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Dual C–Br Isotope Fractionation Indicates Distinct Reductive Dehalogenation Mechanisms of 1,2-Dibromoethane in Dehalococcoides- and Dehalogenimonas-Containing Cultures

[Image: see text] Brominated organic compounds such as 1,2-dibromoethane (1,2-DBA) are highly toxic groundwater contaminants. Multi-element compound-specific isotope analysis bears the potential to elucidate the biodegradation pathways of 1,2-DBA in the environment, which is crucial information to a...

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Autores principales: Palau, Jordi, Trueba-Santiso, Alba, Yu, Rong, Mortan, Siti Hatijah, Shouakar-Stash, Orfan, Freedman, David L., Wasmund, Kenneth, Hunkeler, Daniel, Marco-Urrea, Ernest, Rosell, Monica
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9910042/
https://www.ncbi.nlm.nih.gov/pubmed/36700533
http://dx.doi.org/10.1021/acs.est.2c07137
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author Palau, Jordi
Trueba-Santiso, Alba
Yu, Rong
Mortan, Siti Hatijah
Shouakar-Stash, Orfan
Freedman, David L.
Wasmund, Kenneth
Hunkeler, Daniel
Marco-Urrea, Ernest
Rosell, Monica
author_facet Palau, Jordi
Trueba-Santiso, Alba
Yu, Rong
Mortan, Siti Hatijah
Shouakar-Stash, Orfan
Freedman, David L.
Wasmund, Kenneth
Hunkeler, Daniel
Marco-Urrea, Ernest
Rosell, Monica
author_sort Palau, Jordi
collection PubMed
description [Image: see text] Brominated organic compounds such as 1,2-dibromoethane (1,2-DBA) are highly toxic groundwater contaminants. Multi-element compound-specific isotope analysis bears the potential to elucidate the biodegradation pathways of 1,2-DBA in the environment, which is crucial information to assess its fate in contaminated sites. This study investigates for the first time dual C–Br isotope fractionation during in vivo biodegradation of 1,2-DBA by two anaerobic enrichment cultures containing organohalide-respiring bacteria (i.e., either Dehalococcoides or Dehalogenimonas). Different ε(bulk)(C) values (−1.8 ± 0.2 and −19.2 ± 3.5‰, respectively) were obtained, whereas their respective ε(bulk)(Br) values were lower and similar to each other (−1.22 ± 0.08 and −1.2 ± 0.5‰), leading to distinctly different trends (Λ(C–Br) = Δδ(13)C/Δδ(81)Br ≈ ε(bulk)(C)/ε(bulk)(Br)) in a dual C–Br isotope plot (1.4 ± 0.2 and 12 ± 4, respectively). These results suggest the occurrence of different underlying reaction mechanisms during enzymatic 1,2-DBA transformation, that is, concerted dihaloelimination and nucleophilic substitution (S(N)2-reaction). The strongly pathway-dependent Λ(C–Br) values illustrate the potential of this approach to elucidate the reaction mechanism of 1,2-DBA in the field and to select appropriate ε(bulk)(C) values for quantification of biodegradation. The results of this study provide valuable information for future biodegradation studies of 1,2-DBA in contaminated sites.
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spelling pubmed-99100422023-02-10 Dual C–Br Isotope Fractionation Indicates Distinct Reductive Dehalogenation Mechanisms of 1,2-Dibromoethane in Dehalococcoides- and Dehalogenimonas-Containing Cultures Palau, Jordi Trueba-Santiso, Alba Yu, Rong Mortan, Siti Hatijah Shouakar-Stash, Orfan Freedman, David L. Wasmund, Kenneth Hunkeler, Daniel Marco-Urrea, Ernest Rosell, Monica Environ Sci Technol [Image: see text] Brominated organic compounds such as 1,2-dibromoethane (1,2-DBA) are highly toxic groundwater contaminants. Multi-element compound-specific isotope analysis bears the potential to elucidate the biodegradation pathways of 1,2-DBA in the environment, which is crucial information to assess its fate in contaminated sites. This study investigates for the first time dual C–Br isotope fractionation during in vivo biodegradation of 1,2-DBA by two anaerobic enrichment cultures containing organohalide-respiring bacteria (i.e., either Dehalococcoides or Dehalogenimonas). Different ε(bulk)(C) values (−1.8 ± 0.2 and −19.2 ± 3.5‰, respectively) were obtained, whereas their respective ε(bulk)(Br) values were lower and similar to each other (−1.22 ± 0.08 and −1.2 ± 0.5‰), leading to distinctly different trends (Λ(C–Br) = Δδ(13)C/Δδ(81)Br ≈ ε(bulk)(C)/ε(bulk)(Br)) in a dual C–Br isotope plot (1.4 ± 0.2 and 12 ± 4, respectively). These results suggest the occurrence of different underlying reaction mechanisms during enzymatic 1,2-DBA transformation, that is, concerted dihaloelimination and nucleophilic substitution (S(N)2-reaction). The strongly pathway-dependent Λ(C–Br) values illustrate the potential of this approach to elucidate the reaction mechanism of 1,2-DBA in the field and to select appropriate ε(bulk)(C) values for quantification of biodegradation. The results of this study provide valuable information for future biodegradation studies of 1,2-DBA in contaminated sites. American Chemical Society 2023-01-26 /pmc/articles/PMC9910042/ /pubmed/36700533 http://dx.doi.org/10.1021/acs.est.2c07137 Text en © 2023 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 Palau, Jordi
Trueba-Santiso, Alba
Yu, Rong
Mortan, Siti Hatijah
Shouakar-Stash, Orfan
Freedman, David L.
Wasmund, Kenneth
Hunkeler, Daniel
Marco-Urrea, Ernest
Rosell, Monica
Dual C–Br Isotope Fractionation Indicates Distinct Reductive Dehalogenation Mechanisms of 1,2-Dibromoethane in Dehalococcoides- and Dehalogenimonas-Containing Cultures
title Dual C–Br Isotope Fractionation Indicates Distinct Reductive Dehalogenation Mechanisms of 1,2-Dibromoethane in Dehalococcoides- and Dehalogenimonas-Containing Cultures
title_full Dual C–Br Isotope Fractionation Indicates Distinct Reductive Dehalogenation Mechanisms of 1,2-Dibromoethane in Dehalococcoides- and Dehalogenimonas-Containing Cultures
title_fullStr Dual C–Br Isotope Fractionation Indicates Distinct Reductive Dehalogenation Mechanisms of 1,2-Dibromoethane in Dehalococcoides- and Dehalogenimonas-Containing Cultures
title_full_unstemmed Dual C–Br Isotope Fractionation Indicates Distinct Reductive Dehalogenation Mechanisms of 1,2-Dibromoethane in Dehalococcoides- and Dehalogenimonas-Containing Cultures
title_short Dual C–Br Isotope Fractionation Indicates Distinct Reductive Dehalogenation Mechanisms of 1,2-Dibromoethane in Dehalococcoides- and Dehalogenimonas-Containing Cultures
title_sort dual c–br isotope fractionation indicates distinct reductive dehalogenation mechanisms of 1,2-dibromoethane in dehalococcoides- and dehalogenimonas-containing cultures
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9910042/
https://www.ncbi.nlm.nih.gov/pubmed/36700533
http://dx.doi.org/10.1021/acs.est.2c07137
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