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1.
Braz J Microbiol ; 55(3): 2727-2738, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39222218

ABSTRACT

Due to the increasing occurrence of drug resistant urinary tract infections (UTI) among children, there is a need to investigate alternative effective treatment protocols such as nanoparticles. Flagella and fimbriae are primary factors contributing the virulence of urinary tract infecting bacteria. The aim of this study was to assess the antibacterial effects of zinc oxide nanoparticles which have been synthesized using both chemical and green methods on multi-drug resistant (MDR) uropathogenic bacteria encoding fli and fim genes and investigating their binding ability to bacterial appendage proteins. A total of 30 urine culture samples were collected from children under 2 years old diagnosed with urinary tract infection. The isolates underwent antibiotic suseptibility assessment and the isolates demonstrating MDR were subjected to molecular amplification of fimG (fimbrial) and fliD and fliT (flagellal) genes. The confirmation of cellular appendages was achieved through silver nitrate staining. The antibacterial efficacy of the synthetized nanoparticles was assessed using the micro and macrodilution methods. The successful binding of nanoparticles to bacterial appendage proteins was confirmed through mobility shift and membrane filter assays. The dimensions of chemically synthesized ZnO nanoparticles and green nanoparticles were measured at 30 nm and 85 nm, respectively, with the exhibition of hexagonal geometries. The nanoparticles synthesized through chemical and green methods exhibited minimum inhibitory concentrations (MIC) of 0.0062-0.025 g/L and 0.3 g/L, respectively. The ability of ZnO nanoparticles to bind bacterial appendage proteins and to combat MDR uropathogenic bacteria are promising for new treatment protocols against UTI in children in future.


Subject(s)
Anti-Bacterial Agents , Drug Resistance, Multiple, Bacterial , Flagella , Urinary Tract Infections , Zinc Oxide , Zinc Oxide/pharmacology , Zinc Oxide/chemistry , Zinc Oxide/metabolism , Anti-Bacterial Agents/pharmacology , Humans , Urinary Tract Infections/microbiology , Urinary Tract Infections/drug therapy , Flagella/drug effects , Flagella/genetics , Flagella/metabolism , Microbial Sensitivity Tests , Fimbriae, Bacterial/genetics , Fimbriae, Bacterial/metabolism , Fimbriae, Bacterial/drug effects , Nanoparticles/chemistry , Infant , Metal Nanoparticles/chemistry
2.
Schweiz Arch Tierheilkd ; 166(9): 451-458, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39225506

ABSTRACT

INTRODUCTION: Pigs without intestinal receptors for F4 fimbriae are congenitally resistant to F4 fimbriae-bearing enterotoxigenic Escherichia coli (ETEC F4). In general, 50 % and 100 % of piglets born to resistant (RR) sows crossed with hetero- or homozygous susceptible (SR, SS) boars, respectively, are susceptible but do not receive colostral antibodies against F4 fimbriae unless the sows have been vaccinated. The question arises as to whether resistant sows produce protective amounts of F4 antifimbrial antibodies after vaccination. The serum and colostrum antibody titres of 12 resistant and 12 susceptible vaccinated gilts were compared. The effect of the receptor status of the dam and sire on the preweaning performance of 5027 piglets was evaluated using Agroscope's recordings. The sows of the experimental herd, where ETEC F4 was circulating, were vaccinated against ETEC twice during the first pregnancy and once during each following pregnancy. The log2 transformed F4 antibody titres in the serum obtained after the second vaccine injection as well as in the colostrum of the 12 resistant animals were lower than the titres of the susceptible animals (serum: F4ab 11,19 ± 1,44 vs. 12,18 ± 1,33, P = 0,096; F4ac 10,03 ± 1,58 vs. 11,59 ± 1,43, P = 0,019; colostrum: F4ab 12,20 ± 2,41 vs. 14,02 ± 1,31, P = 0,033; F4ac 10,93 ± 2,46 vs. 13,03 ± 5,21, P = 0,006). The heat labile enterotoxin (LT) antibody titres after vaccination did not differ between susceptible and resistant animals (p > 0,10). Preweaning mortality in the offspring of RR sows × SS boars was slightly lower than in the offspring of SS sows × RR boars (P = 0,04), suggesting that the disease risk of susceptible piglets born to vaccinated resistant sows was not increased, even though they received colostrum with a slightly reduced content of antibody against F4 fimbriae.


INTRODUCTION: Les porcs dépourvus de récepteurs intestinaux pour les fimbriae F4 sont congénitalement résistants aux Escherichia coli entérotoxinogènes porteurs de fimbriae F4 (ETEC F4). En général, 50 % et 100 % des porcelets nés de truies résistantes (RR) croisées avec des verrats hétéro- ou homozygotes sensibles (SR, SS), respectivement, sont sensibles mais ne reçoivent pas d'anticorps colostraux contre les fimbriae F4, à moins que les truies n'aient été vaccinées. La question se pose de savoir si les truies résistantes produisent des quantités protectrices d'anticorps antifimbriae F4 après la vaccination. Les titres d'anticorps dans le sérum et le colostrum de 12 truies reproductrices vaccinées résistantes et de 12 truies reproductrices vaccinées sensibles ont été comparés et l'effet du statut récepteur de la mère et du père sur les performances avant sevrage de 5027 porcelets a été évalué. Les truies du troupeau expérimental, où circulait ETEC F4, ont été vaccinées deux fois au cours de la première gestation et une fois au cours de chaque gestation suivante contre ETEC. Les titres d'anticorps F4 transformés en log2 dans le sérum obtenu après la deuxième injection de vaccin ainsi que dans le colostrum des 12 animaux résistants étaient inférieurs aux titres des animaux sensibles (sérum : F4ab 11,19 ± 1,44 vs. 12,18 ± 1,33, P = 0,096 ; F4ac 10,03 ± 1,58 vs. 11,59 ± 1,43, P = 0,019 ; colostrum : F4ab 12,20 ± 2,41 vs. 14,02 ± 1,31, P = 0,033 ; F4ac 10,93 ± 2,46 vs. 13,03 ± 5,21, P = 0,006). Les titres d'anticorps contre l'entérotoxine thermolabile (LT) après la vaccination ne différaient pas entre les animaux sensibles et résistants (p > 0,10). La mortalité avant sevrage dans la progéniture des truies RR × verrats SS était légèrement inférieure à celle de la progéniture des truies SS × verrats RR (P = 0,04), ce qui suggère que le risque de maladie des porcelets sensibles nés de truies résistantes vaccinées n'a pas été augmenté, même s'ils ont reçu du colostrum avec une teneur légèrement réduite en anticorps contre les fimbriae F4.


Subject(s)
Enterotoxigenic Escherichia coli , Escherichia coli Infections , Escherichia coli Vaccines , Fimbriae, Bacterial , Swine Diseases , Animals , Swine , Escherichia coli Infections/veterinary , Escherichia coli Infections/prevention & control , Escherichia coli Infections/immunology , Swine Diseases/prevention & control , Swine Diseases/immunology , Swine Diseases/microbiology , Female , Escherichia coli Vaccines/immunology , Escherichia coli Vaccines/administration & dosage , Enterotoxigenic Escherichia coli/immunology , Fimbriae, Bacterial/immunology , Fimbriae, Bacterial/genetics , Pregnancy , Colostrum/immunology , Antibodies, Bacterial/blood , Weaning
3.
Microbiology (Reading) ; 170(9)2024 Sep.
Article in English | MEDLINE | ID: mdl-39287971

ABSTRACT

Many cyanobacteria, both unicellular and filamentous, exhibit surface motility driven by type IV pili (T4P). While the component parts of the T4P machinery described in other prokaryotes are largely conserved in cyanobacteria, there are also several T4P proteins that appear to be unique to this phylum. One recently discovered component is EbsA, which has been characterized in two unicellular cyanobacteria. EbsA was found to form a complex with other T4P proteins and is essential for motility. Additionally, deletion of ebsA in one of these strains promoted the formation of biofilms. To expand the understanding of ebsA in cyanobacteria, its role in motility and biofilm formation were investigated in the model filamentous cyanobacterium Nostoc punctiforme. Expression of ebsA was strictly limited to hormogonia, the motile filaments of N. punctiforme. Deletion of ebsA did not affect hormogonium development but resulted in the loss of motility and the failure to accumulate surface pili or produce hormogonium polysaccharide (HPS), consistent with pervious observations in unicellular cyanobacteria. Protein-protein interaction studies indicated that EbsA directly interacts with PilB, and the localization of EbsA-GFP resembled that previously shown for both PilB and Hfq. Collectively, these results support the hypothesis that EbsA forms a complex along with PilB and Hfq that is essential for T4P extension. In contrast, rather than enhancing biofilm formation, deletion of both ebsA and pilB abolish biofilm formation in N. punctiforme, implying that distinct modalities for the relationship between motility, T4P function and biofilm formation may exist in different cyanobacteria.


Subject(s)
Bacterial Proteins , Biofilms , Fimbriae, Bacterial , Nostoc , Nostoc/genetics , Nostoc/metabolism , Nostoc/physiology , Nostoc/growth & development , Biofilms/growth & development , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Fimbriae, Bacterial/metabolism , Fimbriae, Bacterial/genetics , Gene Expression Regulation, Bacterial , Gene Deletion
4.
Proc Natl Acad Sci U S A ; 121(40): e2410594121, 2024 Oct.
Article in English | MEDLINE | ID: mdl-39316053

ABSTRACT

Gram-negative bacteria produce chaperone-usher pathway pili, which are extracellular protein fibers tipped with an adhesive protein that binds to a receptor with stereochemical specificity to determine host and tissue tropism. The outer-membrane usher protein, together with a periplasmic chaperone, assembles thousands of pilin subunits into a highly ordered pilus fiber. The tip adhesin in complex with its cognate chaperone activates the usher to allow extrusion across the outer membrane. The structural requirements to translocate the adhesin through the usher pore from the periplasm to the extracellular space remains incompletely understood. Here, we present a cryoelectron microscopy structure of a quaternary tip complex in the type 1 pilus system from Escherichia coli, which consists of the usher FimD, chaperone FimC, adhesin FimH, and the tip adapter FimF. In this structure, the usher FimD is caught in the act of secreting its cognate adhesin FimH. Comparison with previous structures depicting the adhesin either first entering or having completely exited the usher pore reveals remarkable structural plasticity of the two-domain adhesin during translocation. Moreover, a piliation assay demonstrated that the structural plasticity, enabled by a flexible linker between the two domains, is a prerequisite for adhesin translocation through the usher pore and thus pilus biogenesis. Overall, this study provides molecular details of adhesin translocation across the outer membrane and elucidates a unique conformational state adopted by the adhesin during stepwise secretion through the usher pore. This study elucidates fundamental aspects of FimH and usher dynamics critical in urinary tract infections and is leading to antibiotic-sparing therapeutics.


Subject(s)
Adhesins, Escherichia coli , Cryoelectron Microscopy , Escherichia coli Proteins , Escherichia coli , Fimbriae Proteins , Fimbriae, Bacterial , Fimbriae Proteins/metabolism , Fimbriae Proteins/chemistry , Fimbriae, Bacterial/metabolism , Adhesins, Escherichia coli/metabolism , Adhesins, Escherichia coli/chemistry , Escherichia coli Proteins/metabolism , Escherichia coli Proteins/chemistry , Escherichia coli/metabolism , Molecular Chaperones/metabolism , Molecular Chaperones/chemistry , Models, Molecular , Bacterial Outer Membrane Proteins/metabolism , Bacterial Outer Membrane Proteins/chemistry
5.
BMC Microbiol ; 24(1): 344, 2024 Sep 14.
Article in English | MEDLINE | ID: mdl-39271999

ABSTRACT

BACKGROUND: In the present study, we aimed to determine the frequency of the csgA, fimH, mrkD, foc, papaGI, papGII and papGIII genes, to provide and to design fimbrial adhesin gene (FAG) patterns and profiles for the isolated uropathogenic Escherichia coli (UPEC) strains. METHODS: The enrollment of 108 positive urine samples was performed during seven months, between January 2022 and July 2022. The UPEC strains were confirmed through the standard microbiological and biochemical tests. The antimicrobial susceptibility test was performed through the Kirby-Bauer disc diffusion method. Molecular screening of FAGs was done through the polymerase chain reaction technology. The statistical analyses including chi square and Fisher's exact tests were performed to interpret the obtained results in the present study. RESULTS: As the main results, the antimicrobial resistance (AMR) patterns, multi- (MDR) and extensively drug-resistance (XDR) patterns and FAG patterns were designed and provided. fimH (93.3%), csgA (90.4%) and papG (37.5%) (papGII (30.8%)) genes were recognized as the top three FAGs, respectively. Moreover, the frequency of csgA-fimH gene profile was identified as the top FAG pattern (46.2%) among the others. The isolates bearing csgA-fimH gene profile were armed with a versatile of phenotypic AMR patterns. In the current study, 27.8%, 69.4% and 1.9% of the UPEC isolates were detected as extended-spectrum ß-lactamases (ESBLs) producers, MDR and XDR strains, respectively. CONCLUSIONS: In conclusion, detection, providing and designing of patterns and profiles in association with FAGs, AMR feature in UPEC strains give us an effective option to have a successful and influential prevention for both of UTIs initiation and AMR feature.


Subject(s)
Escherichia coli Infections , Escherichia coli Proteins , Fimbriae Proteins , Fimbriae, Bacterial , Urinary Tract Infections , Uropathogenic Escherichia coli , Uropathogenic Escherichia coli/genetics , Uropathogenic Escherichia coli/drug effects , Humans , Escherichia coli Proteins/genetics , Escherichia coli Infections/microbiology , Urinary Tract Infections/microbiology , Fimbriae Proteins/genetics , Fimbriae Proteins/metabolism , Fimbriae, Bacterial/genetics , Fimbriae, Bacterial/metabolism , Anti-Bacterial Agents/pharmacology , Microbial Sensitivity Tests , Adhesins, Escherichia coli/genetics , Adhesins, Escherichia coli/metabolism , Female , Adult , Molecular Chaperones/genetics , Molecular Chaperones/metabolism , Male , Drug Resistance, Multiple, Bacterial/genetics , Middle Aged , Young Adult , Adolescent , Bacterial Proteins
6.
Proc Natl Acad Sci U S A ; 121(39): e2409655121, 2024 Sep 24.
Article in English | MEDLINE | ID: mdl-39288182

ABSTRACT

Klebsiella pneumoniae is an important pathogen causing difficult-to-treat urinary tract infections (UTIs). Over 1.5 million women per year suffer from recurrent UTI, reducing quality of life and causing substantial morbidity and mortality, especially in the hospital setting. Uropathogenic E. coli (UPEC) is the most prevalent cause of UTI. Like UPEC, K. pneumoniae relies on type 1 pili, tipped with the mannose-binding adhesin FimH, to cause cystitis. However, K. pneumoniae FimH is a poor binder of mannose, despite a mannose-binding pocket identical to UPEC FimH. FimH is composed of two domains that are in an equilibrium between tense (low-affinity) and relaxed (high-affinity) conformations. Substantial interdomain interactions in the tense conformation yield a low-affinity, deformed mannose-binding pocket, while domain-domain interactions are broken in the relaxed state, resulting in a high-affinity binding pocket. Using crystallography, we identified the structural basis by which domain-domain interactions direct the conformational equilibrium of K. pneumoniae FimH, which is strongly shifted toward the low-affinity tense state. Removal of the pilin domain restores mannose binding to the lectin domain, thus showing that poor mannose binding by K. pneumoniae FimH is not an inherent feature of the mannose-binding pocket. Phylogenetic analyses of K. pneumoniae genomes found that FimH sequences are highly conserved. However, we surveyed a collection of K. pneumoniae isolates from patients with long-term indwelling catheters and identified isolates that possessed relaxed higher-binding FimH variants, which increased K. pneumoniae fitness in bladder infection models, suggesting that long-term residence within the urinary tract may select for higher-binding FimH variants.


Subject(s)
Fimbriae Proteins , Klebsiella pneumoniae , Mannose , Urinary Tract Infections , Klebsiella pneumoniae/metabolism , Klebsiella pneumoniae/genetics , Fimbriae Proteins/metabolism , Fimbriae Proteins/chemistry , Fimbriae Proteins/genetics , Urinary Tract Infections/microbiology , Mannose/metabolism , Humans , Protein Conformation , Adhesins, Escherichia coli/metabolism , Adhesins, Escherichia coli/chemistry , Adhesins, Escherichia coli/genetics , Binding Sites , Protein Domains , Klebsiella Infections/microbiology , Crystallography, X-Ray , Models, Molecular , Adhesins, Bacterial/metabolism , Adhesins, Bacterial/chemistry , Adhesins, Bacterial/genetics , Protein Binding , Female , Fimbriae, Bacterial/metabolism
7.
Mol Plant Pathol ; 25(9): e70001, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39223938

ABSTRACT

Xanthomonas albilineans (Xal) is a gram-negative bacterial pathogen responsible for developing sugarcane leaf scald disease, which engenders significant economic losses within the sugarcane industry. In the current study, homologous recombination exchange was carried out to induce mutations within the virB/D4-like type IV secretion system (T4SS) genes of Xal. The results revealed that the virB11-deletion mutant (ΔvirB11) exhibited a loss in swimming and twitching motility. Application of transmission electron microscopy analysis further demonstrated that the ΔvirB11 failed to develop flagella formation and type IV pilus morphology and exhibited reduced swarming behaviour and virulence. However, these alterations had no discernible impact on bacterial growth. Comparative transcriptome analysis between the wild-type Xal JG43 and the deletion-mutant ΔvirB11 revealed 123 differentially expressed genes (DEGs), of which 28 and 10 DEGs were notably associated with flagellar assembly and chemotaxis, respectively. In light of these findings, we postulate that virB11 plays an indispensable role in regulating the processes related to motility and chemotaxis in Xal.


Subject(s)
Bacterial Proteins , Fimbriae, Bacterial , Flagella , Xanthomonas , Xanthomonas/pathogenicity , Xanthomonas/genetics , Virulence/genetics , Fimbriae, Bacterial/metabolism , Fimbriae, Bacterial/ultrastructure , Fimbriae, Bacterial/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Adenosine Triphosphatases/metabolism , Adenosine Triphosphatases/genetics , Gene Expression Regulation, Bacterial , Morphogenesis , Plant Diseases/microbiology , Saccharum/microbiology
8.
Nat Microbiol ; 9(9): 2308-2322, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39227714

ABSTRACT

Swimming bacteria navigate chemical gradients using temporal sensing to detect changes in concentration over time. Here we show that surface-attached bacteria use a fundamentally different mode of sensing during chemotaxis. We combined microfluidic experiments, massively parallel cell tracking and fluorescent reporters to study how Pseudomonas aeruginosa senses chemical gradients during pili-based 'twitching' chemotaxis on surfaces. Unlike swimming cells, we found that temporal changes in concentration did not induce motility changes in twitching cells. We then quantified the chemotactic behaviour of stationary cells by following changes in the sub-cellular localization of fluorescent proteins as cells are exposed to a gradient that alternates direction. These experiments revealed that P. aeruginosa cells can directly sense differences in concentration across the lengths of their bodies, even in the presence of strong temporal fluctuations. Our work thus overturns the widely held notion that bacterial cells are too small to directly sense chemical gradients in space.


Subject(s)
Chemotaxis , Pseudomonas aeruginosa , Pseudomonas aeruginosa/physiology , Fimbriae, Bacterial/metabolism , Microfluidics/methods , Luminescent Proteins/metabolism , Luminescent Proteins/genetics
9.
Water Res ; 265: 122307, 2024 Nov 01.
Article in English | MEDLINE | ID: mdl-39180955

ABSTRACT

Ethanol feeding has been widely documented as an economical and effective strategy for establishing direct interspecies electron transfer (DIET) during anaerobic digestion. However, the mechanisms involved are still unclear, especially on correlation between intracellular electron transfer in electroactive bacteria and their gene expression for electrically conductive pili (e-pili), the most essential electrical connection component for DIET. Upon cooling from room temperature, the conductivity of digester aggregates with ethanol exponentially increased by an order of magnitude (from 45.5 to 125.4 µS/cm), whereas which with its metabolites (acetaldehyde [from 40.5 to 54.4 µS/cm] or acetate [from 32.1 to 50.4 µS/cm]) did not increase significantly. In addition, the digester aggregates only with ethanol were observed with a strong dependence of conductivity on pH. Metagenomic and metatranscriptomic analysis showed that Desulfovibrio desulfuricans was the most dominant and metabolically active bacterium that contained and highly expressed the genes for e-pili. Abundance of genes encoding the total type IV pilus assembly proteins (6.72E-04 vs 1.24E-03, P < 0.05), PilA that determined the conductive properties (2.22E-04 vs 2.44E-04, P > 0.05), and PilB that proceeded the polymerization of pilin (1.56E-04 vs 3.52E-03, P < 0.05) with ethanol was lower than that with acetaldehyde. However, transcript abundance of these genes with ethanol was generally higher than that with acetaldehyde. In comparison to acetaldehyde, ethanol increased the transcript abundance of genes encoding the key enzymes involved in NADH/NAD+ transformation on complex I and ATP synthesis on complex V in intracellular electron transport chain. The improvement of intracellular electron transfer in D. desulfuricans suggested that electrons were intracellularly energized with high energy to activate e-pili during DIET.


Subject(s)
Ethanol , Electron Transport , Ethanol/metabolism , Anaerobiosis , Electric Conductivity , Fimbriae, Bacterial/metabolism , Bacteria/metabolism , Gene Expression
10.
Arch Microbiol ; 206(9): 373, 2024 Aug 10.
Article in English | MEDLINE | ID: mdl-39127787

ABSTRACT

Adherence to both cellular and abiotic surfaces is a crucial step in the interaction of bacterial pathogens and commensals with their hosts. Bacterial surface structures known as fimbriae or pili play a fundamental role in the early colonization stages by providing specificity or tropism. Among the various fimbrial families, the chaperone-usher family has been extensively studied due to its ubiquity, diversity, and abundance. This family is named after the components that facilitate their biogenesis. Type 1 fimbria and P pilus, two chaperone-usher fimbriae associated with urinary tract infections, have been thoroughly investigated and serve as prototypes that have laid the foundations for understanding the biogenesis of this fimbrial family. Additionally, the study of the mechanisms regulating their expression has also been a subject of great interest, revealing that the regulation of the expression of the genes encoding these structures is a complex and diverse process, involving both common global regulators and those specific to each operon.


Subject(s)
Fimbriae Proteins , Fimbriae, Bacterial , Gene Expression Regulation, Bacterial , Molecular Chaperones , Fimbriae, Bacterial/metabolism , Fimbriae, Bacterial/genetics , Molecular Chaperones/metabolism , Molecular Chaperones/genetics , Fimbriae Proteins/genetics , Fimbriae Proteins/metabolism , Bacterial Adhesion , Operon
11.
mBio ; 15(9): e0148424, 2024 Sep 11.
Article in English | MEDLINE | ID: mdl-39092925

ABSTRACT

During pilus assembly within the Gram-positive bacterial envelope, membrane-bound sortase enzymes sequentially crosslink specific pilus protein monomers through their cell wall sorting signals (CWSS), starting with a designated tip pilin, followed by the shaft made of another pilin, ultimately anchoring the fiber base pilin to the cell wall. To date, the molecular determinants that govern pilus tip assembly and the underlying mechanism remain unknown. Here, we addressed this in the model organism Actinomyces oris. This oral microbe assembles a pathogenically important pilus (known as type 2 fimbria) whose shafts, made of FimA pilins, display one of two alternate tip pilins-FimB or the coaggregation factor CafA-that share a markedly similar CWSS. We demonstrate that swapping the CWSS of CafA with that of FimB produces a functional hybrid, which localizes at the pilus tip and mediates polymicrobial coaggregation, whereas alanine-substitution of the conserved FLIAG motif within the CWSS hampers these processes. Remarkably, swapping the CWSS of the normal cell wall-anchored glycoprotein GspA with that of CafA promotes the assembly of hybrid GspA at the FimA pilus tip. Finally, exchanging the CWSS of the Corynebacterium diphtheriae shaft pilin SpaA with that of CafA leads to the FLIAG motif-dependent localization of the heterologous pilus protein SpaA at the FimA pilus tip in A. oris. Evidently, the CWSS and the FLIAG motif of CafA are both necessary and sufficient for its destination to the cognate pilus tip specifically assembled by a designated sortase in the organism. IMPORTANCE: Gram-positive pili, whose precursors harbor a cell wall sorting signal (CWSS) needed for sortase-mediated pilus assembly, typically comprise a pilus shaft and a tip adhesin. How a pilin becomes a pilus tip, nevertheless, remains undetermined. We demonstrate here in Actinomyces oris that the CWSS of the tip pilin CafA is necessary and sufficient to promote pilus tip assembly, and this functional assembly involves a conserved FLIAG motif within the CWSS. This is evidenced by the fact that an A. oris cell-wall anchored glycoprotein, GspA, or a heterologous shaft pilin from Corynebacterium diphtheriae, SpaA, engineered to have the CWSS of CafA in place of their CWSS, localizes at the pilus tip in a process that requires the FLIAG motif. Our findings provide the molecular basis for sortase-catalyzed pilus tip assembly that is very likely employed by other Gram-positive bacteria and potential bioengineering applications to display antigens at controlled surface distance.


Subject(s)
Actinomyces , Bacterial Proteins , Cysteine Endopeptidases , Fimbriae Proteins , Fimbriae, Bacterial , Fimbriae, Bacterial/metabolism , Fimbriae, Bacterial/genetics , Fimbriae Proteins/metabolism , Fimbriae Proteins/genetics , Fimbriae Proteins/chemistry , Actinomyces/genetics , Actinomyces/enzymology , Actinomyces/metabolism , Cysteine Endopeptidases/metabolism , Cysteine Endopeptidases/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Aminoacyltransferases/metabolism , Aminoacyltransferases/genetics , Cell Wall/metabolism , Protein Sorting Signals
12.
mBio ; 15(9): e0095624, 2024 Sep 11.
Article in English | MEDLINE | ID: mdl-39105585

ABSTRACT

Chronic polymicrobial infections involving Pseudomonas aeruginosa and Staphylococcus aureus are prevalent, difficult to eradicate, and associated with poor health outcomes. Therefore, understanding interactions between these pathogens is important to inform improved treatment development. We previously demonstrated that P. aeruginosa is attracted to S. aureus using type IV pili (TFP)-mediated chemotaxis, but the impact of attraction on S. aureus growth and physiology remained unknown. Using live single-cell confocal imaging to visualize microcolony structure, spatial organization, and survival of S. aureus during coculture, we found that interspecies chemotaxis provides P. aeruginosa a competitive advantage by promoting invasion into and disruption of S. aureus microcolonies. This behavior renders S. aureus susceptible to P. aeruginosa antimicrobials. Conversely, in the absence of TFP motility, P. aeruginosa cells exhibit reduced invasion of S. aureus colonies. Instead, P. aeruginosa builds a cellular barrier adjacent to S. aureus and secretes diffusible, bacteriostatic antimicrobials like 2-heptyl-4-hydroxyquinoline-N-oxide (HQNO) into the S. aureus colonies. Reduced invasion leads to the formation of denser and thicker S. aureus colonies with increased HQNO-mediated lactic acid fermentation, a physiological change that could complicate treatment strategies. Finally, we show that P. aeruginosa motility modifications of spatial structure enhance competition against S. aureus. Overall, these studies expand our understanding of how P. aeruginosa TFP-mediated interspecies chemotaxis facilitates polymicrobial interactions, highlighting the importance of spatial positioning in mixed-species communities. IMPORTANCE: The polymicrobial nature of many chronic infections makes their eradication challenging. Particularly, coisolation of Pseudomonas aeruginosa and Staphylococcus aureus from airways of people with cystic fibrosis and chronic wound infections is common and associated with severe clinical outcomes. The complex interplay between these pathogens is not fully understood, highlighting the need for continued research to improve management of chronic infections. Our study unveils that P. aeruginosa is attracted to S. aureus, invades into neighboring colonies, and secretes anti-staphylococcal factors into the interior of the colony. Upon inhibition of P. aeruginosa motility and thus invasion, S. aureus colony architecture changes dramatically, whereby S. aureus is protected from P. aeruginosa antagonism and responds through physiological alterations that may further hamper treatment. These studies reinforce accumulating evidence that spatial structuring can dictate community resilience and reveal that motility and chemotaxis are critical drivers of interspecies competition.


Subject(s)
Chemotaxis , Pseudomonas aeruginosa , Staphylococcus aureus , Pseudomonas aeruginosa/physiology , Pseudomonas aeruginosa/drug effects , Staphylococcus aureus/physiology , Staphylococcus aureus/drug effects , Microbial Interactions , Antibiosis , Anti-Bacterial Agents/pharmacology , Humans , Staphylococcal Infections/microbiology , Coculture Techniques , Fimbriae, Bacterial/metabolism , Fimbriae, Bacterial/physiology , Hydroxyquinolines
13.
PLoS Genet ; 20(8): e1011071, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39102428

ABSTRACT

Sortase-assembled pili contribute to virulence in many Gram-positive bacteria. In Enterococcus faecalis, the endocarditis and biofilm-associated pilus (Ebp) is polymerized on the membrane by sortase C (SrtC) and attached to the cell wall by sortase A (SrtA). In the absence of SrtA, polymerized pili remain anchored to the membrane (i.e. off-pathway). Here we show that the high temperature requirement A (HtrA) bifunctional chaperone/protease of E. faecalis is a quality control system that clears aberrant off-pathway pili from the cell membrane. In the absence of HtrA and SrtA, accumulation of membrane-bound pili leads to cell envelope stress and partially induces the regulon of the ceftriaxone resistance-associated CroRS two-component system, which in turn causes hyper-piliation and cell morphology alterations. Inactivation of croR in the OG1RF ΔsrtAΔhtrA background partially restores the observed defects of the ΔsrtAΔhtrA strain, supporting a role for CroRS in the response to membrane perturbations. Moreover, absence of SrtA and HtrA decreases basal resistance of E. faecalis against cephalosporins and daptomycin. The link between HtrA, pilus biogenesis and the CroRS two-component system provides new insights into the E. faecalis response to endogenous membrane perturbations.


Subject(s)
Aminoacyltransferases , Bacterial Proteins , Biofilms , Cysteine Endopeptidases , Enterococcus faecalis , Fimbriae, Bacterial , Molecular Chaperones , Fimbriae, Bacterial/genetics , Fimbriae, Bacterial/metabolism , Aminoacyltransferases/genetics , Aminoacyltransferases/metabolism , Enterococcus faecalis/genetics , Cysteine Endopeptidases/genetics , Cysteine Endopeptidases/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Molecular Chaperones/genetics , Molecular Chaperones/metabolism , Biofilms/growth & development , Cell Membrane/metabolism , Gene Expression Regulation, Bacterial , Virulence/genetics , Anti-Bacterial Agents/pharmacology , Ceftriaxone/pharmacology
14.
Arch Biochem Biophys ; 760: 110127, 2024 10.
Article in English | MEDLINE | ID: mdl-39154818

ABSTRACT

Antivirulence strategy has been explored as an alternative to traditional antibiotic development. The bacterial type IV pilus is a virulence factor involved in host invasion and colonization in many antibiotic resistant pathogens. The PilB ATPase hydrolyzes ATP to drive the assembly of the pilus filament from pilin subunits. We evaluated Chloracidobacterium thermophilum PilB (CtPilB) as a model for structure-based virtual screening by molecular docking and molecular dynamics (MD) simulations. A hexameric structure of CtPilB was generated through homology modeling based on an existing crystal structure of a PilB from Geobacter metallireducens. Four representative structures were obtained from molecular dynamics simulations to examine the conformational plasticity of PilB and improve docking analyses by ensemble docking. Structural analyses after 1 µs of simulation revealed conformational changes in individual PilB subunits are dependent on ligand presence. Further, ensemble virtual screening of a library of 4234 compounds retrieved from the ZINC15 database identified five promising PilB inhibitors. Molecular docking and binding analyses using the four representative structures from MD simulations revealed that top-ranked compounds interact with multiple Walker A residues, one Asp-box residue, and one arginine finger, indicating these are key residues in inhibitor binding within the ATP binding pocket. The use of multiple conformations in molecular screening can provide greater insight into compound flexibility within receptor sites and better inform future drug development for therapeutics targeting the type IV pilus assembly ATPase.


Subject(s)
Bacterial Proteins , Molecular Docking Simulation , Molecular Dynamics Simulation , Bacterial Proteins/antagonists & inhibitors , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Small Molecule Libraries/chemistry , Small Molecule Libraries/pharmacology , Fimbriae, Bacterial/metabolism , Fimbriae, Bacterial/chemistry , Acidobacteria/metabolism , Acidobacteria/chemistry , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Drug Evaluation, Preclinical , Amino Acid Sequence , Oxidoreductases
15.
mSphere ; 9(9): e0039024, 2024 Sep 25.
Article in English | MEDLINE | ID: mdl-39194233

ABSTRACT

Twitching motility is a form of bacterial surface translocation powered by the type IV pilus (T4P). It is frequently analyzed by interstitial colony expansion between agar and the polystyrene surfaces of petri dishes. In such assays, the twitching motility of Acinetobacter nosocomialis was observed with MacConkey but not Luria-Bertani (LB) agar media. One difference between these two media is the presence of bile salts as a selective agent in MacConkey but not in LB. Here, we demonstrate that the addition of bile salts to LB allowed A. nosocomialis to display twitching. Similarly, bile salts enhanced the twitching of Acinetobacter baumannii and Pseudomonas aeruginosa in LB. These observations suggest that there is a common mechanism, whereby bile salts enhance bacterial twitching and promote interstitial colony expansion. Bile salts disrupt lipid membranes and apply envelope stress as detergents. Surprisingly, their stimulatory effect on twitching appears not to be related to a bacterial physiological response to stressors. Rather, it is due to their ability to alter the physicochemical properties of a twitching surface. We observed that while other detergents promoted twitching like bile salts, stresses applied by antibiotics, including the outer membrane-targeting polymyxin B, did not enhance twitching motility. More importantly, bacteria displayed increased twitching on hydrophilic surfaces such as those of glass and tissue culture-treated polystyrene plastics, and bile salts no longer stimulated twitching on these surfaces. Together, our results show that altering the hydrophilicity of a twitching surface significantly impacts T4P functionality. IMPORTANCE: The bacterial type IV pilus (T4P) is a critical virulence factor for many medically important pathogens, some of which are prioritized by the World Health Organization for their high levels of antibiotic resistance. The T4P is known to propel bacterial twitching motility, the analysis of which provides a convenient assay for T4P functionality. Here, we show that bile salts and other detergents augment the twitching of multiple bacterial pathogens. We identified the underlying mechanism as the alteration of surface hydrophilicity by detergents. Consequently, hydrophilic surfaces like those of glass or plasma-treated polystyrene promote bacterial twitching, bypassing the requirement for detergents. The implication is that surface properties, such as those of tissues and medical implants, significantly impact the functionality of bacterial T4P as a virulence determinant. This offers valuable insights for developing countermeasures against the colonization and infection by bacterial pathogens of critical importance to human health on a global scale.


Subject(s)
Bile Acids and Salts , Fimbriae, Bacterial , Hydrophobic and Hydrophilic Interactions , Pseudomonas aeruginosa , Bile Acids and Salts/pharmacology , Pseudomonas aeruginosa/drug effects , Pseudomonas aeruginosa/physiology , Fimbriae, Bacterial/physiology , Fimbriae, Bacterial/drug effects , Acinetobacter/drug effects , Acinetobacter/physiology , Culture Media/chemistry , Surface Properties , Anti-Bacterial Agents/pharmacology , Acinetobacter baumannii/drug effects , Acinetobacter baumannii/physiology , Polystyrenes/chemistry
16.
Vet Microbiol ; 297: 110197, 2024 Oct.
Article in English | MEDLINE | ID: mdl-39126781

ABSTRACT

Klebsiella pneumoniae is a primary cause of clinical mastitis in dairy cows, with prevention being crucial, as treatments often fail due to antimicrobial resistance. Recent studies identified type I fimbrial antigens of K. pneumoniae as promising vaccine candidates, but there are limited research data. In this study, 3 fimbriae genes (fimA, fimC and fimG) were cloned and recombinantly expressed in Escherichia coli and their protective efficacy against K. pneumoniae evaluated in a mouse model. All 3 recombinant fimbriae proteins elicited strong humoral immune responses in mice, significantly increasing IgG, IgG1 and IgG2a. Notably, using a model of mice challenged with an intraperitoneal injection of bacteria, FimG significantly reduced bacterial loads in the spleen and lung, whereas FimA and FimC had limited protection for these organs. Either active or passive immunization with FimG produced substantial protective effects in mice challenged with K. pneumoniae LD100; in contrast, the mortality rate in the FimA-immunized group was similar to that of the control group, whereas FimC had weak protection. We concluded that the FimG recombinant protein vaccine had a favorable protective effect, with potential for immunization against K. pneumoniae mastitis.


Subject(s)
Antibodies, Bacterial , Bacterial Vaccines , Disease Models, Animal , Fimbriae Proteins , Klebsiella Infections , Klebsiella pneumoniae , Mice, Inbred BALB C , Animals , Klebsiella pneumoniae/immunology , Mice , Klebsiella Infections/prevention & control , Klebsiella Infections/immunology , Klebsiella Infections/microbiology , Fimbriae Proteins/immunology , Fimbriae Proteins/genetics , Female , Bacterial Vaccines/immunology , Bacterial Vaccines/administration & dosage , Antibodies, Bacterial/blood , Antibodies, Bacterial/immunology , Recombinant Proteins/immunology , Fimbriae, Bacterial/immunology , Immunoglobulin G/blood , Immunity, Humoral
17.
Front Cell Infect Microbiol ; 14: 1425624, 2024.
Article in English | MEDLINE | ID: mdl-39145307

ABSTRACT

Type IV pili (T4P) are versatile proteinaceous protrusions that mediate diverse bacterial processes, including adhesion, motility, and biofilm formation. Aeromonas hydrophila, a Gram-negative facultative anaerobe, causes disease in a wide range of hosts. Previously, we reported the presence of a unique Type IV class C pilus, known as tight adherence (Tad), in virulent Aeromonas hydrophila (vAh). In the present study, we sought to functionalize the role of Tad pili in the pathogenicity of A. hydrophila ML09-119. Through a comprehensive comparative genomics analysis of 170 A. hydrophila genomes, the conserved presence of the Tad operon in vAh isolates was confirmed, suggesting its potential contribution to pathogenicity. Herein, the entire Tad operon was knocked out from A. hydrophila ML09-119 to elucidate its specific role in A. hydrophila virulence. The absence of the Tad operon did not affect growth kinetics but significantly reduced virulence in catfish fingerlings, highlighting the essential role of the Tad operon during infection. Biofilm formation of A. hydrophila ML09-119 was significantly decreased in the Tad operon deletant. Absence of the Tad operon had no effect on sensitivity to other environmental stressors, including hydrogen peroxide, osmolarity, alkalinity, and temperature; however, it was more sensitive to low pH conditions. Scanning electron microscopy revealed that the Tad mutant had a rougher surface structure during log phase growth than the wildtype strain, indicating the absence of Tad impacts the outer surface of vAh during cell division, of which the biological consequences are unknown. These findings highlight the role of Tad in vAh pathogenesis and biofilm formation, signifying the importance of T4P in bacterial infections.


Subject(s)
Aeromonas hydrophila , Biofilms , Fimbriae, Bacterial , Fish Diseases , Gram-Negative Bacterial Infections , Operon , Aeromonas hydrophila/genetics , Aeromonas hydrophila/pathogenicity , Aeromonas hydrophila/physiology , Biofilms/growth & development , Fimbriae, Bacterial/genetics , Fimbriae, Bacterial/metabolism , Virulence/genetics , Animals , Gram-Negative Bacterial Infections/microbiology , Fish Diseases/microbiology , Bacterial Adhesion/genetics , Catfishes/microbiology , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Gene Knockout Techniques
18.
Nat Commun ; 15(1): 6635, 2024 Aug 05.
Article in English | MEDLINE | ID: mdl-39103374

ABSTRACT

The bacterial tight adherence pilus system (TadPS) assembles surface pili essential for adhesion and colonisation in many human pathogens. Pilus dynamics are powered by the ATPase CpaF (TadA), which drives extension and retraction cycles in Caulobacter crescentus through an unknown mechanism. Here we use cryogenic electron microscopy and cell-based light microscopy to characterise CpaF mechanism. We show that CpaF assembles into a hexamer with C2 symmetry in different nucleotide states. Nucleotide cycling occurs through an intra-subunit clamp-like mechanism that promotes sequential conformational changes between subunits. Moreover, a comparison of the active sites with different nucleotides bound suggests a mechanism for bidirectional motion. Conserved CpaF residues, predicted to interact with platform proteins CpaG (TadB) and CpaH (TadC), are mutated in vivo to establish their role in pilus processing. Our findings provide a model for how CpaF drives TadPS pilus dynamics and have broad implications for how other ancient type 4 filament family members power pilus assembly.


Subject(s)
Bacterial Proteins , Caulobacter crescentus , Fimbriae, Bacterial , Fimbriae, Bacterial/metabolism , Caulobacter crescentus/metabolism , Caulobacter crescentus/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Fimbriae Proteins/metabolism , Fimbriae Proteins/genetics , Fimbriae Proteins/chemistry , Cryoelectron Microscopy , Adenosine Triphosphatases/metabolism , Bacterial Adhesion/physiology , Nucleotides/metabolism , Models, Molecular
19.
Soft Matter ; 20(37): 7397-7404, 2024 Sep 25.
Article in English | MEDLINE | ID: mdl-39021099

ABSTRACT

Escherichia coli expresses surface appendages including fimbriae, flagella, and curli, at various levels in response to environmental conditions and external stimuli. Previous studies have revealed an interplay between expression of fimbriae and flagella in several E. coli strains, but how this regulation between fimbrial and flagellar expression affects adhesion to interfaces is incompletely understood. Here, we investigate how the concurrent expression of fimbriae and flagella by engineered strains of E. coli MG1655 affects their adhesion at liquid-solid and liquid-liquid interfaces. We tune fimbrial and flagellar expression on the cell surface through plasmid-based inducible expression of the fim operon and fliC-flhDC genes. We show that increased fimbrial expression increases interfacial adhesion as well as bacteria-driven actuation of micron-sized objects. Co-expression of flagella in fimbriated bacteria, however, does not greatly affect either of these properties. Together, these results suggest that interfacial adhesion as well as motion actuated by adherent bacteria can be altered by controlling the expression of surface appendages.


Subject(s)
Bacterial Adhesion , Escherichia coli Proteins , Escherichia coli , Fimbriae, Bacterial , Flagella , Flagella/metabolism , Flagella/genetics , Escherichia coli/genetics , Escherichia coli/metabolism , Fimbriae, Bacterial/metabolism , Fimbriae, Bacterial/genetics , Escherichia coli Proteins/metabolism , Escherichia coli Proteins/genetics , Operon , Gene Expression Regulation, Bacterial , Flagellin , Trans-Activators
20.
Appl Environ Microbiol ; 90(8): e0086224, 2024 08 21.
Article in English | MEDLINE | ID: mdl-39058035

ABSTRACT

Type 1 fimbria, the short hair-like appendage assembled on the bacterial surface, plays a pivotal role in adhesion and invasion in Edwardsiella piscicida. The type III secretion system (T3SS), another bacterial surface appendage, facilitates E. piscicida's replication in vivo by delivering effectors into host cells. Our previous research demonstrated that E. piscicida T3SS protein EseJ inhibits adhesion and invasion of E. piscicida by suppressing type 1 fimbria. However, how EseJ suppresses type 1 fimbria remains elusive. In this study, a lacI-like operator (nt -245 to -1 of fimA) upstream of type 1 fimbrial operon in E. piscicida was identified, and EseJ inhibits type 1 fimbria through the lacI-like operator. Moreover, through DNA pull-down and electrophoretic mobility shift assay, an AraC-type T3SS regulator, EsrC, was screened and verified to bind to nt -145 to -126 and nt -50 to -1 of fimA, suppressing type 1 fimbria. EseJ is almost abolished upon the depletion of EsrC. EsrC and EseJ impede type 1 fimbria expression. Intriguingly, nutrition and microbiota-derived indole activate type 1 fimbria through downregulating T3SS, alleviating EsrC or EseJ's inhibitory effect on lacI-like operator of type 1 fimbrial operon. By this study, it is revealed that upon entering the gastrointestinal tract, rich nutrients and indole downregulate T3SS and thereof upregulate type 1 fimbria, stimulating efficient adhesion and invasion; upon being internalized into epithelium, the limit in indole and nutrition switches on T3SS and thereof switches off type 1 fimbria, facilitating effector delivery to guarantee E. piscicida's survival/replication in vivo.IMPORTANCEIn this work, we identified the lacI-like operator of type 1 fimbrial operon in E. piscicida, which was suppressed by the repressors-T3SS protein EseJ and EsrC. We unveiled that E. piscicida upregulates type 1 fimbria upon sensing rich nutrition and the microbiota-derived indole, thereof promoting the adhesion of E. piscicida. The increase of indole and nutrition promotes type 1 fimbria by downregulating T3SS. The decrease in EseJ and EsrC alleviates their suppression on type 1 fimbria, and vice versa.


Subject(s)
Bacterial Adhesion , Bacterial Proteins , Edwardsiella , Fimbriae, Bacterial , Operon , Type III Secretion Systems , Edwardsiella/genetics , Edwardsiella/physiology , Fimbriae, Bacterial/metabolism , Fimbriae, Bacterial/genetics , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Type III Secretion Systems/genetics , Type III Secretion Systems/metabolism , Animals , Gene Expression Regulation, Bacterial , Enterobacteriaceae Infections/microbiology
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