Deciphering the interplay between the genotoxic and probiotic activities of Escherichia coli Nissle 1917.

Although Escherichia coli Nissle 1917 (EcN) has been used therapeutically for over a century, the determinants of its probiotic properties remain elusive. EcN produces two siderophore-microcins (Mcc) responsible for an antagonistic activity against other Enterobacteriaceae. EcN also synthesizes the...

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Main Authors: Clémence Massip, Priscilla Branchu, Nadège Bossuet-Greif, Camille V Chagneau, Déborah Gaillard, Patricia Martin, Michèle Boury, Thomas Sécher, Damien Dubois, Jean-Philippe Nougayrède, Eric Oswald
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2019-09-01
Series:PLoS Pathogens
Online Access:https://doi.org/10.1371/journal.ppat.1008029
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spelling doaj-222c92eec38b4549939942a81f88c0492021-04-21T17:08:29ZengPublic Library of Science (PLoS)PLoS Pathogens1553-73661553-73742019-09-01159e100802910.1371/journal.ppat.1008029Deciphering the interplay between the genotoxic and probiotic activities of Escherichia coli Nissle 1917.Clémence MassipPriscilla BranchuNadège Bossuet-GreifCamille V ChagneauDéborah GaillardPatricia MartinMichèle BouryThomas SécherDamien DuboisJean-Philippe NougayrèdeEric OswaldAlthough Escherichia coli Nissle 1917 (EcN) has been used therapeutically for over a century, the determinants of its probiotic properties remain elusive. EcN produces two siderophore-microcins (Mcc) responsible for an antagonistic activity against other Enterobacteriaceae. EcN also synthesizes the genotoxin colibactin encoded by the pks island. Colibactin is a virulence factor and a putative pro-carcinogenic compound. Therefore, we aimed to decouple the antagonistic activity of EcN from its genotoxic activity. We demonstrated that the pks-encoded ClbP, the peptidase that activates colibactin, is required for the antagonistic activity of EcN. The analysis of a series of ClbP mutants revealed that this activity is linked to the transmembrane helices of ClbP and not the periplasmic peptidase domain, indicating the transmembrane domain is involved in some aspect of Mcc biosynthesis or secretion. A single amino acid substitution in ClbP inactivates the genotoxic activity but maintains the antagonistic activity. In an in vivo salmonellosis model, this point mutant reduced the clinical signs and the fecal shedding of Salmonella similarly to the wild type strain, whereas the clbP deletion mutant could neither protect nor outcompete the pathogen. The ClbP-dependent antibacterial effect was also observed in vitro with other E. coli strains that carry both a truncated form of the Mcc gene cluster and the pks island. In such strains, siderophore-Mcc synthesis also required the glucosyltransferase IroB involved in salmochelin production. This interplay between colibactin, salmochelin, and siderophore-Mcc biosynthetic pathways suggests that these genomic islands were co-selected and played a role in the evolution of E. coli from phylogroup B2. This co-evolution observed in EcN illustrates the fine margin between pathogenicity and probiotic activity, and the need to address both the effectiveness and safety of probiotics. Decoupling the antagonistic from the genotoxic activity by specifically inactivating ClbP peptidase domain opens the way to the safe use of EcN.https://doi.org/10.1371/journal.ppat.1008029
collection DOAJ
language English
format Article
sources DOAJ
author Clémence Massip
Priscilla Branchu
Nadège Bossuet-Greif
Camille V Chagneau
Déborah Gaillard
Patricia Martin
Michèle Boury
Thomas Sécher
Damien Dubois
Jean-Philippe Nougayrède
Eric Oswald
spellingShingle Clémence Massip
Priscilla Branchu
Nadège Bossuet-Greif
Camille V Chagneau
Déborah Gaillard
Patricia Martin
Michèle Boury
Thomas Sécher
Damien Dubois
Jean-Philippe Nougayrède
Eric Oswald
Deciphering the interplay between the genotoxic and probiotic activities of Escherichia coli Nissle 1917.
PLoS Pathogens
author_facet Clémence Massip
Priscilla Branchu
Nadège Bossuet-Greif
Camille V Chagneau
Déborah Gaillard
Patricia Martin
Michèle Boury
Thomas Sécher
Damien Dubois
Jean-Philippe Nougayrède
Eric Oswald
author_sort Clémence Massip
title Deciphering the interplay between the genotoxic and probiotic activities of Escherichia coli Nissle 1917.
title_short Deciphering the interplay between the genotoxic and probiotic activities of Escherichia coli Nissle 1917.
title_full Deciphering the interplay between the genotoxic and probiotic activities of Escherichia coli Nissle 1917.
title_fullStr Deciphering the interplay between the genotoxic and probiotic activities of Escherichia coli Nissle 1917.
title_full_unstemmed Deciphering the interplay between the genotoxic and probiotic activities of Escherichia coli Nissle 1917.
title_sort deciphering the interplay between the genotoxic and probiotic activities of escherichia coli nissle 1917.
publisher Public Library of Science (PLoS)
series PLoS Pathogens
issn 1553-7366
1553-7374
publishDate 2019-09-01
description Although Escherichia coli Nissle 1917 (EcN) has been used therapeutically for over a century, the determinants of its probiotic properties remain elusive. EcN produces two siderophore-microcins (Mcc) responsible for an antagonistic activity against other Enterobacteriaceae. EcN also synthesizes the genotoxin colibactin encoded by the pks island. Colibactin is a virulence factor and a putative pro-carcinogenic compound. Therefore, we aimed to decouple the antagonistic activity of EcN from its genotoxic activity. We demonstrated that the pks-encoded ClbP, the peptidase that activates colibactin, is required for the antagonistic activity of EcN. The analysis of a series of ClbP mutants revealed that this activity is linked to the transmembrane helices of ClbP and not the periplasmic peptidase domain, indicating the transmembrane domain is involved in some aspect of Mcc biosynthesis or secretion. A single amino acid substitution in ClbP inactivates the genotoxic activity but maintains the antagonistic activity. In an in vivo salmonellosis model, this point mutant reduced the clinical signs and the fecal shedding of Salmonella similarly to the wild type strain, whereas the clbP deletion mutant could neither protect nor outcompete the pathogen. The ClbP-dependent antibacterial effect was also observed in vitro with other E. coli strains that carry both a truncated form of the Mcc gene cluster and the pks island. In such strains, siderophore-Mcc synthesis also required the glucosyltransferase IroB involved in salmochelin production. This interplay between colibactin, salmochelin, and siderophore-Mcc biosynthetic pathways suggests that these genomic islands were co-selected and played a role in the evolution of E. coli from phylogroup B2. This co-evolution observed in EcN illustrates the fine margin between pathogenicity and probiotic activity, and the need to address both the effectiveness and safety of probiotics. Decoupling the antagonistic from the genotoxic activity by specifically inactivating ClbP peptidase domain opens the way to the safe use of EcN.
url https://doi.org/10.1371/journal.ppat.1008029
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