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1.
Antimicrob Agents Chemother ; 68(5): e0143923, 2024 May 02.
Artículo en Inglés | MEDLINE | ID: mdl-38591854

RESUMEN

Phage therapy has (re)emerged as a serious possibility for combating multidrug-resistant bacterial infections, including those caused by vancomycin-resistant Enterococcus faecium strains. These opportunistic pathogens belong to a specific clonal complex 17, against which relatively few phages have been screened. We isolated a collection of 21 virulent phages growing on these vancomycin-resistant isolates. Each of these phages harbored a typical narrow plaquing host range, lysing at most 5 strains and covering together 10 strains of our panel of 14 clinical isolates. To enlarge the host spectrum of our phages, the Appelmans protocol was used. We mixed four out of our most complementary phages in a cocktail that we iteratively grew on eight naive strains from our panel, of which six were initially refractory to at least three of the combined phages. Fifteen successive passages permitted to significantly improve the lytic activity of the cocktail, from which phages with extended host ranges within the E. faecium species could be isolated. A single evolved phage able to kill up to 10 of the 14 initial E. faecium strains was obtained, and it barely infected nearby species. All evolved phages had acquired point mutations or a recombination event in the tail fiber genetic region, suggesting these genes might have driven phage evolution by contributing to their extended host spectra.


Asunto(s)
Bacteriófagos , Enterococcus faecium , Especificidad del Huésped , Enterococos Resistentes a la Vancomicina , Enterococcus faecium/efectos de los fármacos , Bacteriófagos/genética , Enterococos Resistentes a la Vancomicina/efectos de los fármacos , Terapia de Fagos/métodos , Infecciones por Bacterias Grampositivas/microbiología , Resistencia a la Vancomicina , Vancomicina/farmacología , Humanos , Antibacterianos/farmacología
2.
ISME Commun ; 1(1): 55, 2021 Oct 25.
Artículo en Inglés | MEDLINE | ID: mdl-37938642

RESUMEN

Understanding the transmission of antibiotic resistance genes (ARGs) is critical for human health. For this, it is necessary to identify which type of mobile genetic elements is able to spread them from animal reservoirs into human pathogens. Previous research suggests that in pig feces, ARGs may be encoded by bacteriophages. However, convincing proof for phage-encoded ARGs in pig viromes is still lacking, because of bacterial DNA contaminating issues. We collected 14 pig fecal samples and performed deep sequencing on both highly purified viral fractions and total microbiota, in order to investigate phage and prophage-encoded ARGs. We show that ARGs are absent from the genomes of active, virion-forming phages (below 0.02% of viral contigs from viromes), but present in three prophages, representing 0.02% of the viral contigs identified in the microbial dataset. However, the corresponding phages were not detected in the viromes, and their genetic maps suggest they might be defective. We conclude that among pig fecal samples, phages and prophages rarely carry ARG. Furthermore, our dataset allows for the first time a comprehensive view of the interplay between prophages and viral particles, and uncovers two large clades, inoviruses and Oengus-like phages.

3.
Nat Commun ; 11(1): 378, 2020 01 17.
Artículo en Inglés | MEDLINE | ID: mdl-31953385

RESUMEN

Bacteriophages constitute an important part of the human gut microbiota, but their impact on this community is largely unknown. Here, we cultivate temperate phages produced by 900 E. coli strains isolated from 648 fecal samples from 1-year-old children and obtain coliphages directly from the viral fraction of the same fecal samples. We find that 63% of strains hosted phages, while 24% of the viromes contain phages targeting E. coli. 150 of these phages, half recovered from strain supernatants, half from virome (73% temperate and 27% virulent) were tested for their host range on 75 E. coli strains isolated from the same cohort. Temperate phages barely infected the gut strains, whereas virulent phages killed up to 68% of them. We conclude that in fecal samples from children, temperate coliphages dominate, while virulent ones have greater infectivity and broader host range, likely playing a role in gut microbiota dynamics.


Asunto(s)
Colifagos/fisiología , Escherichia coli/virología , Heces/virología , Proteínas Portadoras , Colifagos/clasificación , Colifagos/genética , Colifagos/aislamiento & purificación , Escherichia coli/clasificación , Escherichia coli/aislamiento & purificación , Heces/microbiología , Microbioma Gastrointestinal , Genoma Viral , Especificidad del Huésped , Humanos , Lactante , Lisogenia , Especificidad de la Especie
4.
ISME J ; 14(3): 771-787, 2020 03.
Artículo en Inglés | MEDLINE | ID: mdl-31827247

RESUMEN

Despite an overall temporal stability in time of the human gut microbiota at the phylum level, strong variations in species abundance have been observed. We are far from a clear understanding of what promotes or disrupts the stability of microbiome communities. Environmental factors, like food or antibiotic use, modify the gut microbiota composition, but their overall impacts remain relatively low. Phages, the viruses that infect bacteria, might constitute important factors explaining temporal variations in species abundance. Gut bacteria harbour numerous prophages, or dormant viruses, which can evolve to become ultravirulent phage mutants, potentially leading to important bacterial death. Whether such phenomenon occurs in the mammal's microbiota has been largely unexplored. Here we studied temperate phage-bacteria coevolution in gnotoxenic mice colonised with Roseburia intestinalis, a dominant symbiont of the human gut microbiota, and Escherichia coli, a sub-dominant member of the same microbiota. We show that R. intestinalis L1-82 harbours two active prophages, Jekyll and Shimadzu. We observed the systematic evolution in mice of ultravirulent Shimadzu phage mutants, which led to a collapse of R. intestinalis population. In a second step, phage infection drove the fast counter-evolution of host phage resistance mainly through phage-derived spacer acquisition in a clustered regularly interspaced short palindromic repeats array. Alternatively, phage resistance was conferred by a prophage originating from an ultravirulent phage with a restored ability to lysogenize. Our results demonstrate that prophages are a potential source of ultravirulent phages that can successfully infect most of the susceptible bacteria. This suggests that prophages can play important roles in the short-term temporal variations observed in the composition of the gut microbiota.


Asunto(s)
Clostridiales/genética , Clostridiales/virología , Microbioma Gastrointestinal , Ratones/microbiología , Ratones/virología , Profagos/fisiología , Animales , Bacteriófagos/genética , Bacteriófagos/aislamiento & purificación , Bacteriófagos/fisiología , Repeticiones Palindrómicas Cortas Agrupadas y Regularmente Espaciadas , Heces/microbiología , Femenino , Humanos , Lisogenia , Ratones Endogámicos C3H , Profagos/genética , Profagos/aislamiento & purificación
5.
Viruses ; 11(1)2019 01 10.
Artículo en Inglés | MEDLINE | ID: mdl-30634666

RESUMEN

Enterococcus faecalis is an opportunistic pathogen that has emerged as a major cause of nosocomial infections worldwide. Many clinical strains are indeed resistant to last resort antibiotics and there is consequently a reawakening of interest in exploiting virulent phages to combat them. However, little is still known about phage receptors and phage resistance mechanisms in enterococci. We made use of a prophageless derivative of the well-known clinical strain E. faecalis V583 to isolate a virulent phage belonging to the Picovirinae subfamily and to the P68 genus that we named Idefix. Interestingly, most isolates of E. faecalis tested-including V583-were resistant to this phage and we investigated more deeply into phage resistance mechanisms. We found that E. faecalis V583 prophage 6 was particularly efficient in resisting Idefix infection thanks to a new abortive infection (Abi) mechanism, which we designated Abiα. It corresponded to the Pfam domain family with unknown function DUF4393 and conferred a typical Abi phenotype by causing a premature lysis of infected E. faecalis. The abiα gene is widespread among prophages of enterococci and other Gram-positive bacteria. Furthermore, we identified two genes involved in the synthesis of the side chains of the surface rhamnopolysaccharide that are important for Idefix adsorption. Interestingly, mutants in these genes arose at a frequency of ~10-4 resistant mutants per generation, conferring a supplemental bacterial line of defense against Idefix.


Asunto(s)
Bacteriófagos/patogenicidad , Enterococcus faecalis/genética , Enterococcus faecalis/virología , Podoviridae/patogenicidad , Bacteriófagos/aislamiento & purificación , Genoma Viral , Fenotipo , Profagos/genética , Aguas del Alcantarillado/virología , Virulencia , Secuenciación Completa del Genoma
6.
Microbiome ; 6(1): 65, 2018 04 03.
Artículo en Inglés | MEDLINE | ID: mdl-29615108

RESUMEN

BACKGROUND: Viral metagenomic studies have suggested a role for bacteriophages in intestinal dysbiosis associated with several human diseases. However, interpretation of viral metagenomic studies is limited by the lack of knowledge of phages infecting major human gut commensal bacteria, such as Faecalibacterium prausnitzii, a bacterial symbiont repeatedly found depleted in inflammatory bowel disease (IBD) patients. In particular, no complete genomes of phages infecting F. prausnitzii are present in viral databases. METHODS: We identified 18 prophages in 15 genomes of F. prausnitzii, used comparative genomics to define eight phage clades, and annotated the genome of the type phage of each clade. For two of the phages, we studied prophage induction in vitro and in vivo in mice. Finally, we aligned reads from already published viral metagenomic data onto the newly identified phages. RESULTS: We show that each phage clade represents a novel viral genus and that a surprisingly large fraction of them (10 of the 18 phages) codes for a diversity-generating retroelement, which could contribute to their adaptation to the digestive tract environment. We obtained either experimental or in silico evidence of activity for at least one member of each genus. In addition, four of these phages are either significantly more prevalent or more abundant in stools of IBD patients than in those of healthy controls. CONCLUSION: Since IBD patients generally have less F. prausnitzii in their microbiota than healthy controls, the higher prevalence or abundance of some of its phages may indicate that they are activated during disease. This in turn suggests that phages could trigger or aggravate F. prausnitzii depletion in patients. Our results show that prophage detection in sequenced strains of the microbiota can usefully complement viral metagenomic studies.


Asunto(s)
Bacteriófagos/fisiología , Faecalibacterium prausnitzii/virología , Microbioma Gastrointestinal , Animales , Bacteriófagos/ultraestructura , Biodiversidad , Colitis/etiología , Daño del ADN , Disbiosis , Genoma Viral , Humanos , Enfermedades Inflamatorias del Intestino/etiología , Metagenoma , Metagenómica/métodos , Ratones , Retroelementos , Simbiosis
7.
PLoS Genet ; 12(2): e1005861, 2016 Feb.
Artículo en Inglés | MEDLINE | ID: mdl-26871586

RESUMEN

Temperate phages, the bacterial viruses able to enter in a dormant prophage state in bacterial genomes, are present in the majority of bacterial strains for which the genome sequence is available. Although these prophages are generally considered to increase their hosts' fitness by bringing beneficial genes, studies demonstrating such effects in ecologically relevant environments are relatively limited to few bacterial species. Here, we investigated the impact of prophage carriage in the gastrointestinal tract of monoxenic mice. Combined with mathematical modelling, these experimental results provided a quantitative estimation of key parameters governing phage-bacteria interactions within this model ecosystem. We used wild-type and mutant strains of the best known host/phage pair, Escherichia coli and phage λ. Unexpectedly, λ prophage caused a significant fitness cost for its carrier, due to an induction rate 50-fold higher than in vitro, with 1 to 2% of the prophage being induced. However, when prophage carriers were in competition with isogenic phage susceptible bacteria, the prophage indirectly benefited its carrier by killing competitors: infection of susceptible bacteria led to phage lytic development in about 80% of cases. The remaining infected bacteria were lysogenized, resulting overall in the rapid lysogenization of the susceptible lineage. Moreover, our setup enabled to demonstrate that rare events of phage gene capture by homologous recombination occurred in the intestine of monoxenic mice. To our knowledge, this study constitutes the first quantitative characterization of temperate phage-bacteria interactions in a simplified gut environment. The high prophage induction rate detected reveals DNA damage-mediated SOS response in monoxenic mouse intestine. We propose that the mammalian gut, the most densely populated bacterial ecosystem on earth, might foster bacterial evolution through high temperate phage activity.


Asunto(s)
Bacteriófago lambda/fisiología , Escherichia coli/virología , Tracto Gastrointestinal/virología , Interacciones Huésped-Patógeno/fisiología , Activación Viral/fisiología , Latencia del Virus/fisiología , Animales , Bacteriófago lambda/crecimiento & desarrollo , Bacteriófago lambda/patogenicidad , Recuento de Colonia Microbiana , Transferencia de Gen Horizontal , Lisogenia , Ratones , Modelos Biológicos , Mutación/genética , Virulencia
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