Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 37
Filter
1.
PLoS Pathog ; 20(8): e1012401, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39093898

ABSTRACT

Sphingolipids are ubiquitous in membranes of eukaryotes and are associated with important cellular functions. Although sphingolipids occur scarcely in bacteria, for some of them they are essential and, in other bacteria, they contribute to fitness and stability of the outer membrane, such as in the well-studied α-proteobacterium Caulobacter crescentus. We previously defined five structural genes for ceramide synthesis in C. crescentus, among them the gene for serine palmitoyltransferase, the enzyme that catalyzes the committed step of sphingolipid biosynthesis. Other mutants affected in genes of this same genomic region show cofitness with a mutant deficient in serine palmitoyltransferase. Here we show that at least two phosphosphingolipids are produced in C. crescentus and that at least another six gene products are needed for the decoration of ceramide upon phosphosphingolipid formation. All eleven genes participating in phosphosphingolipid formation are also required in C. crescentus for membrane stability and for displaying sensitivity towards the antibiotic polymyxin B. The genes for the formation of complex phosphosphingolipids are also required for C. crescentus virulence on Galleria mellonella insect larvae.


Subject(s)
Caulobacter crescentus , Sphingolipids , Caulobacter crescentus/metabolism , Caulobacter crescentus/genetics , Virulence , Animals , Sphingolipids/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Serine C-Palmitoyltransferase/metabolism , Serine C-Palmitoyltransferase/genetics , Moths/microbiology
2.
Mol Microbiol ; 120(3): 307-323, 2023 09.
Article in English | MEDLINE | ID: mdl-37487601

ABSTRACT

Bacteria frequently store excess carbon in hydrophobic granules of polyhydroxybutyrate (PHB) that in some growth conditions can occupy most of the cytoplasmic space. Different types of proteins associate to the surface of the granules, mainly enzymes involved in the synthesis and utilization of the reserve polymer and a diverse group of proteins known as phasins. Phasins have different functions, among which are regulating the size and number of the granules, modulating the activity of the granule-associated enzymes and helping in the distribution of the granules inside the cell. Caulobacter crescentus is an oligotrophic bacterium that shows several morphological and regulatory traits that allow it to grow in very nutrient-diluted environments. Under these conditions, storage compounds should be particularly relevant for survival. In this work, we show an initial proteomic characterization of the PHB granules and describe a new type of phasin (PhaH) characterized by the presence of an N-terminal hydrophobic helix followed by a helix-hairpin-helix (HhH) domain. The hydrophobic helix is required for maximal PHB accumulation and maintenance during the stationary phase while the HhH domain is involved in determining the size of the PHB granules and their distribution in the cell.


Subject(s)
Caulobacter crescentus , Caulobacter crescentus/genetics , Caulobacter crescentus/metabolism , Proteomics , Bacterial Proteins/metabolism , Hydroxybutyrates/metabolism , Polyesters/metabolism
3.
Can J Microbiol ; 68(4): 295-302, 2022 Apr.
Article in English | MEDLINE | ID: mdl-35100051

ABSTRACT

The study of peptidoglycan-binding proteins frequently requires in vitro binding assays, in which the isolated peptidoglycan used as a substrate must be carefully quantified. Here, we describe an easy and sensitive assay for peptidoglycan quantification based on a modified Nelson-Somogyi reducing sugar assay. We report the response of this assay to different common sugars and adapt its use to peptidoglycan samples subjected to acid hydrolysis. This method showed better sensitivity than the peptidoglycan quantification method based on the acid detection of diaminopimelic acid. The method described in this work, besides being valuable in the characterization of peptidoglycan-binding proteins, is also useful for the quantification of reducing monosaccharides or polysaccharides after acid or hydrolysis.


Subject(s)
Cell Wall , Sugars , Bacteria/metabolism , Cell Wall/metabolism , Hydrolysis , Peptidoglycan/metabolism
4.
Environ Microbiol ; 23(1): 143-159, 2021 01.
Article in English | MEDLINE | ID: mdl-33063925

ABSTRACT

Sphingolipids are essential and common membrane components in eukaryotic organisms, participating in many important cellular functions. Only a few bacteria are thought to harbour sphingolipids in their membranes, among them the well-studied α-proteobacterium Caulobacter crescentus, a model organism for asymmetric cell division and cellular differentiation. Here, we report that C. crescentus wild type produces several molecular species of dihydroceramides, which are not produced in a mutant lacking the structural gene for serine palmitoyltransferase (spt). Whereas growth of a spt-deficient mutant and wild type are indistinguishable during the exponential phase of growth, survival of the spt-deficient mutant is much reduced, in comparison with wild type, during stationary phase of growth, especially at elevated temperatures. The structural gene for spt is located within a genomic cluster, comprising another 16 genes and which, like spt, are important for fitness of C. crescentus. Mutants deficient in genes linked to spt by high cofitness were unable to produce dihydroceramide or to survive in stationary phase of growth at elevated temperatures. At least five structural genes are required for dihydroceramide biosynthesis in C. crescentus and sphingolipid biosynthesis is needed for survival of this bacterium and the integrity of its outer membrane.


Subject(s)
Bacterial Proteins/metabolism , Caulobacter crescentus/growth & development , Caulobacter crescentus/metabolism , Ceramides/biosynthesis , Bacterial Proteins/genetics , Caulobacter crescentus/genetics , Cell Membrane/genetics , Cell Membrane/metabolism , Mutation , Serine C-Palmitoyltransferase/genetics , Serine C-Palmitoyltransferase/metabolism , Sphingolipids/biosynthesis
5.
Microbiology (Reading) ; 167(3)2021 03.
Article in English | MEDLINE | ID: mdl-33620307

ABSTRACT

Rhodobacter sphaeroides can use C4-dicarboxylic acids to grow heterotrophically or photoheterotropically, and it was previously demonstrated in Rhodobacter capsulatus that the DctPQM transporter system is essential to support growth using these organic acids under heterotrophic but not under photoheterotrophic conditions. In this work we show that in R. sphaeroides this transporter system is essential for photoheterotrophic and heterotrophic growth, when C4-dicarboxylic acids are used as a carbon source. We also found that over-expression of dctPQM is detrimental for photoheterotrophic growth in the presence of succinic acid in the culture medium. In agreement with this, we observed a reduction of the dctPQM promoter activity in cells growing under these conditions, indicating that the amount of DctPQM needs to be reduced under photoheterotrophic growth. It has been reported that the two-component system DctS and DctR activates the expression of dctPQM. Our results demonstrate that in the absence of DctR, dctPQM is still expressed albeit at a low level. In this work, we have found that the periplasmic component of the transporter system, DctP, has a role in both transport and in signalling the DctS/DctR two-component system.


Subject(s)
Bacterial Proteins/metabolism , Membrane Transport Proteins/metabolism , Periplasm/metabolism , Rhodobacter sphaeroides/metabolism , Bacterial Proteins/genetics , Biological Transport , Dicarboxylic Acids/metabolism , Gene Expression Regulation, Bacterial/radiation effects , Heterotrophic Processes , Light , Membrane Transport Proteins/genetics , Periplasm/genetics , Phototrophic Processes , Promoter Regions, Genetic , Rhodobacter sphaeroides/genetics , Rhodobacter sphaeroides/growth & development , Rhodobacter sphaeroides/radiation effects , Succinic Acid/metabolism
6.
J Bacteriol ; 202(7)2020 03 11.
Article in English | MEDLINE | ID: mdl-31932315

ABSTRACT

Activation of the two-component system formed by CckA, ChpT, and CtrA (kinase, phosphotransferase, and response regulator, respectively) in Rhodobacter sphaeroides does not occur under the growth conditions commonly used in the laboratory. However, it is possible to isolate a gain-of-function mutant in CckA that turns the system on. Using massive parallel transcriptome sequencing (RNA-seq), we identified 321 genes that are differentially regulated by CtrA. From these genes, 239 were positively controlled and 82 were negatively regulated. Genes encoding the Fla2 polar flagella and gas vesicle proteins are strongly activated by CtrA. Genes involved in stress responses as well as several transcriptional factors are also positively controlled, whereas the photosynthetic and CO2 fixation genes are repressed. Potential CtrA-binding sites were bioinformatically identified, leading to the proposal that at least 81 genes comprise the direct regulon. Based on our results, we ponder that the transcriptional response orchestrated by CtrA enables a lifestyle in which R. sphaeroides will effectively populate the surface layer of a water body enabled by gas vesicles and will remain responsive to chemotactic stimuli using the chemosensoring system that controls the Fla2 flagellum. Simultaneously, fine-tuning of photosynthesis and stress responses will reduce the damage caused by heat and high light intensity in this water stratum. In summary, in this bacterium CtrA has evolved to control physiological responses that allow its adaptation to a particular lifestyle instead of controlling the cell cycle as occurs in other species.IMPORTANCE Cell motility in Alphaproteobacteria is frequently controlled by the CckA, ChpT, and CtrA two-component system. Under the growth conditions commonly used in the laboratory, ctrA is transcriptionally inactive in Rhodobacter sphaeroides, and motility depends on the Fla1 flagellar system that was acquired by a horizontal transfer event. Likely, the incorporation of this flagellar system released CtrA from the strong selective pressure of being the main motility regulator, allowing this two-component system to specialize and respond to some specific conditions. Identifying the genes that are directly regulated by CtrA could help us understand the conditions in which the products of this regulon are required. Massive parallel transcriptome sequencing (RNA-seq) revealed that CtrA orchestrates an adaptive response that contributes to the colonization of a particular environmental niche.


Subject(s)
Adaptation, Biological , Gene Expression Regulation, Bacterial , Rhodobacter sphaeroides/physiology , Transcription Factors/genetics , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Computational Biology , Conserved Sequence , Gene Expression Profiling , Photosynthesis , Position-Specific Scoring Matrices , Promoter Regions, Genetic , Repetitive Sequences, Nucleic Acid , Transcription Factors/metabolism
7.
J Bacteriol ; 201(17)2019 09 01.
Article in English | MEDLINE | ID: mdl-31209077

ABSTRACT

OmpA-like proteins are involved in the stabilization of the outer membrane, resistance to osmotic stress, and pathogenesis. In Caulobacter crescentus, OmpA2 forms a physiologically relevant concentration gradient that forms by an uncharacterized mechanism, in which the gradient orientation depends on the position of the gene locus. This suggests that OmpA2 is synthesized and translocated to the periplasm close to the position of the gene and that the gradient forms by diffusion of the protein from this point. To further understand how the OmpA2 gradient is established, we determined the localization and mobility of the full protein and of its two structural domains. We show that OmpA2 does not diffuse and that both domains are required for gradient formation. The C-terminal domain binds tightly to the cell wall and the immobility of the full protein depends on the binding of this domain to the peptidoglycan; in contrast, the N-terminal membrane ß-barrel diffuses slowly. Our results support a model in which once OmpA2 is translocated to the periplasm, the N-terminal membrane ß-barrel is required for an initial fast restriction of diffusion until the position of the protein is stabilized by the binding of the C-terminal domain to the cell wall. The implications of these results on outer membrane protein diffusion and organization are discussed.IMPORTANCE Protein concentration gradients play a relevant role in the organization of the bacterial cell. The Caulobacter crescentus protein OmpA2 forms an outer membrane polar concentration gradient. To understand the molecular mechanism that determines the formation of this gradient, we characterized the mobility and localization of the full protein and of its two structural domains an integral outer membrane ß-barrel and a periplasmic peptidoglycan binding domain. Each domain has a different role in the formation of the OmpA2 gradient, which occurs in two steps. We also show that the OmpA2 outer membrane ß-barrel can diffuse, which is in contrast to what has been reported previously for several integral outer membrane proteins in Escherichia coli, suggesting a different organization of the outer membrane proteins.


Subject(s)
Bacterial Outer Membrane Proteins/metabolism , Bacterial Outer Membrane/physiology , Caulobacter crescentus/metabolism , Bacterial Outer Membrane Proteins/genetics , Caulobacter crescentus/genetics , Diffusion , Gene Expression Regulation, Bacterial/physiology , Protein Folding
8.
J Bacteriol ; 201(5)2019 03 01.
Article in English | MEDLINE | ID: mdl-30559113

ABSTRACT

The flagellar lipoprotein FlgP has been identified in several species of bacteria, and its absence provokes different phenotypes. In this study, we show that in the alphaproteobacterium Rhodobacter sphaeroides, a ΔflgP mutant is unable to assemble the hook and the filament. In contrast, the membrane/supramembrane (MS) ring and the flagellar rod appear to be assembled. In the absence of FlgP a severe defect in the transition from rod to hook polymerization occurs. In agreement with this idea, we noticed a reduction in the amount of intracellular flagellin and the chemotactic protein CheY4, both encoded by genes dependent on σ28 This suggests that in the absence of flgP the switch to export the anti-sigma factor, FlgM, does not occur. The presence of FlgP was detected by Western blot in samples of isolated wild-type filament basal bodies, indicating that FlgP is an integral part of the flagellar structure. In this regard, we show that FlgP interacts with FlgH and FlgT, indicating that FlgP should be localized closely to the L and H rings. We propose that FlgP could affect the architecture of the L ring, which has been recently identified to be responsible for the rod-hook transition.IMPORTANCE Flagellar based motility confers a selective advantage on bacteria by allowing migration to favorable environments or in pathogenic species to reach the optimal niche for colonization. The flagellar structure has been well established in Salmonella However, other accessory components have been identified in other species. Many of these have been implied in adapting the flagellar function to enable faster rotation, or higher torque. FlgP has been proposed to be the main component of the basal disk located underlying the outer membrane in Campylobacter jejuni and Vibrio fischeri Its role is still unclear, and its absence impacts motility differently in different species. The study of these new components will bring a better understanding of the evolution of this complex organelle.


Subject(s)
Flagella/metabolism , Flagellin/metabolism , Lipoproteins/metabolism , Rhodobacter sphaeroides/physiology , Blotting, Western , Flagella/physiology , Flagellin/genetics , Gene Deletion , Lipoproteins/deficiency , Protein Interaction Mapping , Rhodobacter sphaeroides/genetics
9.
BMC Microbiol ; 18(1): 129, 2018 10 10.
Article in English | MEDLINE | ID: mdl-30305031

ABSTRACT

BACKGROUND: Rhodobacter sphaeroides has two sets of flagellar genes, fla1 and fla2, that are responsible for the synthesis of two different flagellar structures. The expression of the fla2 genes is under control of CtrA. In several α-proteobacteria CtrA is also required for the expression of the flagellar genes, but the architecture of CtrA-dependent promoters has only been studied in detail in Caulobacter crescentus. In many cases the expression of fla genes originates from divergent promoters located a few base pairs apart, suggesting a particular arrangement of the cis-acting sites. RESULTS: Here we characterized several control regions of the R. sphaeroides fla2 genes and analyzed in detail two regions containing the divergent promoters flgB2p-fliI2p, and fliL2p-fliF2p. Binding sites for CtrA of these promoters were identified in silico and tested by site directed mutagenesis. We conclude that each one of these promoter regions has a particular arrangement, either a single CtrA binding site for activation of fliL2p and fliF2p, or two independent sites for activation of flgB2p and fliI2p. ChIP experiments confirmed that CtrA binds to the control region containing the flgB2 and fliI2 promoters, supporting the notion that CtrA directly controls the expression of the fla2 genes. The flgB and fliI genes are syntenic and show a short intercistronic region in closely related bacterial species. We analyzed these regions and found that the arrangement of the CtrA binding sites varies considerably. CONCLUSIONS: The results in this work reveal the arrangement of the fla2 divergent promoters showing that CtrA promotes transcriptional activation using more than a single architecture.


Subject(s)
Bacterial Proteins/genetics , Flagella/metabolism , Promoter Regions, Genetic , Rhodobacter sphaeroides/genetics , Transcriptional Activation , Binding Sites/genetics , Chemotaxis , DNA, Intergenic/genetics , DNA-Binding Proteins , Gene Expression Regulation, Bacterial
10.
J Bacteriol ; 199(8)2017 04 15.
Article in English | MEDLINE | ID: mdl-28167520

ABSTRACT

Bacterial cell division is a complex process that relies on a multiprotein complex composed of a core of widely conserved and generally essential proteins and on accessory proteins that vary in number and identity in different bacteria. The assembly of this complex and, particularly, the initiation of constriction are regulated processes that have come under intensive study. In this work, we characterize the function of DipI, a protein conserved in Alphaproteobacteria and Betaproteobacteria that is essential in Caulobacter crescentus Our results show that DipI is a periplasmic protein that is recruited late to the division site and that it is required for the initiation of constriction. The recruitment of the conserved cell division proteins is not affected by the absence of DipI, but localization of DipI to the division site occurs only after a mature divisome has formed. Yeast two-hybrid analysis showed that DipI strongly interacts with the FtsQLB complex, which has been recently implicated in regulating constriction initiation. A possible role of DipI in this process is discussed.IMPORTANCE Bacterial cell division is a complex process for which most bacterial cells assemble a multiprotein complex that consists of conserved proteins and of accessory proteins that differ among bacterial groups. In this work, we describe a new cell division protein (DipI) present only in a group of bacteria but essential in Caulobacter crescentus Cells devoid of DipI cannot constrict. Although a mature divisome is required for DipI recruitment, DipI is not needed for recruiting other division proteins. These results, together with the interaction of DipI with a protein complex that has been suggested to regulate cell wall synthesis during division, suggest that DipI may be part of the regulatory mechanism that controls constriction initiation.


Subject(s)
Caulobacter crescentus/metabolism , Cell Division/physiology , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Caulobacter crescentus/genetics , Gene Expression Regulation, Bacterial/physiology
11.
J Bacteriol ; 199(5)2017 03 01.
Article in English | MEDLINE | ID: mdl-27956523

ABSTRACT

Rhodobacter sphaeroides is an alphaproteobacterium that has two complete sets of flagellar genes. The fla1 set was acquired by horizontal transfer from an ancestral gammaproteobacterium and is the only set of flagellar genes that is expressed during growth under standard laboratory conditions. The products of these genes assemble a single, subpolar flagellum. In the absence of the Fla1 flagellum, a gain-of-function mutation in the histidine kinase CckA turns on the expression of the fla2 flagellar genes through the response regulator CtrA. The rotation of the Fla1 and Fla2 flagella is controlled by different sets of chemotaxis proteins. Here, we show that the expression of the chemotaxis proteins that control Fla2, along with the expression of the fla2 genes, is coordinated by CtrA, whereas the expression of the chemotaxis genes that control Fla1 is mediated by the master regulators of the Fla1 system. The coordinated expression of the chemosensory proteins with their cognate flagellar genes highlights the relevance of integrating the expression of the horizontally acquired fla1 genes with a chemosensory system independently of the regulatory proteins responsible for the expression of fla2 and its cognate chemosensory system. IMPORTANCE Gene acquisition via horizontal transfer represents a challenge to the recipient organism to adjust its metabolic and genetic networks to incorporate the new material in a way that represents an adaptive advantage. In the case of Rhodobacter sphaeroides, a complete set of flagellar genes was acquired and successfully coordinated with the native flagellar system. Here we show that the expression of the chemosensory proteins that control flagellar rotation is dependent on the master regulators of their corresponding flagellar system, minimizing the use of transcription factors required to express the native and horizontally acquired genes along with their chemotaxis proteins.


Subject(s)
Bacterial Proteins/metabolism , Chemotaxis/physiology , Flagella/physiology , Gene Expression Regulation, Bacterial/physiology , Rhodobacter sphaeroides/metabolism , Bacterial Proteins/genetics , Chemotaxis/genetics , Histidine Kinase/genetics , Histidine Kinase/metabolism , Rhodobacter sphaeroides/genetics
12.
Anal Biochem ; 518: 1-8, 2017 Feb 01.
Article in English | MEDLINE | ID: mdl-27984012

ABSTRACT

Lipid rafts or membrane microdomains have been proposed to compartmentalize cellular processes by spatially organizing diverse molecules/proteins in eukaryotic cells. Such membrane microdomains were recently reported to also exist in a few bacterial species. In this work, we report the development of a procedure for membrane microdomain isolation from Escherichia coli plasma membranes as well as a method to purify the latter. The method here reported could easily be adapted to other gram-negative bacteria, wherein the isolation of this kind of sub-membrane preparation imposes special difficulties. The analysis of isolated membrane microdomains might provide important information on the nature and function of these bacterial structures and permit their comparison with the ones of eukaryotic cells.


Subject(s)
Escherichia coli/chemistry , Membrane Microdomains/chemistry , Escherichia coli/metabolism , Membrane Microdomains/metabolism
13.
J Bacteriol ; 197(5): 833-47, 2015 Mar.
Article in English | MEDLINE | ID: mdl-25512309

ABSTRACT

Rhodobacter sphaeroides has two different sets of flagellar genes. Under the growth conditions commonly used in the laboratory, the expression of the fla1 set is constitutive, whereas the fla2 genes are not expressed. Phylogenetic analyses have previously shown that the fla1 genes were acquired by horizontal transfer from a gammaproteobacterium and that the fla2 genes are endogenous genes of this alphaproteobacterium. In this work, we characterized a set of mutants that were selected for swimming using the Fla2 flagella in the absence of the Fla1 flagellum (Fla2(+) strains). We determined that these strains have a single missense mutation in the histidine kinase domain of CckA. The expression of these mutant alleles in a Fla1(-) strain allowed fla2-dependent motility without selection. Motility of the Fla2(+) strains is also dependent on ChpT and CtrA. The mutant versions of CckA showed an increased autophosphorylation activity in vitro. Interestingly, we found that cckA is transcriptionally repressed by the presence of organic acids, suggesting that the availability of carbon sources could be a part of the signal that turns on this flagellar set. Evidence is presented showing that reactivation of fla1 gene expression in the Fla2(+) background strongly reduces the number of cells with Fla2 flagella.


Subject(s)
Bacterial Proteins/metabolism , Flagella/metabolism , Gene Expression Regulation, Bacterial , Protein Kinases/metabolism , Rhodobacter sphaeroides/enzymology , Bacterial Proteins/genetics , Flagella/genetics , Histidine Kinase , Protein Kinases/genetics , Rhodobacter sphaeroides/genetics , Rhodobacter sphaeroides/metabolism
14.
J Bacteriol ; 196(15): 2889-900, 2014 Aug.
Article in English | MEDLINE | ID: mdl-24891444

ABSTRACT

The outer membrane of Gram-negative bacteria is an essential structure involved in nutrient uptake, protection against harmful substances, and cell growth. Different proteins keep the outer membrane from blebbing out by simultaneously interacting with it and with the cell wall. These proteins have been mainly studied in enterobacteria, where OmpA and the Braun and Pal lipoproteins stabilize the outer membrane. Some degree of functional redundancy exists between these proteins, since none of them is essential but the absence of two of them results in a severe phenotype. Caulobacter crescentus has a different strategy to maintain its outer membrane, since it lacks the Braun lipoprotein and Pal is essential. In this work, we characterized OmpA2, an OmpA-like protein, in this bacterium. Our results showed that this protein is required for normal stalk growth and that it plays a minor role in the stability of the outer membrane. An OmpA2 fluorescent fusion protein showed that the concentration of this protein decreases from the stalk to the new pole. This localization pattern is important for its function, and it depends on the position of the gene locus in the chromosome and, as a consequence, in the cell. This result suggests that little diffusion occurs from the moment that the gene is transcribed until the mature protein attaches to the cell wall in the periplasm. This mechanism reveals the integration of different levels of information from protein function down to genome arrangement that allows the cell to self-organize.


Subject(s)
Bacterial Outer Membrane Proteins/metabolism , Caulobacter crescentus/metabolism , Chromosomes, Bacterial/genetics , Bacterial Outer Membrane Proteins/genetics , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Caulobacter crescentus/cytology , Caulobacter crescentus/genetics , Cell Cycle/genetics , Cell Membrane/metabolism , Cell Wall/metabolism , Chromosome Segregation , Genes, Reporter , Genetic Loci/genetics , Mutation , Periplasm/metabolism , Phenotype , Protein Transport , Recombinant Fusion Proteins
15.
PLoS One ; 19(3): e0298028, 2024.
Article in English | MEDLINE | ID: mdl-38507361

ABSTRACT

The bacterial flagellum is a complex structure formed by more than 25 different proteins, this appendage comprises three conserved structures: the basal body, the hook and filament. The basal body, embedded in the cell envelope, is the most complex structure and houses the export apparatus and the motor. In situ images of the flagellar motor in different species have revealed a huge diversity of structures that surround the well-conserved periplasmic components of the basal body. The identity of the proteins that form these novel structures in many cases has been elucidated genetically and biochemically, but in others they remain to be identified or characterized. In this work, we report that in the alpha proteobacteria Cereibacter sphaeroides the novel protein MotK along with MotE are essential for flagellar rotation. We show evidence that these periplasmic proteins interact with each other and with MotB2. Moreover, these proteins localize to the flagellated pole and MotK localization is dependent on MotB2 and MotA2. These results together suggest that the role of MotK and MotE is to activate or recruit the flagellar stators to the flagellar structure.


Subject(s)
Bacterial Proteins , Periplasmic Proteins , Bacterial Proteins/metabolism , Periplasmic Proteins/metabolism , Rotation , Flagella/metabolism , Periplasm/metabolism
16.
J Bacteriol ; 195(23): 5285-96, 2013 Dec.
Article in English | MEDLINE | ID: mdl-24056105

ABSTRACT

In this work, we describe a periplasmic protein that is essential for flagellar rotation in Rhodobacter sphaeroides. This protein is encoded upstream of flgA, and its expression is dependent on the flagellar master regulator FleQ and on the class III flagellar activator FleT. Sequence comparisons suggest that this protein is a distant homologue of FlgT. We show evidence that in R. sphaeroides, FlgT interacts with the periplasmic regions of MotB and FliL and with the flagellar protein MotF, which was recently characterized as a membrane component of the flagellum in this bacterium. In addition, the localization of green fluorescent protein (GFP)-MotF is completely dependent on FlgT. The Mot(-) phenotype of flgT cells was weakly suppressed by point mutants of MotB that presumably keep the proton channel open and efficiently suppress the Mot(-) phenotype of motF and fliL cells, indicating that FlgT could play an additional role beyond the opening of the proton channel. The presence of FlgT in purified filament-hook-basal bodies of the wild-type strain was confirmed by Western blotting, and the observation of these structures under an electron microscope showed that the basal bodies from flgT cells had lost the ring that covers the LP ring in the wild-type structure. Moreover, MotF was detected by immunoblotting in the basal bodies obtained from the wild-type strain but not from flgT cells. From these results, we suggest that FlgT forms a ring around the LP ring, which anchors MotF and stabilizes the stator complex of the flagellar motor.


Subject(s)
Bacterial Proteins/metabolism , Flagella/physiology , Movement , Rhodobacter sphaeroides/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Gene Deletion , Gene Expression Regulation, Bacterial/physiology , Models, Molecular , Protein Conformation , Rhodobacter sphaeroides/genetics
17.
Mol Microbiol ; 84(5): 832-44, 2012 Jun.
Article in English | MEDLINE | ID: mdl-22524202

ABSTRACT

The ß-barrel assembly machine (BAM) complex is an essential feature of all bacteria with an outer membrane. The core subunit of the BAM complex is BamA and, in Escherichia coli, four lipoprotein subunits: BamB, BamC, BamD and BamE, also function in the BAM complex. Hidden Markov model analysis was used to comprehensively assess the distribution of subunits of the BAM lipoproteins across all subclasses of proteobacteria. A patchwork distribution was detected which is readily reconciled with the evolution of the α-, ß-, γ-, δ- and ε-proteobacteria. Our findings lead to a proposal that the ancestral BAM complex was composed of two subunits: BamA and BamD, and that BamB, BamC and BamE evolved later in a distinct sequence of events. Furthermore, in some lineages novel lipoproteins have evolved instead of the lipoproteins found in E. coli. As an example of this concept, we show that no known species of α-proteobacteria has a homologue of BamC. However, purification of the BAM complex from the model α-proteobacterium Caulobacter crescentus identified a novel subunit we refer to as BamF, which has a conserved sequence motif related to sequences found in BamC. BamF and BamD can be eluted from the BAM complex under similar conditions, mirroring the BamC:D module seen in the BAM complex of γ-proteobacteria such as E. coli.


Subject(s)
Bacterial Outer Membrane Proteins/genetics , Evolution, Molecular , Lipoproteins/genetics , Proteobacteria/genetics , DNA, Bacterial/genetics , Genotype , Protein Subunits/genetics
18.
J Bacteriol ; 194(22): 6174-83, 2012 Nov.
Article in English | MEDLINE | ID: mdl-22961858

ABSTRACT

Here we describe a novel component essential for flagellar rotation in Rhodobacter sphaeroides. This protein is encoded by motF (RSP_0067), the first gene of a predicted transcriptional unit which contains two hypothetical genes. Sequence analysis indicated that MotF is a bitopic membrane-spanning protein. Protease sensitivity assays and green fluorescent protein (GFP) fusions confirmed this prediction and allowed us to conclude that the C terminus of MotF is located in the periplasmic space. Wild-type cells expressing a functional GFP-MotF fusion show a single fluorescent focus per cell. The localization of this protein in different genetic backgrounds allowed us to determine that normal localization of MotF depends on the presence of FliL and MotB. Characterization of a ΔmotF pseudorevertant strain revealed that a single nucleotide change in motB suppresses the Mot(-) phenotype of the motF mutant. Additionally, we show that MotF also becomes dispensable when other mutant alleles of motB previously isolated as second-site suppressors of ΔfliL were expressed in the motF mutant strain. These results show that MotF is a new component of the Fla1 flagellum, which together with FliL is required to promote flagellar rotation, possibly through MotB.


Subject(s)
Bacterial Proteins/metabolism , Flagella/metabolism , Gene Expression Regulation, Bacterial/physiology , Molecular Motor Proteins/metabolism , Rhodobacter sphaeroides/metabolism , Amino Acid Sequence , Animals , Antibodies, Bacterial , Bacterial Proteins/genetics , Female , Flagella/genetics , Membrane Proteins/genetics , Membrane Proteins/metabolism , Mice , Mice, Inbred BALB C , Molecular Motor Proteins/genetics , Mutation , Periplasm , Plasmids , Point Mutation , Rhodobacter sphaeroides/genetics
19.
PLoS Pathog ; 6(4): e1000834, 2010 Apr 01.
Article in English | MEDLINE | ID: mdl-20368969

ABSTRACT

Acinetobacter baumannii is a common pathogen whose recent resistance to drugs has emerged as a major health problem. Ethanol has been found to increase the virulence of A. baumannii in Dictyostelium discoideum and Caenorhabditis elegans models of infection. To better understand the causes of this effect, we examined the transcriptional profile of A. baumannii grown in the presence or absence of ethanol using RNA-Seq. Using the Illumina/Solexa platform, a total of 43,453,960 reads (35 nt) were obtained, of which 3,596,474 mapped uniquely to the genome. Our analysis revealed that ethanol induces the expression of 49 genes that belong to different functional categories. A strong induction was observed for genes encoding metabolic enzymes, indicating that ethanol is efficiently assimilated. In addition, we detected the induction of genes encoding stress proteins, including upsA, hsp90, groEL and lon as well as permeases, efflux pumps and a secreted phospholipase C. In stationary phase, ethanol strongly induced several genes involved with iron assimilation and a high-affinity phosphate transport system, indicating that A. baumannii makes a better use of the iron and phosphate resources in the medium when ethanol is used as a carbon source. To evaluate the role of phospholipase C (Plc1) in virulence, we generated and analyzed a deletion mutant for plc1. This strain exhibits a modest, but reproducible, reduction in the cytotoxic effect caused by A. baumannii on epithelial cells, suggesting that phospholipase C is important for virulence. Overall, our results indicate the power of applying RNA-Seq to identify key modulators of bacterial pathogenesis. We suggest that the effect of ethanol on the virulence of A. baumannii is multifactorial and includes a general stress response and other specific components such as phospholipase C.


Subject(s)
Acinetobacter baumannii/drug effects , Acinetobacter baumannii/pathogenicity , Central Nervous System Depressants/pharmacology , Ethanol/pharmacology , Gene Expression/drug effects , RNA, Bacterial/analysis , Acinetobacter Infections/metabolism , Acinetobacter Infections/pathology , Acinetobacter baumannii/genetics , Cell Line , Gene Expression Profiling , Gene Expression Regulation, Bacterial/drug effects , Gene Expression Regulation, Bacterial/genetics , Humans , Reverse Transcriptase Polymerase Chain Reaction , Type C Phospholipases/biosynthesis , Type C Phospholipases/drug effects , Virulence/drug effects , Virulence/genetics
20.
Proc Natl Acad Sci U S A ; 106(37): 15791-5, 2009 Sep 15.
Article in English | MEDLINE | ID: mdl-19717453

ABSTRACT

Molecular machines drive essential biological processes, with the component parts of these machines each contributing a partial function or structural element. Mitochondria are organelles of eukaryotic cells, and depend for their biogenesis on a set of molecular machines for protein transport. How these molecular machines evolved is a fundamental question. Mitochondria were derived from an alpha-proteobacterial endosymbiont, and we identified in alpha-proteobacteria the component parts of a mitochondrial protein transport machine. In bacteria, the components are found in the inner membrane, topologically equivalent to the mitochondrial proteins. Although the bacterial proteins function in simple assemblies, relatively little mutation would be required to convert them to function as a protein transport machine. This analysis of protein transport provides a blueprint for the evolution of cellular machinery in general.


Subject(s)
Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Mitochondrial Membrane Transport Proteins/genetics , Mitochondrial Membrane Transport Proteins/metabolism , Bacterial Proteins/chemistry , Carrier Proteins/genetics , Carrier Proteins/metabolism , Caulobacter crescentus/genetics , Caulobacter crescentus/metabolism , Humans , Membrane Proteins/genetics , Membrane Proteins/metabolism , Mitochondrial Membrane Transport Proteins/chemistry , Mitochondrial Precursor Protein Import Complex Proteins , Mitochondrial Proteins/genetics , Mitochondrial Proteins/metabolism , Models, Molecular , Protein Conformation , Protein Structure, Tertiary , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism , Species Specificity
SELECTION OF CITATIONS
SEARCH DETAIL