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1.
Cell ; 179(7): 1499-1511.e10, 2019 12 12.
Article in English | MEDLINE | ID: mdl-31835029

ABSTRACT

Natural transformation (NT) is a major mechanism of horizontal gene transfer in microbial species that promotes the spread of antibiotic-resistance determinants and virulence factors. Here, we develop a cell biological approach to characterize the spatiotemporal dynamics of homologous recombination during NT in Vibrio cholerae. Our results directly demonstrate (1) that transforming DNA efficiently integrates into the genome as single-stranded DNA, (2) that the resulting heteroduplexes are resolved by chromosome replication and segregation, and (3) that integrated DNA is rapidly expressed prior to cell division. We show that the combination of these properties results in the nongenetic transfer of gene products within transformed populations, which can support phenotypic inheritance of antibiotic resistance in both V. cholerae and Streptococcus pneumoniae. Thus, beyond the genetic acquisition of novel DNA sequences, NT can also promote the nongenetic inheritance of traits during this conserved mechanism of horizontal gene transfer.


Subject(s)
Gene Transfer, Horizontal , Homologous Recombination , Streptococcus pneumoniae/genetics , Transformation, Genetic , Vibrio cholerae/genetics , DNA Replication , Drug Resistance, Bacterial/genetics
2.
PLoS Genet ; 19(5): e1010767, 2023 05.
Article in English | MEDLINE | ID: mdl-37172034

ABSTRACT

Vibrio cholerae is a facultative pathogen that primarily occupies marine environments. In this niche, V. cholerae commonly interacts with the chitinous shells of crustacean zooplankton. As a chitinolytic microbe, V. cholerae degrades insoluble chitin into soluble oligosaccharides. Chitin oligosaccharides serve as both a nutrient source and an environmental cue that induces a strong transcriptional response in V. cholerae. Namely, these oligosaccharides induce the chitin sensor, ChiS, to activate the genes required for chitin utilization and horizontal gene transfer by natural transformation. Thus, interactions with chitin impact the survival of V. cholerae in marine environments. Chitin is a complex carbon source for V. cholerae to degrade and consume, and the presence of more energetically favorable carbon sources can inhibit chitin utilization. This phenomenon, known as carbon catabolite repression (CCR), is mediated by the glucose-specific Enzyme IIA (EIIAGlc) of the phosphoenolpyruvate-dependent phosphotransferase system (PTS). In the presence of glucose, EIIAGlc becomes dephosphorylated, which inhibits ChiS transcriptional activity by an unknown mechanism. Here, we show that dephosphorylated EIIAGlc interacts with ChiS. We also isolate ChiS suppressor mutants that evade EIIAGlc-dependent repression and demonstrate that these alleles no longer interact with EIIAGlc. These findings suggest that EIIAGlc must interact with ChiS to exert its repressive effect. Importantly, the ChiS suppressor mutations we isolated also relieve repression of chitin utilization and natural transformation by EIIAGlc, suggesting that CCR of these behaviors is primarily regulated through ChiS. Together, our results reveal how nutrient conditions impact the fitness of an important human pathogen in its environmental reservoir.


Subject(s)
Catabolite Repression , Vibrio cholerae , Humans , Vibrio cholerae/genetics , Vibrio cholerae/metabolism , Chitin/genetics , Chitin/metabolism , Catabolite Repression/genetics , Oligosaccharides/genetics , Oligosaccharides/metabolism , Gene Expression Regulation, Bacterial
3.
PLoS Genet ; 18(12): e1010561, 2022 12.
Article in English | MEDLINE | ID: mdl-36542674

ABSTRACT

Diverse bacterial species use type IVa pili (T4aP) to interact with their environments. The dynamic extension and retraction of T4aP is critical for their function, but the mechanisms that regulate this dynamic activity remain poorly understood. T4aP are typically extended via the activity of a dedicated extension motor ATPase and retracted via the action of an antagonistic retraction motor ATPase called PilT. These motors are generally functionally independent, and loss of PilT commonly results in T4aP hyperpiliation due to undeterred pilus extension. However, for the mannose-sensitive hemagglutinin (MSHA) T4aP of Vibrio cholerae, the loss of PilT unexpectedly results in a loss of surface piliation. Here, we employ a combination of genetic and cell biological approaches to dissect the underlying mechanism. Our results demonstrate that PilT is necessary for MSHA pilus extension in addition to its well-established role in promoting MSHA pilus retraction. Through a suppressor screen, we also provide genetic evidence that the MshA major pilin impacts pilus extension. Together, these findings contribute to our understanding of the factors that regulate pilus extension and describe a previously uncharacterized function for the PilT motor ATPase.


Subject(s)
Adenosine Triphosphatases , Vibrio cholerae , Adenosine Triphosphatases/genetics , Hemagglutinins , Mannose , Vibrio cholerae/genetics , Fimbriae, Bacterial/genetics , Fimbriae Proteins/genetics , Bacterial Proteins/genetics
4.
Proc Natl Acad Sci U S A ; 119(7)2022 02 15.
Article in English | MEDLINE | ID: mdl-35135874

ABSTRACT

Bacteria use surface appendages called type IV pili to perform diverse activities including DNA uptake, twitching motility, and attachment to surfaces. The dynamic extension and retraction of pili are often required for these activities, but the stimuli that regulate these dynamics remain poorly characterized. To address this question, we study the bacterial pathogen Vibrio cholerae, which uses mannose-sensitive hemagglutinin (MSHA) pili to attach to surfaces in aquatic environments as the first step in biofilm formation. Here, we use a combination of genetic and cell biological approaches to describe a regulatory pathway that allows V. cholerae to rapidly abort biofilm formation. Specifically, we show that V. cholerae cells retract MSHA pili and detach from a surface in a diffusion-limited, enclosed environment. This response is dependent on the phosphodiesterase CdpA, which decreases intracellular levels of cyclic-di-GMP to induce MSHA pilus retraction. CdpA contains a putative nitric oxide (NO)-sensing NosP domain, and we demonstrate that NO is necessary and sufficient to stimulate CdpA-dependent detachment. Thus, we hypothesize that the endogenous production of NO (or an NO-like molecule) in V. cholerae stimulates the retraction of MSHA pili. These results extend our understanding of how environmental cues can be integrated into the complex regulatory pathways that control pilus dynamic activity and attachment in bacterial species.


Subject(s)
Fimbriae Proteins/metabolism , Fimbriae, Bacterial/physiology , Nitric Oxide/pharmacology , Vibrio cholerae/drug effects , Vibrio cholerae/metabolism , Bacterial Adhesion/drug effects , Bacterial Adhesion/physiology , Fimbriae Proteins/genetics , Gene Expression Regulation, Bacterial , Vibrio cholerae/genetics
5.
J Biol Chem ; 299(9): 105147, 2023 09.
Article in English | MEDLINE | ID: mdl-37567478

ABSTRACT

The vertebrate host's immune system and resident commensal bacteria deploy a range of highly reactive small molecules that provide a barrier against infections by microbial pathogens. Gut pathogens, such as Vibrio cholerae, sense and respond to these stressors by modulating the expression of exotoxins that are crucial for colonization. Here, we employ mass spectrometry-based profiling, metabolomics, expression assays, and biophysical approaches to show that transcriptional activation of the hemolysin gene hlyA in V. cholerae is regulated by intracellular forms of sulfur with sulfur-sulfur bonds, termed reactive sulfur species (RSS). We first present a comprehensive sequence similarity network analysis of the arsenic repressor superfamily of transcriptional regulators, where RSS and hydrogen peroxide sensors segregate into distinct clusters of sequences. We show that HlyU, transcriptional activator of hlyA in V. cholerae, belongs to the RSS-sensing cluster and readily reacts with organic persulfides, showing no reactivity or DNA dissociation following treatment with glutathione disulfide or hydrogen peroxide. Surprisingly, in V. cholerae cell cultures, both sulfide and peroxide treatment downregulate HlyU-dependent transcriptional activation of hlyA. However, RSS metabolite profiling shows that both sulfide and peroxide treatment raise the endogenous inorganic sulfide and disulfide levels to a similar extent, accounting for this crosstalk, and confirming that V. cholerae attenuates HlyU-mediated activation of hlyA in a specific response to intracellular RSS. These findings provide new evidence that gut pathogens may harness RSS-sensing as an evolutionary adaptation that allows them to overcome the gut inflammatory response by modulating the expression of exotoxins.


Subject(s)
Bacterial Proteins , Disulfides , Exotoxins , Gene Expression Regulation, Bacterial , Hemolysin Proteins , Intracellular Space , Sulfhydryl Compounds , Transcriptional Activation , Vibrio cholerae , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Exotoxins/genetics , Exotoxins/metabolism , Gene Expression Regulation, Bacterial/drug effects , Hemolysin Proteins/genetics , Hemolysin Proteins/metabolism , Hydrogen Peroxide/metabolism , Hydrogen Peroxide/pharmacology , Transcriptional Activation/drug effects , Vibrio cholerae/drug effects , Vibrio cholerae/genetics , Vibrio cholerae/metabolism , Disulfides/metabolism , Disulfides/pharmacology , Sulfhydryl Compounds/metabolism , Sulfhydryl Compounds/pharmacology , Intracellular Space/metabolism , Mass Spectrometry , Metabolomics , Glutathione Disulfide/pharmacology , Gastrointestinal Microbiome/immunology
6.
Proc Natl Acad Sci U S A ; 118(47)2021 11 23.
Article in English | MEDLINE | ID: mdl-34789573

ABSTRACT

Type IV pili (T4P) are dynamic surface appendages that promote virulence, biofilm formation, horizontal gene transfer, and motility in diverse bacterial species. Pilus dynamic activity is best characterized in T4P that use distinct ATPase motors for pilus extension and retraction. Many T4P systems, however, lack a dedicated retraction motor, and the mechanism underlying this motor-independent retraction remains a mystery. Using the Vibrio cholerae competence pilus as a model system, we identify mutations in the major pilin gene that enhance motor-independent retraction. These mutants likely diminish pilin-pilin interactions within the filament to produce less-stable pili. One mutation adds a bulky residue to α1C, a universally conserved feature of T4P. We found that inserting a bulky residue into α1C of the retraction motor-dependent Acinetobacter baylyi competence T4P enhances motor-independent retraction. Conversely, removing bulky residues from α1C of the retraction motor-independent, V. cholerae toxin-coregulated T4P stabilizes the filament and diminishes pilus retraction. Furthermore, alignment of pilins from the broader type IV filament (T4F) family indicated that retraction motor-independent T4P, gram-positive Com pili, and type II secretion systems generally encode larger residues within α1C oriented toward the pilus core compared to retraction motor-dependent T4P. Together, our data demonstrate that motor-independent retraction relies, in part, on the inherent instability of the pilus filament, which may be a conserved feature of diverse T4Fs. This provides evidence for a long-standing yet previously untested model in which pili retract in the absence of a motor by spontaneous depolymerization.


Subject(s)
Fimbriae Proteins/chemistry , Fimbriae Proteins/genetics , Fimbriae, Bacterial/chemistry , Fimbriae, Bacterial/genetics , Acinetobacter , Adenosine Triphosphatases , Type II Secretion Systems , Vibrio cholerae , Virulence
7.
Proc Natl Acad Sci U S A ; 117(33): 20180-20189, 2020 08 18.
Article in English | MEDLINE | ID: mdl-32719134

ABSTRACT

Two-component signal transduction systems (TCSs) represent a major mechanism that bacteria use to sense and respond to their environment. Prototypical TCSs are composed of a membrane-embedded histidine kinase, which senses an environmental stimulus and subsequently phosphorylates a cognate partner protein called a response regulator that regulates gene expression in a phosphorylation-dependent manner. Vibrio cholerae uses the hybrid histidine kinase ChiS to activate the expression of the chitin utilization program, which is critical for the survival of this facultative pathogen in its aquatic reservoir. A cognate response regulator for ChiS has not been identified and the mechanism of ChiS-dependent signal transduction remains unclear. Here, we show that ChiS is a noncanonical membrane-embedded one-component system that can both sense chitin and directly regulate gene expression via a cryptic DNA binding domain. Unlike prototypical TCSs, we find that ChiS DNA binding is diminished, rather than stimulated, by phosphorylation. Finally, we provide evidence that ChiS likely activates gene expression by directly recruiting RNA polymerase. This work addresses the mechanism of action for a major transcription factor in V. cholerae and highlights the versatility of signal transduction systems in bacterial species.


Subject(s)
Bacterial Proteins/metabolism , Gene Expression Regulation, Bacterial , Gene Expression Regulation, Enzymologic , Polynucleotide 5'-Hydroxyl-Kinase/metabolism , Vibrio cholerae/enzymology , Bacterial Proteins/genetics , Chitin/metabolism , Polynucleotide 5'-Hydroxyl-Kinase/genetics , Protein Binding , Vibrio cholerae/metabolism
8.
J Bacteriol ; 204(6): e0012622, 2022 06 21.
Article in English | MEDLINE | ID: mdl-35506694

ABSTRACT

Bacterial surface appendages called type IVa pili (T4aP) promote diverse activities, including DNA uptake, twitching motility, and virulence. These activities rely on the ability of T4aP to dynamically extend and retract from the cell surface. Dynamic extension relies on a motor ATPase commonly called PilB. Most T4aP also rely on specific motor ATPases, commonly called PilT and PilU, to dynamically and forcefully retract. Here, we systematically assess whether motor ATPases from three orthologous T4aP can functionally complement Vibrio cholerae mutants that lack their endogenous motors. We found that the PilT and PilU retraction ATPases from the three T4aP systems tested are promiscuous and promote the retraction of the V. cholerae competence T4aP despite a high degree of sequence divergence. In contrast, the orthologous extension ATPases from the same T4aP systems were not able to mediate the extension of the V. cholerae competence T4aP despite exhibiting a similar degree of sequence divergence. Also, we show that one of the PilT orthologs characterized does not support PilU-dependent retraction and provide some data to indicate that the C terminus of PilT is important for PilU-dependent retraction. Together, our data suggest that retraction ATPases may have maintained a high degree of promiscuity for promoting the retraction of T4aP, while extension ATPases may have evolved to become specific for their cognate systems. IMPORTANCE One way in which bacteria interact with their environments is via hair-like appendages called type IVa pili (T4aP). These appendages dynamically extend and retract from the cell surface via the action of distinct ATPase motors. T4aP are present in diverse bacterial species. Here, we demonstrate that retraction motors from three T4aP are promiscuous and capable of promoting the retraction of a heterologous T4aP system. In contrast, the extension ATPase motors from these same T4aP systems are specific and cannot promote the extension of a heterologous T4aP. Thus, these results suggest that T4aP extension may be more tightly regulated than T4aP retraction.


Subject(s)
Adenosine Triphosphatases , Vibrio cholerae , Adenosine Triphosphatases/genetics , Adenosine Triphosphatases/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Fimbriae Proteins/genetics , Fimbriae Proteins/metabolism , Fimbriae, Bacterial/genetics , Fimbriae, Bacterial/metabolism , Molecular Motor Proteins/genetics , Molecular Motor Proteins/metabolism , Vibrio cholerae/genetics , Vibrio cholerae/metabolism
9.
Mol Microbiol ; 116(2): 381-396, 2021 08.
Article in English | MEDLINE | ID: mdl-33754381

ABSTRACT

The competence pili of transformable Gram-positive species are phylogenetically related to the diverse and widespread class of extracellular filamentous organelles known as type IV pili. In Gram-negative bacteria, type IV pili act through dynamic cycles of extension and retraction to carry out diverse activities including attachment, motility, protein secretion, and DNA uptake. It remains unclear whether competence pili in Gram-positive species exhibit similar dynamic activity, and their mechanism of action for DNA uptake remains unclear. They are hypothesized to either (1) leave transient cavities in the cell wall that facilitate DNA passage, (2) form static adhesins to enrich DNA near the cell surface for subsequent uptake by membrane-embedded transporters, or (3) play an active role in translocating bound DNA via dynamic activity. Here, we use a recently described pilus labeling approach to demonstrate that competence pili in Streptococcus pneumoniae are highly dynamic structures that rapidly extend and retract from the cell surface. By labeling the principal pilus monomer, ComGC, with bulky adducts, we further demonstrate that pilus retraction is essential for natural transformation. Together, our results suggest that Gram-positive competence pili in other species may also be dynamic and retractile structures that play an active role in DNA uptake.


Subject(s)
Biological Transport, Active/physiology , DNA Transformation Competence/physiology , DNA, Bacterial/metabolism , Fimbriae, Bacterial/metabolism , Streptococcus pneumoniae/metabolism , Cell Wall/metabolism , DNA-Binding Proteins/metabolism , Fimbriae Proteins/metabolism , Transformation, Bacterial/genetics , Transformation, Bacterial/physiology
10.
PLoS Genet ; 15(10): e1008362, 2019 10.
Article in English | MEDLINE | ID: mdl-31658256

ABSTRACT

Many bacteria use population density to control gene expression via quorum sensing. In Vibrio cholerae, quorum sensing coordinates virulence, biofilm formation, and DNA uptake by natural competence. The transcription factors AphA and HapR, expressed at low and high cell density respectively, play a key role. In particular, AphA triggers the entire virulence cascade upon host colonisation. In this work we have mapped genome-wide DNA binding by AphA. We show that AphA is versatile, exhibiting distinct modes of DNA binding and promoter regulation. Unexpectedly, whilst HapR is known to induce natural competence, we demonstrate that AphA also intervenes. Most notably, AphA is a direct repressor of tfoX, the master activator of competence. Hence, production of AphA markedly suppressed DNA uptake; an effect largely circumvented by ectopic expression of tfoX. Our observations suggest dual regulation of competence. At low cell density AphA is a master repressor whilst HapR activates the process at high cell density. Thus, we provide deep mechanistic insight into the role of AphA and highlight how V. cholerae utilises this regulator for diverse purposes.


Subject(s)
Cholera/genetics , DNA-Binding Proteins/genetics , Trans-Activators/genetics , Vibrio cholerae/genetics , Biofilms/growth & development , Cholera/microbiology , Gene Expression Regulation, Bacterial/genetics , Host-Pathogen Interactions/genetics , Humans , Promoter Regions, Genetic/genetics , Quorum Sensing/genetics , Transcription Factors/genetics , Vibrio cholerae/pathogenicity
11.
PLoS Genet ; 15(10): e1008448, 2019 10.
Article in English | MEDLINE | ID: mdl-31626631

ABSTRACT

Bacterial type IV pili are critical for diverse biological processes including horizontal gene transfer, surface sensing, biofilm formation, adherence, motility, and virulence. These dynamic appendages extend and retract from the cell surface. In many type IVa pilus systems, extension occurs through the action of an extension ATPase, often called PilB, while optimal retraction requires the action of a retraction ATPase, PilT. Many type IVa systems also encode a homolog of PilT called PilU. However, the function of this protein has remained unclear because pilU mutants exhibit inconsistent phenotypes among type IV pilus systems and because it is relatively understudied compared to PilT. Here, we study the type IVa competence pilus of Vibrio cholerae as a model system to define the role of PilU. We show that the ATPase activity of PilU is critical for pilus retraction in PilT Walker A and/or Walker B mutants. PilU does not, however, contribute to pilus retraction in ΔpilT strains. Thus, these data suggest that PilU is a bona fide retraction ATPase that supports pilus retraction in a PilT-dependent manner. We also found that a ΔpilU mutant exhibited a reduction in the force of retraction suggesting that PilU is important for generating maximal retraction forces. Additional in vitro and in vivo data show that PilT and PilU act as independent homo-hexamers that may form a complex to facilitate pilus retraction. Finally, we demonstrate that the role of PilU as a PilT-dependent retraction ATPase is conserved in Acinetobacter baylyi, suggesting that the role of PilU described here may be broadly applicable to other type IVa pilus systems.


Subject(s)
Adenosine Triphosphatases/physiology , Fimbriae Proteins/physiology , Fimbriae, Bacterial/enzymology , Acinetobacter/physiology , Mutation , Protein Multimerization/physiology , Vibrio cholerae/physiology
12.
Appl Environ Microbiol ; 87(14): e0047821, 2021 06 25.
Article in English | MEDLINE | ID: mdl-33990308

ABSTRACT

Bacteria utilize dynamic appendages, called type IV pili (T4P), to interact with their environment and mediate a wide variety of functions. Pilus extension is mediated by an extension ATPase motor, commonly called PilB, in all T4P. Pilus retraction, however, can occur with the aid of an ATPase motor or in the absence of a retraction motor. While much effort has been devoted to studying motor-dependent retraction, the mechanism and regulation of motor-independent retraction remain poorly characterized. We have previously demonstrated that Vibrio cholerae competence T4P undergo motor-independent retraction in the absence of the dedicated retraction ATPases PilT and PilU. Here, we utilize this model system to characterize the factors that influence motor-independent retraction. We find that freshly extended pili frequently undergo motor-independent retraction, but if these pili fail to retract immediately, they remain statically extended on the cell surface. Importantly, we show that these static pili can still undergo motor-dependent retraction via tightly regulated ectopic expression of PilT, suggesting that these T4P are not broken but simply cannot undergo motor-independent retraction. Through additional genetic and biophysical characterization of pili, we suggest that pilus filaments undergo conformational changes during dynamic extension and retraction. We propose that only some conformations, like those adopted by freshly extended pili, are capable of undergoing motor-independent retraction. Together, these data highlight the versatile mechanisms that regulate T4P dynamic activity and provide additional support for the long-standing hypothesis that motor-independent retraction occurs via spontaneous depolymerization. IMPORTANCE Extracellular pilus fibers are critical to the virulence and persistence of many pathogenic bacteria. A crucial function for most pili is the dynamic ability to extend and retract from the cell surface. Inhibiting this dynamic pilus activity represents an attractive approach for therapeutic interventions; however, a detailed mechanistic understanding of this process is currently lacking. Here, we use the competence pilus of Vibrio cholerae to study how pili retract in the absence of dedicated retraction motors. Our results reveal a novel regulatory mechanism of pilus retraction that is an inherent property of the pilus filament. Thus, understanding the conformational changes that pili adopt under different conditions may be critical for the development of novel therapeutics that aim to target the dynamic activity of these structures.


Subject(s)
Fimbriae, Bacterial/physiology , Vibrio cholerae/physiology , Adenosine Triphosphatases/physiology , Bacterial Physiological Phenomena , Fimbriae Proteins/physiology
13.
Appl Environ Microbiol ; 87(10)2021 04 27.
Article in English | MEDLINE | ID: mdl-33712424

ABSTRACT

Vibrio cholerae causes the gastrointestinal illness cholera, which spreads throughout the globe in large pandemics. The current pandemic is caused by O1 El Tor biotype strains, whereas previous pandemics were caused by O1 classical biotype strains. El Tor V. cholerae is noted for its ability to acquire exogenous DNA through chitin-induced natural transformation, which has been exploited for genetic manipulation of El Tor strains in the laboratory. In contrast, the prototypical classical strain O395 lacks this ability, which was suspected to be due to a mutation in the regulatory gene hapR HapR and the regulator TfoX control expression of a third competence regulator, QstR. We found that artificial induction of both TfoX and QstR in the presence of HapR in O395 was required for efficient DNA uptake. However, natural transformation in the classical strain is still orders of magnitude below that of an El Tor strain. O395 expressing HapR could also undergo natural transformation after growth on chitin, which could be increased by artificial induction of TfoX and/or QstR. A plasmid that expresses both TfoX and QstR was created that allowed for consistent DNA uptake in O395 carrying a hapR plasmid. This technique was also used to facilitate cotransformation into O395 of unmarked DNA (ΔlacZ, ΔflaA, ΔflgG) for multiplex genome editing by natural transformation (MuGENT). These results demonstrate that the classical biotype O395 strain is functionally capable of DNA uptake, which allows for the rapid genetic manipulation of its genome.IMPORTANCE Natural transformation (uptake of exogenous DNA) in Vibrio cholerae has contributed to the evolution of these human pathogens. Classical biotype V. cholerae strains were responsible for the first six cholera pandemics but were replaced by El Tor biotype V. cholerae in the current pandemic. This study demonstrates that classical V. cholerae is functionally capable of natural transformation, but inactivation of the transformation regulator HapR and inherent levels of transformation that are lower than those of El Tor V. cholerae suggest that the classical biotype may be less able to utilize natural transformation for horizontal gene transfer.


Subject(s)
Transformation, Bacterial , Vibrio cholerae O1/genetics , Bacterial Proteins/genetics , Chitin
14.
Appl Environ Microbiol ; 86(18)2020 09 01.
Article in English | MEDLINE | ID: mdl-32651201

ABSTRACT

The marine facultative pathogen Vibrio cholerae forms complex multicellular communities on the chitinous shells of crustacean zooplankton in its aquatic reservoir. V. cholerae-chitin interactions are critical for the growth, evolution, and waterborne transmission of cholera. This is due, in part, to chitin-induced changes in gene expression in this pathogen. Here, we sought to identify factors that influence chitin-induced expression of one locus, the chitobiose utilization operon (chb), which is required for the uptake and catabolism of the chitin disaccharide. Through a series of genetic screens, we identified that the master regulator of quorum sensing, HapR, is a direct repressor of the chb operon. We also found that the levels of HapR in V. cholerae are regulated by the ClpAP protease. Furthermore, we show that the canonical quorum sensing cascade in V. cholerae regulates chb expression in an HapR-dependent manner. Through this analysis, we found that signaling via the species-specific autoinducer CAI-1, but not the interspecies autoinducer AI-2, influences chb expression. This phenomenon of species-specific regulation may enhance the fitness of this pathogen in its environmental niche.IMPORTANCE In nature, bacteria live in multicellular and multispecies communities. Microbial species can sense the density and composition of their community through chemical cues using a process called quorum sensing (QS). The marine pathogen Vibrio cholerae is found in communities on the chitinous shells of crustaceans in its aquatic reservoir. V. cholerae interactions with chitin are critical for the survival, evolution, and waterborne transmission of this pathogen. Here, we show that V. cholerae uses QS to regulate the expression of one locus required for V. cholerae-chitin interactions.


Subject(s)
Bacterial Proteins/genetics , Disaccharides/metabolism , Operon , Quorum Sensing , Vibrio cholerae/genetics , Bacterial Proteins/metabolism , Species Specificity , Vibrio cholerae/metabolism
15.
Nucleic Acids Res ; 46(12): 6099-6111, 2018 07 06.
Article in English | MEDLINE | ID: mdl-29722872

ABSTRACT

Acquisition of foreign DNA by natural transformation is an important mechanism of adaptation and evolution in diverse microbial species. Here, we characterize the mechanism of ComM, a broadly conserved AAA+ protein previously implicated in homologous recombination of transforming DNA (tDNA) in naturally competent Gram-negative bacterial species. In vivo, we found that ComM was required for efficient comigration of linked genetic markers in Vibrio cholerae and Acinetobacter baylyi, which is consistent with a role in branch migration. Also, ComM was particularly important for integration of tDNA with increased sequence heterology, suggesting that its activity promotes the acquisition of novel DNA sequences. In vitro, we showed that purified ComM binds ssDNA, oligomerizes into a hexameric ring, and has bidirectional helicase and branch migration activity. Based on these data, we propose a model for tDNA integration during natural transformation. This study provides mechanistic insight into the enigmatic steps involved in tDNA integration and uncovers the function of a protein required for this conserved mechanism of horizontal gene transfer.


Subject(s)
Acinetobacter/genetics , DNA Helicases/metabolism , Transformation, Genetic , Vibrio cholerae/genetics , Acinetobacter/enzymology , Adenosine Triphosphate/metabolism , Bacterial Proteins/physiology , DNA/metabolism , DNA Helicases/physiology , DNA Repair , DNA, Bacterial/metabolism , DNA, Single-Stranded/metabolism , DNA-Binding Proteins/physiology , Gene Transfer, Horizontal , Gram-Negative Bacteria/enzymology , Gram-Negative Bacteria/genetics , Protein Multimerization , Vibrio cholerae/enzymology
16.
PLoS Genet ; 13(7): e1006877, 2017 Jul.
Article in English | MEDLINE | ID: mdl-28683122

ABSTRACT

Chitin utilization by the cholera pathogen Vibrio cholerae is required for its persistence and evolution via horizontal gene transfer in the marine environment. Genes involved in the uptake and catabolism of the chitin disaccharide chitobiose are encoded by the chb operon. The orphan sensor kinase ChiS is critical for regulation of this locus, however, the mechanisms downstream of ChiS activation that result in expression of the chb operon are poorly understood. Using an unbiased transposon mutant screen, we uncover that the nucleoid occlusion protein SlmA is a regulator of the chb operon. SlmA has not previously been implicated in gene regulation. Also, SlmA is a member of the TetR family of proteins, which are generally transcriptional repressors. In vitro, we find that SlmA binds directly to the chb operon promoter, and in vivo, we show that this interaction is required for transcriptional activation of this locus and for chitobiose utilization. Using point mutations that disrupt distinct functions of SlmA, we find that DNA-binding, but not nucleoid occlusion, is critical for transcriptional activation. This study identifies a novel role for SlmA as a transcriptional regulator in V. cholerae in addition to its established role as a cell division licensing factor.


Subject(s)
Bacterial Proteins/genetics , Cholera/genetics , Disaccharides/genetics , Operon/genetics , Transcriptional Activation/genetics , Vibrio cholerae/genetics , Binding Sites , Chitin/metabolism , Cholera/microbiology , DNA-Binding Proteins/genetics , Disaccharides/biosynthesis , Escherichia coli/genetics , Gene Expression Regulation, Bacterial , Gene Transfer, Horizontal/genetics , Humans , Point Mutation , Promoter Regions, Genetic , Vibrio cholerae/pathogenicity
17.
Nucleic Acids Res ; 45(12): 7527-7537, 2017 Jul 07.
Article in English | MEDLINE | ID: mdl-28575400

ABSTRACT

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.


Subject(s)
Bacterial Proteins/genetics , Exonucleases/genetics , Gene Editing/methods , Genome, Bacterial , Transformation, Bacterial , Acinetobacter/genetics , Acinetobacter/metabolism , Bacterial Proteins/antagonists & inhibitors , Bacterial Proteins/metabolism , DNA Mismatch Repair , DNA, Bacterial/genetics , DNA, Bacterial/metabolism , DNA, Single-Stranded/genetics , DNA, Single-Stranded/metabolism , Escherichia coli Proteins/genetics , Escherichia coli Proteins/metabolism , Exonucleases/antagonists & inhibitors , Exonucleases/deficiency , Homologous Recombination , Multiplex Polymerase Chain Reaction/methods , Mutation , Phosphorus-Oxygen Lyases/genetics , Phosphorus-Oxygen Lyases/metabolism , Vibrio cholerae/genetics , Vibrio cholerae/metabolism
18.
J Bacteriol ; 200(15)2018 08 01.
Article in English | MEDLINE | ID: mdl-29555695

ABSTRACT

The Gram-negative bacterium Vibrio parahaemolyticus is an opportunistic human pathogen and the leading cause of seafood-borne acute gastroenteritis worldwide. Recently, this bacterium was implicated as the etiologic agent of a severe shrimp disease with consequent devastating outcomes to shrimp farming. In both cases, acquisition of genetic material via horizontal transfer provided V. parahaemolyticus with new virulence tools to cause disease. Dissecting the molecular mechanisms of V. parahaemolyticus pathogenesis often requires manipulating its genome. Classically, genetic deletions in V. parahaemolyticus are performed using a laborious, lengthy, multistep process. Here, we describe a fast and efficient method to edit this bacterium's genome based on V. parahaemolyticus natural competence. Although this method is similar to one previously described, V. parahaemolyticus requires counterselection for curing of acquired plasmids due to its recalcitrant nature of retaining extrachromosomal DNA. We believe this approach will be of use to the Vibrio community.IMPORTANCE Spreading of vibrios throughout the world correlates with increased global temperatures. As they spread, they find new niches in which to survive, proliferate, and invade. Therefore, genetic manipulation of vibrios is of the utmost importance for studying these species. Here, we have delineated and validated a rapid method to create genetic deletions in Vibrio parahaemolyticus This study provides insightful methodology for studies with other Vibrio species.


Subject(s)
Bacterial Proteins/metabolism , Gene Deletion , Gene Expression Regulation, Bacterial/physiology , Vibrio parahaemolyticus/genetics , Bacterial Proteins/genetics , Plasmids , Transformation, Genetic , Vibrio parahaemolyticus/physiology
19.
Mol Microbiol ; 104(4): 568-579, 2017 05.
Article in English | MEDLINE | ID: mdl-28196401

ABSTRACT

A common mechanism for high affinity carbohydrate uptake in microbial species is the phosphoenolpyruvate-dependent phosphotransferase system (PTS). This system consists of a shared component, EI, which is required for all PTS transport, and numerous carbohydrate uptake transporters. In Vibrio cholerae, there are 13 distinct PTS transporters. Due to genetic redundancy within this system, the carbohydrate specificity of each of these transporters is not currently defined. Here, using multiplex genome editing by natural transformation (MuGENT), we systematically dissect PTS transport in V. cholerae. Specifically, we generated a mutant strain that lacks all 13 PTS transporters, and from this strain, we created a panel of mutants where each expresses a single transporter. Using this panel, we have largely defined the carbohydrate specificities of each PTS transporter. In addition, this analysis uncovered a novel glucose transporter. We have further defined the mechanism of this transporter and characterized its regulation. Using our 13 PTS transporter mutant, we also provide the first clear evidence that carbohydrate transport by the PTS is not essential during infection in an infant mouse model of cholera. In summary, this study shows how multiplex genome editing can be used to rapidly dissect complex biological systems and genetic redundancy in microbial systems.


Subject(s)
Phosphoenolpyruvate Sugar Phosphotransferase System/genetics , Phosphoenolpyruvate Sugar Phosphotransferase System/metabolism , Vibrio cholerae/genetics , Animals , Bacterial Proteins/metabolism , Biological Transport/genetics , Cholera/metabolism , Cloning, Molecular/methods , Disease Models, Animal , Gene Expression Regulation, Bacterial/genetics , Glucose/metabolism , Glucose Transport Proteins, Facilitative/metabolism , Membrane Transport Proteins/genetics , Mice , Multiplex Polymerase Chain Reaction/methods
20.
Proc Natl Acad Sci U S A ; 112(33): 10485-90, 2015 Aug 18.
Article in English | MEDLINE | ID: mdl-26240317

ABSTRACT

Natural transformation is one mechanism of horizontal gene transfer (HGT) in Vibrio cholerae, the causative agent of cholera. Recently, it was found that V. cholerae isolates from the Haiti outbreak were poorly transformed by this mechanism. Here, we show that an integrating conjugative element (ICE)-encoded DNase, which we name IdeA, is necessary and sufficient for inhibiting natural transformation of Haiti outbreak strains. We demonstrate that IdeA inhibits this mechanism of HGT in cis via DNA endonuclease activity that is localized to the periplasm. Furthermore, we show that natural transformation between cholera strains in a relevant environmental context is inhibited by IdeA. The ICE encoding IdeA is globally distributed. Therefore, we analyzed the prevalence and role for this ICE in limiting natural transformation of isolates from Bangladesh collected between 2001 and 2011. We found that IdeA(+) ICEs were nearly ubiquitous in isolates from 2001 to 2005; however, their prevalence decreased to ∼40% from 2006 to 2011. Thus, IdeA(+) ICEs may have limited the role of natural transformation in V. cholerae. However, the rise in prevalence of strains lacking IdeA may now increase the role of this conserved mechanism of HGT in the evolution of this pathogen.


Subject(s)
Bacterial Proteins/genetics , Gene Transfer, Horizontal , Interspersed Repetitive Sequences , Transformation, Bacterial , Vibrio cholerae/genetics , Bacterial Proteins/physiology , Bangladesh , Chitin/chemistry , Cholera/genetics , Cholera/microbiology , Conjugation, Genetic , DNA/metabolism , DNA, Bacterial/genetics , Deoxyribonuclease I/metabolism , Deoxyribonucleases/chemistry , Evolution, Molecular , Haiti , Humans , Lac Operon , Models, Genetic , Mutation , Periplasm/metabolism , Phylogeny , Prevalence , Vibrio cholerae/metabolism , beta-Lactamases/metabolism
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