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Shotgun proteomic analysis of nanoparticle-synthesizing Desulfovibrio alaskensis in response to platinum and palladium

Platinum and palladium are much sought-after metals of critical global importance in terms of abundance and availability. At the nano-scale these metals are of even higher value due to their catalytic abilities for industrial applications. Desulfovibrio alaskensis is able to capture ionic forms of b...

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Autores principales: Capeness, Michael J., Imrie, Lisa, Mühlbauer, Lukas F., Le Bihan, Thierry, Horsfall, Louise E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Microbiology Society 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7376266/
https://www.ncbi.nlm.nih.gov/pubmed/31361216
http://dx.doi.org/10.1099/mic.0.000840
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author Capeness, Michael J.
Imrie, Lisa
Mühlbauer, Lukas F.
Le Bihan, Thierry
Horsfall, Louise E.
author_facet Capeness, Michael J.
Imrie, Lisa
Mühlbauer, Lukas F.
Le Bihan, Thierry
Horsfall, Louise E.
author_sort Capeness, Michael J.
collection PubMed
description Platinum and palladium are much sought-after metals of critical global importance in terms of abundance and availability. At the nano-scale these metals are of even higher value due to their catalytic abilities for industrial applications. Desulfovibrio alaskensis is able to capture ionic forms of both of these metals, reduce them and synthesize elemental nanoparticles. Despite this ability, very little is known about the biological pathways involved in the formation of these nanoparticles. Proteomic analysis of D. alaskensis in response to platinum and palladium has highlighted those proteins involved in both the reductive pathways and the wider stress-response system. A core set of 13 proteins was found in both treatments and consisted of proteins involved in metal transport and reduction. There were also seven proteins that were specific to either platinum or palladium. Overexpression of one of these platinum-specific genes, a NiFe hydrogenase small subunit (Dde_2137), resulted in the formation of larger nanoparticles. This study improves our understanding of the pathways involved in the metal resistance mechanism of Desulfovibrio and is informative regarding how we can tailor the bacterium for nanoparticle production, enhancing its application as a bioremediation tool and as a way to capture contaminant metals from the environment.
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spelling pubmed-73762662020-07-24 Shotgun proteomic analysis of nanoparticle-synthesizing Desulfovibrio alaskensis in response to platinum and palladium Capeness, Michael J. Imrie, Lisa Mühlbauer, Lukas F. Le Bihan, Thierry Horsfall, Louise E. Microbiology (Reading) Research Article Platinum and palladium are much sought-after metals of critical global importance in terms of abundance and availability. At the nano-scale these metals are of even higher value due to their catalytic abilities for industrial applications. Desulfovibrio alaskensis is able to capture ionic forms of both of these metals, reduce them and synthesize elemental nanoparticles. Despite this ability, very little is known about the biological pathways involved in the formation of these nanoparticles. Proteomic analysis of D. alaskensis in response to platinum and palladium has highlighted those proteins involved in both the reductive pathways and the wider stress-response system. A core set of 13 proteins was found in both treatments and consisted of proteins involved in metal transport and reduction. There were also seven proteins that were specific to either platinum or palladium. Overexpression of one of these platinum-specific genes, a NiFe hydrogenase small subunit (Dde_2137), resulted in the formation of larger nanoparticles. This study improves our understanding of the pathways involved in the metal resistance mechanism of Desulfovibrio and is informative regarding how we can tailor the bacterium for nanoparticle production, enhancing its application as a bioremediation tool and as a way to capture contaminant metals from the environment. Microbiology Society 2019-12 2019-07-30 /pmc/articles/PMC7376266/ /pubmed/31361216 http://dx.doi.org/10.1099/mic.0.000840 Text en © 2019 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License.
spellingShingle Research Article
Capeness, Michael J.
Imrie, Lisa
Mühlbauer, Lukas F.
Le Bihan, Thierry
Horsfall, Louise E.
Shotgun proteomic analysis of nanoparticle-synthesizing Desulfovibrio alaskensis in response to platinum and palladium
title Shotgun proteomic analysis of nanoparticle-synthesizing Desulfovibrio alaskensis in response to platinum and palladium
title_full Shotgun proteomic analysis of nanoparticle-synthesizing Desulfovibrio alaskensis in response to platinum and palladium
title_fullStr Shotgun proteomic analysis of nanoparticle-synthesizing Desulfovibrio alaskensis in response to platinum and palladium
title_full_unstemmed Shotgun proteomic analysis of nanoparticle-synthesizing Desulfovibrio alaskensis in response to platinum and palladium
title_short Shotgun proteomic analysis of nanoparticle-synthesizing Desulfovibrio alaskensis in response to platinum and palladium
title_sort shotgun proteomic analysis of nanoparticle-synthesizing desulfovibrio alaskensis in response to platinum and palladium
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7376266/
https://www.ncbi.nlm.nih.gov/pubmed/31361216
http://dx.doi.org/10.1099/mic.0.000840
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