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A bioorthogonal chemistry approach to detect the K1 polysialic acid capsule in Escherichia coli

Most Escherichia coli strains associated with neonatal meningitis express the K1 capsule, a sialic acid polysaccharide that is directly related to their pathogenicity. Metabolic oligosaccharide engineering (MOE) has mostly been developed in eukaryotes, but has also been successfully applied to the s...

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Autores principales: Rigolot, Vincent, Rossez, Yannick, Biot, Christophe, Lion, Cédric
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9906323/
https://www.ncbi.nlm.nih.gov/pubmed/36794016
http://dx.doi.org/10.1039/d2cb00219a
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author Rigolot, Vincent
Rossez, Yannick
Biot, Christophe
Lion, Cédric
author_facet Rigolot, Vincent
Rossez, Yannick
Biot, Christophe
Lion, Cédric
author_sort Rigolot, Vincent
collection PubMed
description Most Escherichia coli strains associated with neonatal meningitis express the K1 capsule, a sialic acid polysaccharide that is directly related to their pathogenicity. Metabolic oligosaccharide engineering (MOE) has mostly been developed in eukaryotes, but has also been successfully applied to the study of several oligosaccharides or polysaccharides constitutive of the bacterial cell wall. However, bacterial capsules are seldom targeted despite their important role as virulence factors, and the K1 polysialic acid (PSA) antigen that shields bacteria from the immune system still remains untackled. Herein, we report a fluorescence microplate assay that allows the fast and facile detection of K1 capsules with an approach that combines MOE and bioorthogonal chemistry. We exploit the incorporation of synthetic analogues of N-acetylmannosamine or N-acetylneuraminic acid, metabolic precursors of PSA, and copper-catalysed azide–alkyne cycloaddition (CuAAC) as the click chemistry reaction to specifically label the modified K1 antigen with a fluorophore. The method was optimized, validated by capsule purification and fluorescence microscopy, and applied to the detection of whole encapsulated bacteria in a miniaturized assay. We observe that analogues of ManNAc are readily incorporated into the capsule while those of Neu5Ac are less efficiently metabolized, which provides useful information regarding the capsule biosynthetic pathways and the promiscuity of the enzymes involved. Moreover, this microplate assay is transferable to screening approaches and may provide a platform to identify novel capsule-targeted antibiotics that would circumvent resistance issues.
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spelling pubmed-99063232023-02-14 A bioorthogonal chemistry approach to detect the K1 polysialic acid capsule in Escherichia coli Rigolot, Vincent Rossez, Yannick Biot, Christophe Lion, Cédric RSC Chem Biol Chemistry Most Escherichia coli strains associated with neonatal meningitis express the K1 capsule, a sialic acid polysaccharide that is directly related to their pathogenicity. Metabolic oligosaccharide engineering (MOE) has mostly been developed in eukaryotes, but has also been successfully applied to the study of several oligosaccharides or polysaccharides constitutive of the bacterial cell wall. However, bacterial capsules are seldom targeted despite their important role as virulence factors, and the K1 polysialic acid (PSA) antigen that shields bacteria from the immune system still remains untackled. Herein, we report a fluorescence microplate assay that allows the fast and facile detection of K1 capsules with an approach that combines MOE and bioorthogonal chemistry. We exploit the incorporation of synthetic analogues of N-acetylmannosamine or N-acetylneuraminic acid, metabolic precursors of PSA, and copper-catalysed azide–alkyne cycloaddition (CuAAC) as the click chemistry reaction to specifically label the modified K1 antigen with a fluorophore. The method was optimized, validated by capsule purification and fluorescence microscopy, and applied to the detection of whole encapsulated bacteria in a miniaturized assay. We observe that analogues of ManNAc are readily incorporated into the capsule while those of Neu5Ac are less efficiently metabolized, which provides useful information regarding the capsule biosynthetic pathways and the promiscuity of the enzymes involved. Moreover, this microplate assay is transferable to screening approaches and may provide a platform to identify novel capsule-targeted antibiotics that would circumvent resistance issues. RSC 2022-12-22 /pmc/articles/PMC9906323/ /pubmed/36794016 http://dx.doi.org/10.1039/d2cb00219a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Rigolot, Vincent
Rossez, Yannick
Biot, Christophe
Lion, Cédric
A bioorthogonal chemistry approach to detect the K1 polysialic acid capsule in Escherichia coli
title A bioorthogonal chemistry approach to detect the K1 polysialic acid capsule in Escherichia coli
title_full A bioorthogonal chemistry approach to detect the K1 polysialic acid capsule in Escherichia coli
title_fullStr A bioorthogonal chemistry approach to detect the K1 polysialic acid capsule in Escherichia coli
title_full_unstemmed A bioorthogonal chemistry approach to detect the K1 polysialic acid capsule in Escherichia coli
title_short A bioorthogonal chemistry approach to detect the K1 polysialic acid capsule in Escherichia coli
title_sort bioorthogonal chemistry approach to detect the k1 polysialic acid capsule in escherichia coli
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9906323/
https://www.ncbi.nlm.nih.gov/pubmed/36794016
http://dx.doi.org/10.1039/d2cb00219a
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