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1.
Mol Cell ; 79(5): 857-869.e3, 2020 09 03.
Artigo em Inglês | MEDLINE | ID: mdl-32681820

RESUMO

Sister-chromatid cohesion describes the orderly association of newly replicated DNA molecules behind replication forks. It plays an essential role in the maintenance and faithful transmission of genetic information. Cohesion is created by DNA topological links and proteinaceous bridges, whose formation and deposition could be potentially affected by many processes. Current knowledge on cohesion has been mainly gained by fluorescence microscopy observation. However, the resolution limit of microscopy and the restricted number of genomic positions that can be simultaneously visualized considerably hampered progress. Here, we present a high-throughput methodology to monitor sister-chromatid contacts (Hi-SC2). Using the multi-chromosomal Vibrio cholerae bacterium as a model, we show that Hi-SC2 permits to monitor local variations in sister-chromatid cohesion at a high resolution over a whole genome.


Assuntos
Cromátides/fisiologia , Técnicas Genéticas , Vibrio cholerae/genética , Cromossomos Bacterianos/fisiologia , Replicação do DNA , DNA Bacteriano , Sequenciamento de Nucleotídeos em Larga Escala , Integrases/metabolismo , Conformação de Ácido Nucleico
2.
Nucleic Acids Res ; 50(11): 6368-6383, 2022 06 24.
Artigo em Inglês | MEDLINE | ID: mdl-35657090

RESUMO

The chromosome dimer resolution machinery of bacteria is generally composed of two tyrosine recombinases, XerC and XerD. They resolve chromosome dimers by adding a crossover between sister copies of a specific site, dif. The reaction depends on a cell division protein, FtsK, which activates XerD by protein-protein interactions. The toxin-linked cryptic satellite phage (TLCΦ) of Vibrio cholerae, which participates in the emergence of cholera epidemic strains, carries a dif-like attachment site (attP). TLCΦ exploits the Xer machinery to integrate into the dif site of its host chromosomes. The TLCΦ integration reaction escapes the control of FtsK because TLCΦ encodes for its own XerD-activation factor, XafT. Additionally, TLCΦ attP is a poor substrate for XerD binding, in apparent contradiction with the high integration efficiency of the phage. Here, we present a sequencing-based methodology to analyse the integration and excision efficiency of thousands of synthetic mini-TLCΦ plasmids with differing attP sites in vivo. This methodology is applicable to the fine-grained analyses of DNA transactions on a wider scale. In addition, we compared the efficiency with which XafT and the XerD-activation domain of FtsK drive recombination reactions in vitro. Our results suggest that XafT not only activates XerD-catalysis but also helps form and/or stabilize synaptic complexes between imperfect Xer recombination sites.


Assuntos
Bacteriófagos , Integrases , Vibrio cholerae , Proteínas Virais/metabolismo , Bacteriófagos/genética , Bacteriófagos/metabolismo , Sequência de Bases , Proteínas de Escherichia coli/metabolismo , Integrases/genética , Integrases/metabolismo , Plasmídeos , Recombinases/genética , Recombinação Genética , Vibrio cholerae/genética , Vibrio cholerae/metabolismo , Vibrio cholerae/virologia , Proteínas Virais/genética
3.
Proc Natl Acad Sci U S A ; 116(37): 18391-18396, 2019 09 10.
Artigo em Inglês | MEDLINE | ID: mdl-31420511

RESUMO

The circular chromosomes of bacteria can be concatenated into dimers by homologous recombination. Dimers are solved by the addition of a cross-over at a specific chromosomal site, dif, by 2 related tyrosine recombinases, XerC and XerD. Each enzyme catalyzes the exchange of a specific pair of strands. Some plasmids exploit the Xer machinery for concatemer resolution. Other mobile elements exploit it to integrate into the genome of their host. Chromosome dimer resolution is initiated by XerD. The reaction is under the control of a cell-division protein, FtsK, which activates XerD by a direct contact. Most mobile elements exploit FtsK-independent Xer recombination reactions initiated by XerC. The only notable exception is the toxin-linked cryptic satellite phage of Vibrio cholerae, TLCΦ, which integrates into and excises from the dif site of the primary chromosome of its host by a reaction initiated by XerD. However, the reaction remains independent of FtsK. Here, we show that TLCΦ carries a Xer recombination activation factor, XafT. We demonstrate in vitro that XafT activates XerD catalysis. Correspondingly, we found that XafT specifically interacts with XerD. We further show that integrative mobile elements exploiting Xer (IMEXs) encoding a XafT-like protein are widespread in gamma- and beta-proteobacteria, including human, animal, and plant pathogens.


Assuntos
Bacteriófagos/genética , Integrases/metabolismo , Recombinases/metabolismo , Recombinação Genética , Vibrio cholerae/metabolismo , Vibrio cholerae/virologia , Proteínas de Bactérias/metabolismo , Sequência de Bases , Toxina da Cólera , Cromossomos Bacterianos/genética , Escherichia coli/metabolismo , Proteínas de Escherichia coli , Integrases/genética , Proteínas de Membrana/genética , Plasmídeos , Vibrio cholerae/genética
4.
Appl Environ Microbiol ; 87(5)2021 03 01.
Artigo em Inglês | MEDLINE | ID: mdl-33355111

RESUMO

Vibrio cholerae, the agent of the deadly human disease cholera, propagates as a curved rod-shaped bacterium in warm waters. It is sensitive to cold, but persists in cold waters under the form of viable but non-dividing coccoidal shaped cells. Additionally, V. cholerae is able to form non-proliferating spherical cells in response to cell wall damage. It was recently reported that L-arabinose, a component of the hemicellulose and pectin of terrestrial plants, stops the growth of V. cholerae. Here, we show that L-arabinose induces the formation of spheroplasts that lose the ability to divide and stop growing in volume over time. However, they remain viable and upon removal of L-arabinose they start expanding in volume, form branched structures and give rise to cells with a normal morphology after a few divisions. We further show that WigKR, a histidine kinase/response regulator pair implicated in the induction of a high expression of cell wall synthetic genes, prevents the lysis of the spheroplasts during growth restart. Finally, we show that the physiological perturbations result from the import and catabolic processing of L-arabinose by the V. cholerae homolog of the E. coli galactose transport and catabolic system. Taken together, our results suggest that the formation of non-growing spherical cells is a common response of Vibrios exposed to detrimental conditions. They also permit to define conditions preventing any physiological perturbation of V. cholerae when using L-arabinose to induce gene expression from the tightly regulated promoter of the Escherichia coli araBAD operon.Importance Vibrios among other bacteria form transient cell wall deficient forms as a response to different stresses and revert to proliferating rods when permissive conditions have been restored. Such cellular forms have been associated to antimicrobial tolerance, chronic infections and environmental dispersion.The effect of L-Ara on V. cholerae could provide an easily tractable model to study the ability of Vibrios to form viable reversible spheroplasts. Indeed, the quick transition to spheroplasts and reversion to proliferating rods by addition or removal of L-Ara is ideal to understand the genetic program governing this physiological state and the spatial rearrangements of the cellular machineries during cell shape transitions.

5.
PLoS Genet ; 14(3): e1007256, 2018 03.
Artigo em Inglês | MEDLINE | ID: mdl-29522563

RESUMO

It was recently reported that the recBC mutants of Escherichia coli, deficient for DNA double-strand break (DSB) repair, have a decreased copy number of their terminus region. We previously showed that this deficit resulted from DNA loss after post-replicative breakage of one of the two sister-chromosome termini at cell division. A viable cell and a dead cell devoid of terminus region were thus produced and, intriguingly, the reaction was transmitted to the following generations. Using genome marker frequency profiling and observation by microscopy of specific DNA loci within the terminus, we reveal here the origin of this phenomenon. We observed that terminus DNA loss was reduced in a recA mutant by the double-strand DNA degradation activity of RecBCD. The terminus-less cell produced at the first cell division was less prone to divide than the one produced at the next generation. DNA loss was not heritable if the chromosome was linearized in the terminus and occurred at chromosome termini that were unable to segregate after replication. We propose that in a recB mutant replication fork breakage results in the persistence of a linear DNA tail attached to a circular chromosome. Segregation of the linear and circular parts of this "σ-replicating chromosome" causes terminus DNA breakage during cell division. One daughter cell inherits a truncated linear chromosome and is not viable. The other inherits a circular chromosome attached to a linear tail ending in the chromosome terminus. Replication extends this tail, while degradation of its extremity results in terminus DNA loss. Repeated generation and segregation of new σ-replicating chromosomes explains the heritability of post-replicative breakage. Our results allow us to determine that in E. coli at each generation, 18% of cells are subject to replication fork breakage at dispersed, potentially random, chromosomal locations.


Assuntos
Cromossomos Bacterianos , Quebras de DNA de Cadeia Dupla , Replicação do DNA , DNA Bacteriano/genética , DNA Circular/genética , Escherichia coli/genética , Divisão Celular , Reparo do DNA , Escherichia coli/citologia , Proteínas de Escherichia coli/metabolismo , Exodesoxirribonuclease V/metabolismo , Microscopia de Fluorescência , Modelos Biológicos , Mutação
6.
PLoS Genet ; 13(3): e1006702, 2017 03.
Artigo em Inglês | MEDLINE | ID: mdl-28358835

RESUMO

Homologous recombination between the circular chromosomes of bacteria can generate chromosome dimers. They are resolved by a recombination event at a specific site in the replication terminus of chromosomes, dif, by dedicated tyrosine recombinases. The reaction is under the control of a cell division protein, FtsK, which assembles into active DNA pumps at mid-cell during septum formation. Previous studies suggested that activation of Xer recombination at dif was restricted to chromosome dimers in Escherichia coli but not in Vibrio cholerae, suggesting that FtsK mainly acted on chromosome dimers in E. coli but frequently processed monomeric chromosomes in V. cholerae. However, recent microscopic studies suggested that E. coli FtsK served to release the MatP-mediated cohesion and/or cell division apparatus-interaction of sister copies of the dif region independently of chromosome dimer formation. Here, we show that these apparently paradoxical observations are not linked to any difference in the dimer resolution machineries of E. coli and V. cholerae but to differences in the timing of segregation of their chromosomes. V. cholerae harbours two circular chromosomes, chr1 and chr2. We found that whatever the growth conditions, sister copies of the V. cholerae chr1 dif region remain together at mid-cell until the onset of constriction, which permits their processing by FtsK and the activation of dif-recombination. Likewise, sister copies of the dif region of the E. coli chromosome only separate after the onset of constriction in slow growth conditions. However, under fast growth conditions the dif sites separate before constriction, which restricts XerCD-dif activity to resolving chromosome dimers.


Assuntos
Cromossomos Bacterianos/genética , Proteínas de Escherichia coli/genética , Escherichia coli/genética , Recombinação Homóloga/genética , Proteínas de Membrana/genética , Ciclo Celular/genética , Divisão Celular/genética , Proteínas Cromossômicas não Histona/genética , DNA Circular/genética , Escherichia coli/crescimento & desenvolvimento , Integrases/genética , Imagem Óptica , Recombinases/genética , Vibrio cholerae/genética , Vibrio cholerae/crescimento & desenvolvimento
7.
PLoS Genet ; 13(10): e1006895, 2017 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-28968392

RESUMO

Marker frequency analysis of the Escherichia coli recB mutant chromosome has revealed a deficit of DNA in a specific zone of the terminus, centred on the dif/TerC region. Using fluorescence microscopy of a marked chromosomal site, we show that the dif region is lost after replication completion, at the time of cell division, in one daughter cell only, and that the phenomenon is transmitted to progeny. Analysis by marker frequency and microscopy shows that the position of DNA loss is not defined by the replication fork merging point since it still occurs in the dif/TerC region when the replication fork trap is displaced in strains harbouring ectopic Ter sites. Terminus DNA loss in the recB mutant is also independent of dimer resolution by XerCD at dif and of Topo IV action close to dif. It occurs in the terminus region, at the point of inversion of the GC skew, which is also the point of convergence of specific sequence motifs like KOPS and Chi sites, regardless of whether the convergence of GC skew is at dif (wild-type) or a newly created sequence. In the absence of FtsK-driven DNA translocation, terminus DNA loss is less precisely targeted to the KOPS convergence sequence, but occurs at a similar frequency and follows the same pattern as in FtsK+ cells. Importantly, using ftsIts, ftsAts division mutants and cephalexin treated cells, we show that DNA loss of the dif region in the recB mutant is decreased by the inactivation of cell division. We propose that it results from septum-induced chromosome breakage, and largely contributes to the low viability of the recB mutant.


Assuntos
Cromossomos Bacterianos/genética , Quebras de DNA de Cadeia Dupla , Proteínas de Escherichia coli/genética , Escherichia coli/genética , Exodesoxirribonuclease V/genética , Divisão Celular , Reparo do DNA , Replicação do DNA , DNA Bacteriano/genética , Proteínas de Escherichia coli/metabolismo , Exodesoxirribonuclease V/metabolismo , Análise de Sequência de DNA
8.
Nucleic Acids Res ; 45(12): 7527-7537, 2017 Jul 07.
Artigo em Inglês | MEDLINE | ID: mdl-28575400

RESUMO

Recently, we described a method for multiplex genome editing by natural transformation (MuGENT). Mutant constructs for MuGENT require large arms of homology (>2000 bp) surrounding each genome edit, which necessitates laborious in vitro DNA splicing. In Vibrio cholerae, we uncover that this requirement is due to cytoplasmic ssDNA exonucleases, which inhibit natural transformation. In ssDNA exonuclease mutants, one arm of homology can be reduced to as little as 40 bp while still promoting integration of genome edits at rates of ∼50% without selection in cis. Consequently, editing constructs are generated in a single polymerase chain reaction where one homology arm is oligonucleotide encoded. To further enhance editing efficiencies, we also developed a strain for transient inactivation of the mismatch repair system. As a proof-of-concept, we used these advances to rapidly mutate 10 high-affinity binding sites for the nucleoid occlusion protein SlmA and generated a duodecuple mutant of 12 diguanylate cyclases in V. cholerae. Whole genome sequencing revealed little to no off-target mutations in these strains. Finally, we show that ssDNA exonucleases inhibit natural transformation in Acinetobacter baylyi. Thus, rational removal of ssDNA exonucleases may be broadly applicable for enhancing the efficacy and ease of MuGENT in diverse naturally transformable species.


Assuntos
Proteínas de Bactérias/genética , Exonucleases/genética , Edição de Genes/métodos , Genoma Bacteriano , Transformação Bacteriana , Acinetobacter/genética , Acinetobacter/metabolismo , Proteínas de Bactérias/antagonistas & inibidores , Proteínas de Bactérias/metabolismo , Reparo de Erro de Pareamento de DNA , DNA Bacteriano/genética , DNA Bacteriano/metabolismo , DNA de Cadeia Simples/genética , DNA de Cadeia Simples/metabolismo , Proteínas de Escherichia coli/genética , Proteínas de Escherichia coli/metabolismo , Exonucleases/antagonistas & inibidores , Exonucleases/deficiência , Recombinação Homóloga , Reação em Cadeia da Polimerase Multiplex/métodos , Mutação , Fósforo-Oxigênio Liases/genética , Fósforo-Oxigênio Liases/metabolismo , Vibrio cholerae/genética , Vibrio cholerae/metabolismo
9.
PLoS Genet ; 11(5): e1005256, 2015 May.
Artigo em Inglês | MEDLINE | ID: mdl-25992634

RESUMO

The Vibrio cholerae bacterium is the agent of cholera. The capacity to produce the cholera toxin, which is responsible for the deadly diarrhea associated with cholera epidemics, is encoded in the genome of a filamentous phage, CTXφ. Rolling-circle replication (RCR) is central to the life cycle of CTXφ because amplification of the phage genome permits its efficient integration into the genome and its packaging into new viral particles. A single phage-encoded HUH endonuclease initiates RCR of the proto-typical filamentous phages of enterobacteriaceae by introducing a nick at a specific position of the double stranded DNA form of the phage genome. The rest of the process is driven by host factors that are either essential or crucial for the replication of the host genome, such as the Rep SF1 helicase. In contrast, we show here that the histone-like HU protein of V. cholerae is necessary for the introduction of a nick by the HUH endonuclease of CTXφ. We further show that CTXφ RCR depends on a SF1 helicase normally implicated in DNA repair, UvrD, rather than Rep. In addition to CTXφ, we show that VGJφ, a representative member of a second family of vibrio integrative filamentous phages, requires UvrD and HU for RCR while TLCφ, a satellite phage, depends on Rep and is independent from HU.


Assuntos
Proteínas de Bactérias/metabolismo , DNA Helicases/metabolismo , Proteínas de Ligação a DNA/metabolismo , Inovirus/genética , Replicação Viral , Proteínas de Bactérias/genética , DNA Helicases/genética , Proteínas de Ligação a DNA/genética , Deleção de Genes , Genoma Viral , Inovirus/fisiologia , Vibrio cholerae/enzimologia , Vibrio cholerae/virologia
10.
Proc Natl Acad Sci U S A ; 111(47): 16848-53, 2014 Nov 25.
Artigo em Inglês | MEDLINE | ID: mdl-25385643

RESUMO

As in most bacteria, topological problems arising from the circularity of the two Vibrio cholerae chromosomes, chrI and chrII, are resolved by the addition of a crossover at a specific site of each chromosome, dif, by two tyrosine recombinases, XerC and XerD. The reaction is under the control of a cell division protein, FtsK, which activates the formation of a Holliday Junction (HJ) intermediate by XerD catalysis that is resolved into product by XerC catalysis. Many plasmids and phages exploit Xer recombination for dimer resolution and for integration, respectively. In all cases so far described, they rely on an alternative recombination pathway in which XerC catalyzes the formation of a HJ independently of FtsK. This is notably the case for CTXϕ, the cholera toxin phage. Here, we show that in contrast, integration of TLCϕ, a toxin-linked cryptic satellite phage that is almost always found integrated at the chrI dif site before CTXϕ, depends on the formation of a HJ by XerD catalysis, which is then resolved by XerC catalysis. The reaction nevertheless escapes the normal cellular control exerted by FtsK on XerD. In addition, we show that the same reaction promotes the excision of TLCϕ, along with any CTXϕ copy present between dif and its left attachment site, providing a plausible mechanism for how chrI CTXϕ copies can be eliminated, as occurred in the second wave of the current cholera pandemic.


Assuntos
Proteínas de Bactérias/fisiologia , Bacteriófagos/fisiologia , Genoma Bacteriano , Vibrio cholerae/genética , Integração Viral , Biocatálise , Ensaio de Desvio de Mobilidade Eletroforética , Vibrio cholerae/virologia
11.
PLoS Genet ; 10(7): e1004448, 2014 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-25010199

RESUMO

The segregation of bacterial chromosomes follows a precise choreography of spatial organisation. It is initiated by the bipolar migration of the sister copies of the replication origin (ori). Most bacterial chromosomes contain a partition system (Par) with parS sites in close proximity to ori that contribute to the active mobilisation of the ori region towards the old pole. This is thought to result in a longitudinal chromosomal arrangement within the cell. In this study, we followed the duplication frequency and the cellular position of 19 Vibrio cholerae genome loci as a function of cell length. The genome of V. cholerae is divided between two chromosomes, chromosome I and II, which both contain a Par system. The ori region of chromosome I (oriI) is tethered to the old pole, whereas the ori region of chromosome II is found at midcell. Nevertheless, we found that both chromosomes adopted a longitudinal organisation. Chromosome I extended over the entire cell while chromosome II extended over the younger cell half. We further demonstrate that displacing parS sites away from the oriI region rotates the bulk of chromosome I. The only exception was the region where replication terminates, which still localised to the septum. However, the longitudinal arrangement of chromosome I persisted in Par mutants and, as was reported earlier, the ori region still localised towards the old pole. Finally, we show that the Par-independent longitudinal organisation and oriI polarity were perturbed by the introduction of a second origin. Taken together, these results suggest that the Par system is the major contributor to the longitudinal organisation of chromosome I but that the replication program also influences the arrangement of bacterial chromosomes.


Assuntos
Cromossomos Bacterianos , Replicação do DNA/genética , Complexo de Reconhecimento de Origem/genética , Vibrio cholerae/genética , Segregação de Cromossomos/genética
12.
PLoS Genet ; 10(9): e1004557, 2014 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-25255436

RESUMO

The replication terminus region (Ter) of the unique chromosome of most bacteria locates at mid-cell at the time of cell division. In several species, this localization participates in the necessary coordination between chromosome segregation and cell division, notably for the selection of the division site, the licensing of the division machinery assembly and the correct alignment of chromosome dimer resolution sites. The genome of Vibrio cholerae, the agent of the deadly human disease cholera, is divided into two chromosomes, chrI and chrII. Previous fluorescent microscopy observations suggested that although the Ter regions of chrI and chrII replicate at the same time, chrII sister termini separated before cell division whereas chrI sister termini were maintained together at mid-cell, which raised questions on the management of the two chromosomes during cell division. Here, we simultaneously visualized the location of the dimer resolution locus of each of the two chromosomes. Our results confirm the late and early separation of chrI and chrII Ter sisters, respectively. They further suggest that the MatP/matS macrodomain organization system specifically delays chrI Ter sister separation. However, TerI loci remain in the vicinity of the cell centre in the absence of MatP and a genetic assay specifically designed to monitor the relative frequency of sister chromatid contacts during constriction suggest that they keep colliding together until the very end of cell division. In contrast, we found that even though it is not able to impede the separation of chrII Ter sisters before septation, the MatP/matS macrodomain organization system restricts their movement within the cell and permits their frequent interaction during septum constriction.


Assuntos
Divisão Celular , Cromossomos Bacterianos , Replicação do DNA , Vibrio cholerae/fisiologia , Proteínas de Bactérias/metabolismo , Proteínas Cromossômicas não Histona/metabolismo , Segregação de Cromossomos , Recombinação Genética , Troca de Cromátide Irmã , Imagem com Lapso de Tempo
13.
EMBO J ; 31(18): 3757-67, 2012 Sep 12.
Artigo em Inglês | MEDLINE | ID: mdl-22863778

RESUMO

Toxigenic conversion of Vibrio cholerae bacteria results from the integration of a filamentous phage, CTX phage. Integration is driven by the bacterial Xer recombinases, which catalyse the exchange of a single pair of strands between the phage single-stranded DNA and the host double-stranded DNA genomes; replication is thought to convert the resulting pseudo-Holliday junction (HJ) intermediate into the final recombination product. The natural tendency of the Xer recombinases to recycle HJ intermediates back into substrate should thwart this integration strategy, which prompted a search for additional co-factors aiding directionality of the process. Here, we show that Endo III, a ubiquitous base excision repair enzyme, facilitates CTX phage-integration in vivo. In vitro, we show that it prevents futile Xer recombination cycles by impeding new rounds of strand exchanges once the pseudo-HJ is formed. We further demonstrate that this activity relies on the unexpected ability of Endo III to bind to HJs even in the absence of the recombinases. These results explain how tandem copies of the phage genome can be created, which is crucial for subsequent virion production.


Assuntos
Bacteriófagos/metabolismo , Toxina da Cólera/metabolismo , Reparo do DNA , DNA Cruciforme , Desoxirribonuclease (Dímero de Pirimidina)/genética , Proteínas de Escherichia coli/genética , Vibrio cholerae/metabolismo , Catálise , DNA/metabolismo , Desoxirribonuclease (Dímero de Pirimidina)/metabolismo , Escherichia coli/genética , Proteínas de Escherichia coli/metabolismo , Biblioteca Gênica , Genoma , Glicosilação , Lisogenia , Modelos Genéticos , Mutagênese , Mutação , Oligonucleotídeos/genética , Fases de Leitura Aberta , Recombinases/metabolismo , Recombinação Genética
14.
EMBO J ; 29(3): 597-605, 2010 Feb 03.
Artigo em Inglês | MEDLINE | ID: mdl-20033058

RESUMO

In bacteria, septum formation frequently initiates before the last steps of chromosome segregation. This is notably the case when chromosome dimers are formed by homologous recombination. Chromosome segregation then requires the activity of a double-stranded DNA transporter anchored at the septum by an integral membrane domain, FtsK. It was proposed that the transmembrane segments of proteins of the FtsK family form pores across lipid bilayers for the transport of DNA. Here, we show that truncated Escherichia coli FtsK proteins lacking all of the FtsK transmembrane segments allow for the efficient resolution of chromosome dimers if they are connected to a septal targeting peptide through a sufficiently long linker. These results indicate that FtsK does not need to transport DNA through a pore formed by its integral membrane domain. We propose therefore that FtsK transports DNA before membrane fusion, at a time when there is still an opening in the constricted septum.


Assuntos
Segregação de Cromossomos , Cromossomos Bacterianos/metabolismo , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/genética , Escherichia coli/genética , Proteínas de Membrana/química , Proteínas de Membrana/genética , Divisão Celular/genética , Segregação de Cromossomos/genética , Cromossomos Bacterianos/genética , DNA Bacteriano/metabolismo , Diploide , Eficiência/fisiologia , Modelos Biológicos , Organismos Geneticamente Modificados , Estrutura Terciária de Proteína/genética
16.
Proc Natl Acad Sci U S A ; 108(6): 2516-21, 2011 Feb 08.
Artigo em Inglês | MEDLINE | ID: mdl-21262799

RESUMO

Most strains of Vibrio cholerae are not pathogenic or cause only local outbreaks of gastroenteritis. Acquisition of the capacity to produce the cholera toxin results from a lysogenic conversion event due to a filamentous bacteriophage, CTX. Two V. cholerae tyrosine recombinases that normally serve to resolve chromosome dimers, XerC and XerD, promote CTX integration by directly recombining the ssDNA genome of the phage with the dimer resolution site of either or both V. cholerae chromosomes. This smart mechanism renders the process irreversible. Many other filamentous vibriophages seem to attach to chromosome dimer resolution sites and participate in the rapid and continuous evolution of toxigenic V. cholerae strains. We analyzed the molecular mechanism of integration of VGJ, a representative of the largest family of these phages. We found that XerC and XerD promote the integration of VGJ into a specific chromosome dimer resolution site, and that the dsDNA replicative form of the phage is recombined. We show that XerC and XerD can promote excision of the integrated prophage, and that this participates in the production of new extrachromosomal copies of the phage genome. We further show how hybrid molecules harboring the concatenated genomes of CTX and VGJ can be produced efficiently. Finally, we discuss how the integration and excision mechanisms of VGJ can explain the origin of recent epidemic V. cholerae strains.


Assuntos
Bacteriófagos/fisiologia , Cromossomos Bacterianos , Variação Genética , Vibrio cholerae , Integração Viral/fisiologia , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Cólera/epidemiologia , Cólera/genética , Cromossomos Bacterianos/genética , Cromossomos Bacterianos/virologia , Genoma Viral/fisiologia , Humanos , Vibrio cholerae/genética , Vibrio cholerae/patogenicidade , Vibrio cholerae/virologia
17.
Adv Exp Med Biol ; 767: 245-62, 2013.
Artigo em Inglês | MEDLINE | ID: mdl-23161015

RESUMO

Interest for proteins of the FtsK family initially arose from their implication in many primordial processes in which DNA needs to be transported from one cell compartment to another in eubacteria. In the first section of this chapter, we address a list of the cellular functions of the different members of the FtsK family that have been so far studied. Soon after their discovery, interest for the FstK proteins spread because of their unique biochemical properties: most DNA transport systems rely on the assembly of complex multicomponent machines. In contrast, six FtsK proteins are sufficient to assemble into a fast and powerful DNA pump; the pump transports closed circular double stranded DNA molecules without any covalent-bond breakage nor topological alteration; transport is oriented despite the intrinsic symmetrical nature of the double stranded DNA helix and can occur across cell membranes. The different activities required for the oriented transport of DNA across cell compartments are achieved by three separate modules within the FtsK proteins: a DNA translocation module, an orientation module and an anchoring module. In the second part of this chapter, we review the structural and biochemical properties of these different modules.


Assuntos
DNA , Proteínas de Membrana , Transporte Biológico , Membrana Celular/metabolismo , DNA/metabolismo , DNA Bacteriano/metabolismo , Proteínas de Escherichia coli/química , Proteínas de Membrana/metabolismo
18.
Proc Natl Acad Sci U S A ; 107(9): 4377-82, 2010 Mar 02.
Artigo em Inglês | MEDLINE | ID: mdl-20133778

RESUMO

Cholera toxin is encoded in the genome of CTXvarphi, a lysogenic filamentous phage of Vibrio cholerae. CTXvarphi variants contribute to the genetic diversity of cholera epidemic strains. It has been shown that the El Tor variant of CTXvarphi hijacks XerC and XerD, two host-encoded tyrosine recombinases that normally function to resolve chromosome dimers, to integrate at dif1, the dimer resolution site of the larger of the two V. cholerae chromosomes. However, the exact mechanism of integration of CTXvarphi and the rules governing its integration remained puzzling, with phage variants integrated at either or both dimer resolution sites of the two V. cholerae chromosomes. We designed a genetic system to determine experimentally the tropism of integration of CTXvarphi and thus define rules of compatibility between phage variants and dimer resolution sites. We then showed in vitro how these rules are explained by the direct integration of the single-stranded phage genome into the double-stranded bacterial genome. Finally, we showed how the evolution of phage attachment and chromosome dimer resolution sites contributes to the generation of genetic diversity among cholera epidemic strains.


Assuntos
Bacteriófagos/fisiologia , Toxina da Cólera/genética , Vibrio cholerae/virologia , Tropismo Viral , Integração Viral , Sequência de Bases , Cromossomos Bacterianos , Recombinação Genética
19.
PLoS One ; 18(10): e0293276, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-37883451

RESUMO

Vibrio cholerae, the causative agent of cholera epidemics, is a rod-shaped bacterium with a highly polarized cellular organization. It can survive harmful growth conditions by entering a non-proliferating spheroplast state, which involves loss of the cell envelope and polarity. How polarized rod organization cells are formed when the spheroplasts exit the non-proliferating state remains largely uncharacterized. To address this question, we investigated how L-arabinose-induced V. cholerae spheroplasts return to growth. We found that de novo morphogenesis started with the elimination of an excess of periplasm, which was immediately followed by cell elongation and the formation of cell branches with a diameter similar to that of normal V. cholerae cells. Periplasm elimination was driven by bifunctional peptidoglycan synthases involved in cell-wall maintenance, the aPBPs. Elongation and branching relied on the MreB-associated monofunctional peptidoglycan synthase PBP2. The cell division monofunctional peptidoglycan synthase FtsI was not involved in any of these processes. However, the FtsK cell division protein specifically targeted the sites of vesicle extrusion. Genetic material was amplified by synchronous waves of DNA replication as periplasmic elimination began. The HubP polarity factor targeted the tip of the branches as they began to form. However, HubP-mediated polarization was not involved in the efficiency of the recovery process. Finally, our results suggest that the positioning of HubP and the activities of the replication terminus organizer of the two V. cholerae chromosomes, MatP, are independent of cell division. Taken together, these results confirm the interest of L-arabinose-induced V. cholerae spheroplasts to study how cell shape is generated and shed light on the de novo establishment of the intracellular organization and cell polarization in V. cholerae.


Assuntos
Cólera , Vibrio cholerae , Humanos , Vibrio cholerae/genética , Esferoplastos/metabolismo , Peptidoglicano/metabolismo , Arabinose/metabolismo , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo
20.
Front Microbiol ; 14: 1146496, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-37168111

RESUMO

Introduction: DNA damage repair (DDR) is an essential process for living organisms and contributes to genome maintenance and evolution. DDR involves different pathways including Homologous recombination (HR), Nucleotide Excision Repair (NER) and Base excision repair (BER) for example. The activity of each pathway is revealed with particular drug inducing lesions, but the repair of most DNA lesions depends on concomitant or subsequent action of the multiple pathways. Methods: In the present study, we used two genotoxic antibiotics, mitomycin C (MMC) and Bleomycin (BLM), to decipher the interplays between these different pathways in E. coli. We combined genomic methods (TIS and Hi-SC2) and imaging assays with genetic dissections. Results: We demonstrate that only a small set of DDR proteins are common to the repair of the lesions induced by these two drugs. Among them, RecN, an SMC-like protein, plays an important role by controlling sister chromatids dynamics and genome morphology at different steps of the repair processes. We further demonstrate that RecN influence on sister chromatids dynamics is not equivalent during the processing of the lesions induced by the two drugs. We observed that RecN activity and stability requires a pre-processing of the MMC-induced lesions by the NER but not for BLM-induced lesions. Discussion: Those results show that RecN plays a major role in rescuing toxic intermediates generated by the BER pathway in addition to its well-known importance to the repair of double strand breaks by HR.

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