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The catechol moiety of obafluorin is essential for antibacterial activity

Obafluorin is a Pseudomonas fluorescens antibacterial natural product that inhibits threonyl-tRNA synthetase (ThrRS). It acts as a broad-spectrum antibiotic against a range of clinically relevant pathogens and comprises a strained β-lactone ring decorated with catechol and 4-nitro-benzyl moieties. T...

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Autores principales: Batey, Sibyl F. D., Davie, Melissa J., Hems, Edward S., Liston, Jonathon D., Scott, Thomas A., Alt, Silke, Francklyn, Christopher S., Wilkinson, Barrie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10619133/
https://www.ncbi.nlm.nih.gov/pubmed/37920400
http://dx.doi.org/10.1039/d3cb00127j
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author Batey, Sibyl F. D.
Davie, Melissa J.
Hems, Edward S.
Liston, Jonathon D.
Scott, Thomas A.
Alt, Silke
Francklyn, Christopher S.
Wilkinson, Barrie
author_facet Batey, Sibyl F. D.
Davie, Melissa J.
Hems, Edward S.
Liston, Jonathon D.
Scott, Thomas A.
Alt, Silke
Francklyn, Christopher S.
Wilkinson, Barrie
author_sort Batey, Sibyl F. D.
collection PubMed
description Obafluorin is a Pseudomonas fluorescens antibacterial natural product that inhibits threonyl-tRNA synthetase (ThrRS). It acts as a broad-spectrum antibiotic against a range of clinically relevant pathogens and comprises a strained β-lactone ring decorated with catechol and 4-nitro-benzyl moieties. The catechol moiety is widespread in nature and its role in the coordination of ferric iron has been well-characterised in siderophores and Trojan horse antibiotics. Here we use a combination of mutasynthesis, bioassays, enzyme assays and metal binding studies to delineate the role of the catechol moiety in the bioactivity of obafluorin. We use P. fluorescens biosynthetic mutants to generate obafluorin analogues with modified catechol moieties. We demonstrate that an intact catechol is required for both antibacterial activity and inhibition of the ThrRS molecular target. Although recent work showed that the obafluorin catechol coordinates Zn(2+) in the ThrRS active site, we find that obafluorin is a weak Zn(2+) binder in vitro, contrasting with a strong, specific 1 : 1 interaction with Fe(3+). We use bioassays with siderophore transporter mutants to probe the role of the obafluorin catechol in Fe(3+)-mediated uptake. Surprisingly, obafluorin does not behave as a Trojan horse antibiotic but instead exhibits increased antibacterial activity in the presence of Fe(3+). We further demonstrate that Fe(3+) binding prevents the hydrolytic breakdown of the β-lactone ring, revealing a hitherto unreported function for the catechol moiety in natural product bioactivity.
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spelling pubmed-106191332023-11-02 The catechol moiety of obafluorin is essential for antibacterial activity Batey, Sibyl F. D. Davie, Melissa J. Hems, Edward S. Liston, Jonathon D. Scott, Thomas A. Alt, Silke Francklyn, Christopher S. Wilkinson, Barrie RSC Chem Biol Chemistry Obafluorin is a Pseudomonas fluorescens antibacterial natural product that inhibits threonyl-tRNA synthetase (ThrRS). It acts as a broad-spectrum antibiotic against a range of clinically relevant pathogens and comprises a strained β-lactone ring decorated with catechol and 4-nitro-benzyl moieties. The catechol moiety is widespread in nature and its role in the coordination of ferric iron has been well-characterised in siderophores and Trojan horse antibiotics. Here we use a combination of mutasynthesis, bioassays, enzyme assays and metal binding studies to delineate the role of the catechol moiety in the bioactivity of obafluorin. We use P. fluorescens biosynthetic mutants to generate obafluorin analogues with modified catechol moieties. We demonstrate that an intact catechol is required for both antibacterial activity and inhibition of the ThrRS molecular target. Although recent work showed that the obafluorin catechol coordinates Zn(2+) in the ThrRS active site, we find that obafluorin is a weak Zn(2+) binder in vitro, contrasting with a strong, specific 1 : 1 interaction with Fe(3+). We use bioassays with siderophore transporter mutants to probe the role of the obafluorin catechol in Fe(3+)-mediated uptake. Surprisingly, obafluorin does not behave as a Trojan horse antibiotic but instead exhibits increased antibacterial activity in the presence of Fe(3+). We further demonstrate that Fe(3+) binding prevents the hydrolytic breakdown of the β-lactone ring, revealing a hitherto unreported function for the catechol moiety in natural product bioactivity. RSC 2023-08-21 /pmc/articles/PMC10619133/ /pubmed/37920400 http://dx.doi.org/10.1039/d3cb00127j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Batey, Sibyl F. D.
Davie, Melissa J.
Hems, Edward S.
Liston, Jonathon D.
Scott, Thomas A.
Alt, Silke
Francklyn, Christopher S.
Wilkinson, Barrie
The catechol moiety of obafluorin is essential for antibacterial activity
title The catechol moiety of obafluorin is essential for antibacterial activity
title_full The catechol moiety of obafluorin is essential for antibacterial activity
title_fullStr The catechol moiety of obafluorin is essential for antibacterial activity
title_full_unstemmed The catechol moiety of obafluorin is essential for antibacterial activity
title_short The catechol moiety of obafluorin is essential for antibacterial activity
title_sort catechol moiety of obafluorin is essential for antibacterial activity
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10619133/
https://www.ncbi.nlm.nih.gov/pubmed/37920400
http://dx.doi.org/10.1039/d3cb00127j
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