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Versatile microbial communities rapidly assimilate ammonium hydroxide-treated plastic waste

Waste plastic presently accumulates in landfills or the environment. While natural microbial metabolisms can degrade plastic polymers, biodegradation of plastic is very slow. This study demonstrates that chemical deconstruction of polyethylene terephthalate (PET) with ammonium hydroxide can replace...

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Autores principales: Schaerer, Laura G, Wood, Emily, Aloba, Sulihat, Byrne, Emily, Bashir, M Aamir, Baruah, Kaushik, Schumann, Elizabeth, Umlor, Libby, Wu, Ruochen, Lee, Hyeonseok, Orme, Christopher J, Wilson, Aaron D, Lacey, Jeffrey A, Ong, Rebecca G, Techtmann, Stephen M
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10124128/
https://www.ncbi.nlm.nih.gov/pubmed/37061790
http://dx.doi.org/10.1093/jimb/kuad008
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author Schaerer, Laura G
Wood, Emily
Aloba, Sulihat
Byrne, Emily
Bashir, M Aamir
Baruah, Kaushik
Schumann, Elizabeth
Umlor, Libby
Wu, Ruochen
Lee, Hyeonseok
Orme, Christopher J
Wilson, Aaron D
Lacey, Jeffrey A
Ong, Rebecca G
Techtmann, Stephen M
author_facet Schaerer, Laura G
Wood, Emily
Aloba, Sulihat
Byrne, Emily
Bashir, M Aamir
Baruah, Kaushik
Schumann, Elizabeth
Umlor, Libby
Wu, Ruochen
Lee, Hyeonseok
Orme, Christopher J
Wilson, Aaron D
Lacey, Jeffrey A
Ong, Rebecca G
Techtmann, Stephen M
author_sort Schaerer, Laura G
collection PubMed
description Waste plastic presently accumulates in landfills or the environment. While natural microbial metabolisms can degrade plastic polymers, biodegradation of plastic is very slow. This study demonstrates that chemical deconstruction of polyethylene terephthalate (PET) with ammonium hydroxide can replace the rate limiting step (depolymerization) and by producing plastic-derived terephthalic acid and terephthalic acid monoamide. The deconstructed PET (DCPET) is neutralized with phosphoric acid prior to bioprocessing, resulting in a product containing biologically accessible nitrogen and phosphorus from the process reactants. Three microbial consortia obtained from compost and sediment degraded DCPET in ultrapure water and scavenged river water without addition of nutrients. No statistically significant difference was observed in growth rate compared to communities grown on DCPET in minimal culture medium. The consortia were dominated by Rhodococcus spp., Hydrogenophaga spp., and many lower abundance genera. All taxa were related to species known to degrade aromatic compounds. Microbial consortia are known to confer flexibility in processing diverse substrates. To highlight this, we also demonstrate that two microbial consortia can grow on similarly deconstructed polyesters, polyamides, and polyurethanes in water instead of medium. Our findings suggest that microbial communities may enable flexible bioprocessing of mixed plastic wastes when coupled with chemical deconstruction.
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spelling pubmed-101241282023-04-25 Versatile microbial communities rapidly assimilate ammonium hydroxide-treated plastic waste Schaerer, Laura G Wood, Emily Aloba, Sulihat Byrne, Emily Bashir, M Aamir Baruah, Kaushik Schumann, Elizabeth Umlor, Libby Wu, Ruochen Lee, Hyeonseok Orme, Christopher J Wilson, Aaron D Lacey, Jeffrey A Ong, Rebecca G Techtmann, Stephen M J Ind Microbiol Biotechnol Environmental Microbiology Waste plastic presently accumulates in landfills or the environment. While natural microbial metabolisms can degrade plastic polymers, biodegradation of plastic is very slow. This study demonstrates that chemical deconstruction of polyethylene terephthalate (PET) with ammonium hydroxide can replace the rate limiting step (depolymerization) and by producing plastic-derived terephthalic acid and terephthalic acid monoamide. The deconstructed PET (DCPET) is neutralized with phosphoric acid prior to bioprocessing, resulting in a product containing biologically accessible nitrogen and phosphorus from the process reactants. Three microbial consortia obtained from compost and sediment degraded DCPET in ultrapure water and scavenged river water without addition of nutrients. No statistically significant difference was observed in growth rate compared to communities grown on DCPET in minimal culture medium. The consortia were dominated by Rhodococcus spp., Hydrogenophaga spp., and many lower abundance genera. All taxa were related to species known to degrade aromatic compounds. Microbial consortia are known to confer flexibility in processing diverse substrates. To highlight this, we also demonstrate that two microbial consortia can grow on similarly deconstructed polyesters, polyamides, and polyurethanes in water instead of medium. Our findings suggest that microbial communities may enable flexible bioprocessing of mixed plastic wastes when coupled with chemical deconstruction. Oxford University Press 2023-04-14 /pmc/articles/PMC10124128/ /pubmed/37061790 http://dx.doi.org/10.1093/jimb/kuad008 Text en © The Author(s) 2023. Published by Oxford University Press on behalf of Society of Industrial Microbiology and Biotechnology. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Environmental Microbiology
Schaerer, Laura G
Wood, Emily
Aloba, Sulihat
Byrne, Emily
Bashir, M Aamir
Baruah, Kaushik
Schumann, Elizabeth
Umlor, Libby
Wu, Ruochen
Lee, Hyeonseok
Orme, Christopher J
Wilson, Aaron D
Lacey, Jeffrey A
Ong, Rebecca G
Techtmann, Stephen M
Versatile microbial communities rapidly assimilate ammonium hydroxide-treated plastic waste
title Versatile microbial communities rapidly assimilate ammonium hydroxide-treated plastic waste
title_full Versatile microbial communities rapidly assimilate ammonium hydroxide-treated plastic waste
title_fullStr Versatile microbial communities rapidly assimilate ammonium hydroxide-treated plastic waste
title_full_unstemmed Versatile microbial communities rapidly assimilate ammonium hydroxide-treated plastic waste
title_short Versatile microbial communities rapidly assimilate ammonium hydroxide-treated plastic waste
title_sort versatile microbial communities rapidly assimilate ammonium hydroxide-treated plastic waste
topic Environmental Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10124128/
https://www.ncbi.nlm.nih.gov/pubmed/37061790
http://dx.doi.org/10.1093/jimb/kuad008
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