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Development of a bioorthogonal fluorescence-based assay for assessing drug uptake and delivery in bacteria

Bioorthogonal chemistry can facilitate the development of fluorescent probes that can be used to sensitively and specifically detect the presence of biological targets. In this study, such an assay was developed to evaluate the uptake and delivery of antimicrobials into Escherichia coli, building on...

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Autores principales: Ooi, Jocelyn M. F., Fairhall, Jessica M., Spangler, Benjamin, Chong, Daniel J. W., Feng, Brian Y., Gamble, Allan B., Hook, Sarah
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9126673/
https://www.ncbi.nlm.nih.gov/pubmed/35685699
http://dx.doi.org/10.1039/d2ra02272a
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author Ooi, Jocelyn M. F.
Fairhall, Jessica M.
Spangler, Benjamin
Chong, Daniel J. W.
Feng, Brian Y.
Gamble, Allan B.
Hook, Sarah
author_facet Ooi, Jocelyn M. F.
Fairhall, Jessica M.
Spangler, Benjamin
Chong, Daniel J. W.
Feng, Brian Y.
Gamble, Allan B.
Hook, Sarah
author_sort Ooi, Jocelyn M. F.
collection PubMed
description Bioorthogonal chemistry can facilitate the development of fluorescent probes that can be used to sensitively and specifically detect the presence of biological targets. In this study, such an assay was developed to evaluate the uptake and delivery of antimicrobials into Escherichia coli, building on and extending previous work which utilised more resource intensive LCMS detection. The bacteria were genetically engineered to express streptavidin in the periplasmic or cytoplasmic compartments, which was used to localise a bioorthogonal probe (BCN-biotin). Azido-compounds which are delivered to these compartments react with the localised BCN-biotin–streptavidin in a concentration-dependent manner via a strain-promoted alkyne–azide cycloaddition. The amount of azido-compound taken up by bacteria was determined by quantifying unreacted BCN-biotin–streptavidin via an inverse electron demand Diels–Alder reaction between remaining BCN-biotin and a tetrazine-containing fluorescent dye. Following optimisation and validation, the assay was used to assess uptake of liposome-formulated azide-functionalised luciferin and cefoxitin. The results demonstrated that formulation into cationic liposomes improved the uptake of azide-functionalised compounds into the periplasm of E. coli, providing insight on the uptake mechanism of liposomes in the bacteria. This newly developed bioorthogonal fluorescence plate-reader based assay provides a bioactivity-independent, medium-to-high throughput tool for screening compound uptake/delivery.
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spelling pubmed-91266732022-06-08 Development of a bioorthogonal fluorescence-based assay for assessing drug uptake and delivery in bacteria Ooi, Jocelyn M. F. Fairhall, Jessica M. Spangler, Benjamin Chong, Daniel J. W. Feng, Brian Y. Gamble, Allan B. Hook, Sarah RSC Adv Chemistry Bioorthogonal chemistry can facilitate the development of fluorescent probes that can be used to sensitively and specifically detect the presence of biological targets. In this study, such an assay was developed to evaluate the uptake and delivery of antimicrobials into Escherichia coli, building on and extending previous work which utilised more resource intensive LCMS detection. The bacteria were genetically engineered to express streptavidin in the periplasmic or cytoplasmic compartments, which was used to localise a bioorthogonal probe (BCN-biotin). Azido-compounds which are delivered to these compartments react with the localised BCN-biotin–streptavidin in a concentration-dependent manner via a strain-promoted alkyne–azide cycloaddition. The amount of azido-compound taken up by bacteria was determined by quantifying unreacted BCN-biotin–streptavidin via an inverse electron demand Diels–Alder reaction between remaining BCN-biotin and a tetrazine-containing fluorescent dye. Following optimisation and validation, the assay was used to assess uptake of liposome-formulated azide-functionalised luciferin and cefoxitin. The results demonstrated that formulation into cationic liposomes improved the uptake of azide-functionalised compounds into the periplasm of E. coli, providing insight on the uptake mechanism of liposomes in the bacteria. This newly developed bioorthogonal fluorescence plate-reader based assay provides a bioactivity-independent, medium-to-high throughput tool for screening compound uptake/delivery. The Royal Society of Chemistry 2022-05-23 /pmc/articles/PMC9126673/ /pubmed/35685699 http://dx.doi.org/10.1039/d2ra02272a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ooi, Jocelyn M. F.
Fairhall, Jessica M.
Spangler, Benjamin
Chong, Daniel J. W.
Feng, Brian Y.
Gamble, Allan B.
Hook, Sarah
Development of a bioorthogonal fluorescence-based assay for assessing drug uptake and delivery in bacteria
title Development of a bioorthogonal fluorescence-based assay for assessing drug uptake and delivery in bacteria
title_full Development of a bioorthogonal fluorescence-based assay for assessing drug uptake and delivery in bacteria
title_fullStr Development of a bioorthogonal fluorescence-based assay for assessing drug uptake and delivery in bacteria
title_full_unstemmed Development of a bioorthogonal fluorescence-based assay for assessing drug uptake and delivery in bacteria
title_short Development of a bioorthogonal fluorescence-based assay for assessing drug uptake and delivery in bacteria
title_sort development of a bioorthogonal fluorescence-based assay for assessing drug uptake and delivery in bacteria
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9126673/
https://www.ncbi.nlm.nih.gov/pubmed/35685699
http://dx.doi.org/10.1039/d2ra02272a
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