.1021/acs.est.1c05958
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