Cargando…

A Novel Natural Siderophore Antibiotic Conjugate Reveals a Chemical Approach to Macromolecule Coupling

[Image: see text] Inspired by natural sideromycins, the conjugation of antibiotics to siderophores is an attractive strategy to facilitate “Trojan horse” delivery of antibiotics into bacteria. Genome analysis of a soil bacterium, Dactylosporangium fulvum, found a “hybrid” biosynthetic gene cluster r...

Descripción completa

Detalles Bibliográficos
Autores principales: Caradec, Thibault, Anoz-Carbonell, Ernesto, Petrov, Ravil, Billamboz, Muriel, Antraygues, Kevin, Cantrelle, Francois-Xavier, Boll, Emmanuelle, Beury, Delphine, Hot, David, Drobecq, Herve, Trivelli, Xavier, Hartkoorn, Ruben C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10683483/
https://www.ncbi.nlm.nih.gov/pubmed/38033789
http://dx.doi.org/10.1021/acscentsci.3c00965
_version_ 1785151206740459520
author Caradec, Thibault
Anoz-Carbonell, Ernesto
Petrov, Ravil
Billamboz, Muriel
Antraygues, Kevin
Cantrelle, Francois-Xavier
Boll, Emmanuelle
Beury, Delphine
Hot, David
Drobecq, Herve
Trivelli, Xavier
Hartkoorn, Ruben C.
author_facet Caradec, Thibault
Anoz-Carbonell, Ernesto
Petrov, Ravil
Billamboz, Muriel
Antraygues, Kevin
Cantrelle, Francois-Xavier
Boll, Emmanuelle
Beury, Delphine
Hot, David
Drobecq, Herve
Trivelli, Xavier
Hartkoorn, Ruben C.
author_sort Caradec, Thibault
collection PubMed
description [Image: see text] Inspired by natural sideromycins, the conjugation of antibiotics to siderophores is an attractive strategy to facilitate “Trojan horse” delivery of antibiotics into bacteria. Genome analysis of a soil bacterium, Dactylosporangium fulvum, found a “hybrid” biosynthetic gene cluster responsible for the production of both an antibiotic, pyridomycin, and a novel chlorocatechol-containing siderophore named chlorodactyloferrin. While both of these natural products were synthesized independently, analysis of the culture supernatant also identified a conjugate of both molecules. We then found that the addition of ferric iron to purified chlorodactyloferrin and pyridomycin instigated their conjugation, leading to the formation of a covalent bond between the siderophore-catechol and the pyridomycin-pyridine groups. Using model reactants, this iron-based reaction was found to proceed through a Michael-type addition reaction, where ferric iron oxidizes the siderophore-catechol group into its quinone form, which is then attacked by the antibiotic pyridyl-nitrogen to form the catechol–pyridinium linkage. These findings prompted us to explore if other “cargo” molecules could be attached to chlorodactyloferrin in a similar manner, and this was indeed confirmed with a pyridine-substituted TAMRA fluorophore as well as with pyridine-substituted penicillin, rifampicin, and norfloxacin antibiotic analogues. The resultant biomimetic conjugates were demonstrated to effectively enter a number of bacteria, with TAMRA–chlorodactyloferrin conjugates causing fluorescent labeling of the bacteria, and with penicillin and rifampicin conjugates eliciting antibiotic activity. These findings open up new opportunities for the design and facile synthesis of a novel class of biomimetic siderophore conjugates with antibiotic activity.
format Online
Article
Text
id pubmed-10683483
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-106834832023-11-30 A Novel Natural Siderophore Antibiotic Conjugate Reveals a Chemical Approach to Macromolecule Coupling Caradec, Thibault Anoz-Carbonell, Ernesto Petrov, Ravil Billamboz, Muriel Antraygues, Kevin Cantrelle, Francois-Xavier Boll, Emmanuelle Beury, Delphine Hot, David Drobecq, Herve Trivelli, Xavier Hartkoorn, Ruben C. ACS Cent Sci [Image: see text] Inspired by natural sideromycins, the conjugation of antibiotics to siderophores is an attractive strategy to facilitate “Trojan horse” delivery of antibiotics into bacteria. Genome analysis of a soil bacterium, Dactylosporangium fulvum, found a “hybrid” biosynthetic gene cluster responsible for the production of both an antibiotic, pyridomycin, and a novel chlorocatechol-containing siderophore named chlorodactyloferrin. While both of these natural products were synthesized independently, analysis of the culture supernatant also identified a conjugate of both molecules. We then found that the addition of ferric iron to purified chlorodactyloferrin and pyridomycin instigated their conjugation, leading to the formation of a covalent bond between the siderophore-catechol and the pyridomycin-pyridine groups. Using model reactants, this iron-based reaction was found to proceed through a Michael-type addition reaction, where ferric iron oxidizes the siderophore-catechol group into its quinone form, which is then attacked by the antibiotic pyridyl-nitrogen to form the catechol–pyridinium linkage. These findings prompted us to explore if other “cargo” molecules could be attached to chlorodactyloferrin in a similar manner, and this was indeed confirmed with a pyridine-substituted TAMRA fluorophore as well as with pyridine-substituted penicillin, rifampicin, and norfloxacin antibiotic analogues. The resultant biomimetic conjugates were demonstrated to effectively enter a number of bacteria, with TAMRA–chlorodactyloferrin conjugates causing fluorescent labeling of the bacteria, and with penicillin and rifampicin conjugates eliciting antibiotic activity. These findings open up new opportunities for the design and facile synthesis of a novel class of biomimetic siderophore conjugates with antibiotic activity. American Chemical Society 2023-11-10 /pmc/articles/PMC10683483/ /pubmed/38033789 http://dx.doi.org/10.1021/acscentsci.3c00965 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Caradec, Thibault
Anoz-Carbonell, Ernesto
Petrov, Ravil
Billamboz, Muriel
Antraygues, Kevin
Cantrelle, Francois-Xavier
Boll, Emmanuelle
Beury, Delphine
Hot, David
Drobecq, Herve
Trivelli, Xavier
Hartkoorn, Ruben C.
A Novel Natural Siderophore Antibiotic Conjugate Reveals a Chemical Approach to Macromolecule Coupling
title A Novel Natural Siderophore Antibiotic Conjugate Reveals a Chemical Approach to Macromolecule Coupling
title_full A Novel Natural Siderophore Antibiotic Conjugate Reveals a Chemical Approach to Macromolecule Coupling
title_fullStr A Novel Natural Siderophore Antibiotic Conjugate Reveals a Chemical Approach to Macromolecule Coupling
title_full_unstemmed A Novel Natural Siderophore Antibiotic Conjugate Reveals a Chemical Approach to Macromolecule Coupling
title_short A Novel Natural Siderophore Antibiotic Conjugate Reveals a Chemical Approach to Macromolecule Coupling
title_sort novel natural siderophore antibiotic conjugate reveals a chemical approach to macromolecule coupling
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10683483/
https://www.ncbi.nlm.nih.gov/pubmed/38033789
http://dx.doi.org/10.1021/acscentsci.3c00965
work_keys_str_mv AT caradecthibault anovelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT anozcarbonellernesto anovelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT petrovravil anovelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT billambozmuriel anovelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT antraygueskevin anovelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT cantrellefrancoisxavier anovelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT bollemmanuelle anovelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT beurydelphine anovelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT hotdavid anovelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT drobecqherve anovelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT trivellixavier anovelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT hartkoornrubenc anovelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT caradecthibault novelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT anozcarbonellernesto novelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT petrovravil novelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT billambozmuriel novelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT antraygueskevin novelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT cantrellefrancoisxavier novelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT bollemmanuelle novelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT beurydelphine novelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT hotdavid novelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT drobecqherve novelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT trivellixavier novelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling
AT hartkoornrubenc novelnaturalsiderophoreantibioticconjugaterevealsachemicalapproachtomacromoleculecoupling