Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 20 de 81
Filtrar
1.
J Biol Chem ; 300(1): 105578, 2024 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-38110036

RESUMEN

In Gram-positive bacteria, cell wall polysaccharides (CWPS) play critical roles in bacterial cell wall homeostasis and bacterial interactions with their immediate surroundings. In lactococci, CWPS consist of two components: a conserved rhamnan embedded in the peptidoglycan layer and a surface-exposed polysaccharide pellicle (PSP), which are linked together to form a large rhamnose-rich CWPS (Rha-CWPS). PSP, whose structure varies from strain to strain, is a receptor for many bacteriophages infecting lactococci. Here, we examined the first two steps of PSP biosynthesis, using in vitro enzymatic tests with lipid acceptor substrates combined with LC-MS analysis, AlfaFold2 modeling of protein 3D-structure, complementation experiments, and phage assays. We show that the PSP repeat unit is assembled on an undecaprenyl-monophosphate (C55P) lipid intermediate. Synthesis is initiated by the WpsA/WpsB complex with GlcNAc-P-C55 synthase activity and the PSP precursor GlcNAc-P-C55 is then elongated by specific glycosyltransferases that vary among lactococcal strains, resulting in PSPs with diverse structures. Also, we engineered the PSP biosynthesis pathway in lactococci to obtain a chimeric PSP structure, confirming the predicted glycosyltransferase specificities. This enabled us to highlight the importance of a single sugar residue of the PSP repeat unit in phage recognition. In conclusion, our results support a novel pathway for PSP biosynthesis on a lipid-monophosphate intermediate as an extracellular modification of rhamnan, unveiling an assembly machinery for complex Rha-CWPS with structural diversity in lactococci.


Asunto(s)
Pared Celular , Lactococcus , Polisacáridos Bacterianos , Ramnosa , Proteínas Bacterianas/metabolismo , Pared Celular/química , Pared Celular/metabolismo , Glicosiltransferasas/metabolismo , Lactococcus/clasificación , Lactococcus/citología , Lactococcus/metabolismo , Lactococcus/virología , Lípidos , Peptidoglicano/metabolismo , Polisacáridos Bacterianos/metabolismo , Conformación Proteica , Ramnosa/metabolismo , Especificidad por Sustrato , Bacteriófagos/fisiología
2.
J Biol Chem ; 298(10): 102488, 2022 10.
Artículo en Inglés | MEDLINE | ID: mdl-36113580

RESUMEN

Rhamnose-rich cell wall polysaccharides (Rha-CWPSs) have emerged as crucial cell wall components of numerous Gram-positive, ovoid-shaped bacteria-including streptococci, enterococci, and lactococci-of which many are of clinical or biotechnological importance. Rha-CWPS are composed of a conserved polyrhamnose backbone with side-chain substituents of variable size and structure. Because these substituents contain phosphate groups, Rha-CWPS can also be classified as polyanionic glycopolymers, similar to wall teichoic acids, of which they appear to be functional homologs. Recent advances have highlighted the critical role of these side-chain substituents in bacterial cell growth and division, as well as in specific interactions between bacteria and infecting bacteriophages or eukaryotic hosts. Here, we review the current state of knowledge on the structure and biosynthesis of Rha-CWPS in several ovoid-shaped bacterial species. We emphasize the role played by multicomponent transmembrane glycosylation systems in the addition of side-chain substituents of various sizes as extracytoplasmic modifications of the polyrhamnose backbone. We provide an overview of the contribution of Rha-CWPS to cell wall architecture and biogenesis and discuss current hypotheses regarding their importance in the cell division process. Finally, we sum up the critical roles that Rha-CWPS can play as bacteriophage receptors or in escaping host defenses, roles that are mediated mainly through their side-chain substituents. From an applied perspective, increased knowledge of Rha-CWPS can lead to advancements in strategies for preventing phage infection of lactococci and streptococci in food fermentation and for combating pathogenic streptococci and enterococci.


Asunto(s)
Bacteriófagos , Pared Celular , Bacterias Grampositivas , Pared Celular/química , Bacterias Grampositivas/química , Bacterias Grampositivas/citología , Polisacáridos/química , Ramnosa , Ácidos Teicoicos/química , División Celular/fisiología
3.
Appl Environ Microbiol ; 89(6): e0210322, 2023 06 28.
Artículo en Inglés | MEDLINE | ID: mdl-37222606

RESUMEN

Lactococcus lactis and Lactococcus cremoris are Gram-positive lactic acid bacteria widely used as starter in milk fermentations. Lactococcal cells are covered with a polysaccharide pellicle (PSP) that was previously shown to act as the receptor for numerous bacteriophages of the Caudoviricetes class. Thus, mutant strains lacking PSP are phage resistant. However, because PSP is a key cell wall component, PSP-negative mutants exhibit dramatic alterations of cell shape and severe growth defects, which limit their technological value. In the present study, we isolated spontaneous mutants with improved growth, from L. cremoris PSP-negative mutants. These mutants grow at rates similar to the wild-type strain, and based on transmission electron microscopy analysis, they exhibit improved cell morphology compared to their parental PSP-negative mutants. In addition, the selected mutants maintain their phage resistance. Whole-genome sequencing of several such mutants showed that they carried a mutation in pbp2b, a gene encoding a penicillin-binding protein involved in peptidoglycan biosynthesis. Our results indicate that lowering or turning off PBP2b activity suppresses the requirement for PSP and ameliorates substantially bacterial fitness and morphology. IMPORTANCE Lactococcus lactis and Lactococcus cremoris are widely used in the dairy industry as a starter culture. As such, they are consistently challenged by bacteriophage infections which may result in reduced or failed milk acidification with associated economic losses. Bacteriophage infection starts with the recognition of a receptor at the cell surface, which was shown to be a cell wall polysaccharide (the polysaccharide pellicle [PSP]) for the majority of lactococcal phages. Lactococcal mutants devoid of PSP exhibit phage resistance but also reduced fitness, since their morphology and division are severely impaired. Here, we isolated spontaneous, food-grade non-PSP-producing L. cremoris mutants resistant to bacteriophage infection with a restored fitness. This study provides an approach to isolate non-GMO phage-resistant L. cremoris and L. lactis strains, which can be applied to strains with technological functionalities. Also, our results highlight for the first time the link between peptidoglycan and cell wall polysaccharide biosynthesis.


Asunto(s)
Bacteriófagos , Lactococcus lactis , Lactococcus lactis/genética , Lactococcus lactis/metabolismo , Peptidoglicano/genética , Bacteriófagos/genética , Bacteriófagos/metabolismo , Polisacáridos/metabolismo , Mutación , Proteínas Portadoras/metabolismo
4.
Int J Mol Sci ; 23(14)2022 Jul 10.
Artículo en Inglés | MEDLINE | ID: mdl-35886967

RESUMEN

The human gut symbiont Lacticaseibacillus (L.) casei (previously Lactobacillus casei) is under intense research due to its wide range of immunomodulatory effects on the human host. Dendritic cells (DCs) are crucial players in the direct and indirect communication with lactobacilli in the gastrointestinal tract. Here, we demonstrate that human monocyte-derived DCs (moDCs) are able to engulf L. casei BL23, in which the intact bacterial cell wall and morphology have a key role. The absence of the bacterial cell-wall-degrading enzyme, Lc-p75, in L. casei cells causes remarkable morphological changes, which have important consequences in the phagocytosis of L. casei by moDCs. Our results showed that the Lc-p75 mutation induced defective internalization and impaired proinflammatory and T-cell-polarizing cytokine secretion by bacteria-exposed moDCs. The T helper (Th) 1 and Th17 cell activating capacity of moDCs induced by the mutant L. casei was consequently reduced. Moreover, inhibition of the phagocytosis of wild-type bacteria showed similar results. Taken together, these data suggested that formation of short bacterial chains helps to exert the potent immunomodulatory properties of L. casei BL23.


Asunto(s)
Células Dendríticas , Lacticaseibacillus casei , N-Acetil Muramoil-L-Alanina Amidasa , Células Dendríticas/inmunología , Humanos , Lacticaseibacillus casei/genética , Lacticaseibacillus casei/inmunología , Lacticaseibacillus casei/fisiología , Monocitos/inmunología , N-Acetil Muramoil-L-Alanina Amidasa/biosíntesis , N-Acetil Muramoil-L-Alanina Amidasa/genética , N-Acetil Muramoil-L-Alanina Amidasa/inmunología , Fagocitosis
5.
J Biol Chem ; 295(16): 5519-5532, 2020 04 17.
Artículo en Inglés | MEDLINE | ID: mdl-32169901

RESUMEN

Extracytoplasmic sugar decoration of glycopolymer components of the bacterial cell wall contributes to their structural diversity. Typically, the molecular mechanism that underpins such a decoration process involves a three-component glycosylation system (TGS) represented by an undecaprenyl-phosphate (Und-P) sugar-activating glycosyltransferase (Und-P GT), a flippase, and a polytopic glycosyltransferase (PolM GT) dedicated to attaching sugar residues to a specific glycopolymer. Here, using bioinformatic analyses, CRISPR-assisted recombineering, structural analysis of cell wall-associated polysaccharides (CWPS) through MALDI-TOF MS and methylation analysis, we report on three such systems in the bacterium Lactococcus lactis On the basis of sequence similarities, we first identified three gene pairs, csdAB, csdCD, and csdEF, each encoding an Und-P GT and a PolM GT, as potential TGS component candidates. Our experimental results show that csdAB and csdCD are involved in Glc side-chain addition on the CWPS components rhamnan and polysaccharide pellicle (PSP), respectively, whereas csdEF plays a role in galactosylation of lipoteichoic acid (LTA). We also identified a potential flippase encoded in the L. lactis genome (llnz_02975, cflA) and confirmed that it participates in the glycosylation of the three cell wall glycopolymers rhamnan, PSP, and LTA, thus indicating that its function is shared by the three TGSs. Finally, we observed that glucosylation of both rhamnan and PSP can increase resistance to bacteriophage predation and that LTA galactosylation alters L. lactis resistance to bacteriocin.


Asunto(s)
Pared Celular/metabolismo , Lactococcus lactis/metabolismo , Proteínas Bacterianas/genética , Proteínas Bacterianas/metabolismo , Desoxiazúcares/metabolismo , Galactosa/metabolismo , Glicosilación , Lactococcus lactis/genética , Lipopolisacáridos/metabolismo , Mananos/metabolismo , Ácidos Teicoicos/metabolismo
6.
Mol Microbiol ; 114(4): 582-596, 2020 10.
Artículo en Inglés | MEDLINE | ID: mdl-32515029

RESUMEN

The biosynthetic machinery for cell wall polysaccharide (CWPS) production in lactococci is encoded by a large gene cluster, designated cwps. This locus displays considerable variation among lactococcal genomes, previously prompting a classification into three distinct genotypes (A-C). In the present study, the cwps loci of 107 lactococcal strains were compared, revealing the presence of a fourth cwps genotype (type D). Lactococcal CWPSs are comprised of two saccharidic structures: a peptidoglycan-embedded rhamnan backbone polymer to which a surface-exposed, poly/oligosaccharidic side-chain is covalently linked. Chemical structures of the side-chain of seven lactococcal strains were elucidated, highlighting their diverse and strain-specific nature. Furthermore, a link between cwps genotype and chemical structure was derived based on the number of glycosyltransferase-encoding genes in the cwps cluster and the presence of conserved genes encoding the presumed priming glycosyltransferase. This facilitates predictions of several structural features of lactococcal CWPSs including (a) whether the CWPS possesses short oligo/polysaccharide side-chains, (b) the number of component monosaccharides in a given CWPS structure, (c) the order of monosaccharide incorporation into the repeating units of the side-chain (for C-type strains), (d) the presence of Galf and phosphodiester bonds in the side-chain, and (e) the presence of glycerol phosphate substituents in the side-chain.


Asunto(s)
Pared Celular/genética , Lactococcus/genética , Polisacáridos Bacterianos/genética , Proteínas Bacterianas/metabolismo , Pared Celular/metabolismo , Glicosiltransferasas/metabolismo , Lactococcus/metabolismo , Lactococcus lactis/genética , Lactococcus lactis/metabolismo , Familia de Multigenes/genética , Peptidoglicano/metabolismo , Polisacáridos/metabolismo , Polisacáridos Bacterianos/metabolismo , Polisacáridos Bacterianos/fisiología
7.
J Biol Chem ; 294(46): 17612-17625, 2019 11 15.
Artículo en Inglés | MEDLINE | ID: mdl-31582566

RESUMEN

In Lactococcus lactis, cell-wall polysaccharides (CWPSs) act as receptors for many bacteriophages, and their structural diversity among strains explains, at least partially, the narrow host range of these viral predators. Previous studies have reported that lactococcal CWPS consists of two distinct components, a variable chain exposed at the bacterial surface, named polysaccharide pellicle (PSP), and a more conserved rhamnan chain anchored to, and embedded inside, peptidoglycan. These two chains appear to be covalently linked to form a large heteropolysaccharide. The molecular machinery for biosynthesis of both components is encoded by a large gene cluster, named cwps In this study, using a CRISPR/Cas-based method, we performed a mutational analysis of the cwps genes. MALDI-TOF MS-based structural analysis of the mutant CWPS combined with sequence homology, transmission EM, and phage sensitivity analyses enabled us to infer a role for each protein encoded by the cwps cluster. We propose a comprehensive CWPS biosynthesis scheme in which the rhamnan and PSP chains are independently synthesized from two distinct lipid-sugar precursors and are joined at the extracellular side of the cytoplasmic membrane by a mechanism involving a membrane-embedded glycosyltransferase with a GT-C fold. The proposed scheme encompasses a system that allows extracytoplasmic modification of rhamnan by complex substituting oligo-/polysaccharides. It accounts for the extensive diversity of CWPS structures observed among lactococci and may also have relevance to the biosynthesis of complex rhamnose-containing CWPSs in other Gram-positive bacteria.


Asunto(s)
Pared Celular/metabolismo , Lactococcus lactis/metabolismo , Polisacáridos Bacterianos/metabolismo , Proteínas Bacterianas/genética , Proteínas Bacterianas/metabolismo , Vías Biosintéticas , Pared Celular/química , Pared Celular/genética , Desoxiazúcares/análisis , Desoxiazúcares/genética , Desoxiazúcares/metabolismo , Glicosiltransferasas/genética , Glicosiltransferasas/metabolismo , Lactococcus lactis/química , Lactococcus lactis/genética , Mananos/análisis , Mananos/genética , Mananos/metabolismo , Familia de Multigenes , Polisacáridos Bacterianos/análisis , Polisacáridos Bacterianos/genética
8.
Infect Immun ; 87(8)2019 08.
Artículo en Inglés | MEDLINE | ID: mdl-31085703

RESUMEN

Clostridium difficile is the leading cause of antibiotic-associated diarrhea in adults. During infection, C. difficile must detect the host environment and induce an appropriate survival strategy. Signal transduction networks involving serine/threonine kinases (STKs) play key roles in adaptation, as they regulate numerous physiological processes. PrkC of C. difficile is an STK with two PASTA domains. We showed that PrkC is membrane associated and is found at the septum. We observed that deletion of prkC affects cell morphology with an increase in mean size, cell length heterogeneity, and presence of abnormal septa. A ΔprkC mutant was able to sporulate and germinate but was less motile and formed more biofilm than the wild-type strain. Moreover, a ΔprkC mutant was more sensitive to antimicrobial compounds that target the cell envelope, such as the secondary bile salt deoxycholate, cephalosporins, cationic antimicrobial peptides, and lysozyme. This increased susceptibility was not associated with differences in peptidoglycan or polysaccharide II composition. However, the ΔprkC mutant had less peptidoglycan and released more polysaccharide II into the supernatant. A proteomic analysis showed that the majority of C. difficile proteins associated with the cell wall were less abundant in the ΔprkC mutant than the wild-type strain. Finally, in a hamster model of infection, the ΔprkC mutant had a colonization delay that did not significantly affect overall virulence.


Asunto(s)
Proteínas Bacterianas/fisiología , Clostridioides difficile/efectos de los fármacos , Proteínas Serina-Treonina Quinasas/fisiología , Animales , Pared Celular/metabolismo , Clostridioides difficile/metabolismo , Clostridioides difficile/patogenicidad , Cricetinae , Farmacorresistencia Bacteriana , Homeostasis , Mesocricetus , Pruebas de Sensibilidad Microbiana , Peptidoglicano/metabolismo , Proteínas Serina-Treonina Quinasas/genética , Virulencia
9.
Mol Microbiol ; 104(6): 972-988, 2017 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-28317238

RESUMEN

The ability of excess Mg2+ to compensate the absence of cell wall related genes in Bacillus subtilis has been known for a long time, but the mechanism has remained obscure. Here, we show that the rigidity of wild-type cells remains unaffected with excess Mg2+ , but the proportion of amidated meso-diaminopimelic (mDAP) acid in their peptidoglycan (PG) is significantly reduced. We identify the amidotransferase AsnB as responsible for mDAP amidation and show that the gene encoding it is essential without added Mg2+ . Growth without excess Mg2+ causes ΔasnB mutant cells to deform and ultimately lyse. In cell regions with deformations, PG insertion is orderly and indistinguishable from the wild-type. However, PG degradation is unevenly distributed along the sidewalls. Furthermore, ΔasnB mutant cells exhibit increased sensitivity to antibiotics targeting the cell wall. These results suggest that absence of amidated mDAP causes a lethal deregulation of PG hydrolysis that can be inhibited by increased levels of Mg2+ . Consistently, we find that Mg2+ inhibits autolysis of wild-type cells. We suggest that Mg2+ helps to maintain the balance between PG synthesis and hydrolysis in cell wall mutants where this balance is perturbed in favor of increased degradation.


Asunto(s)
Ácido Diaminopimélico/metabolismo , Peptidoglicano/metabolismo , Bacillus subtilis/metabolismo , Proteínas Bacterianas/metabolismo , Pared Celular/metabolismo , Hidrólisis , Magnesio/metabolismo , Peptidoglicano/biosíntesis
10.
Proc Natl Acad Sci U S A ; 112(25): 7803-8, 2015 Jun 23.
Artículo en Inglés | MEDLINE | ID: mdl-26056274

RESUMEN

Beneficial microbes that target molecules and pathways, such as oxidative stress, which can negatively affect both host and microbiota, may hold promise as an inflammatory bowel disease therapy. Prior work showed that a five-strain fermented milk product (FMP) improved colitis in T-bet(-/-) Rag2(-/-) mice. By varying the number of strains used in the FMP, we found that Lactococcus lactis I-1631 was sufficient to ameliorate colitis. Using comparative genomic analyses, we identified genes unique to L. lactis I-1631 involved in oxygen respiration. Respiration of oxygen results in reactive oxygen species (ROS) generation. Also, ROS are produced at high levels during intestinal inflammation and cause tissue damage. L. lactis I-1631 possesses genes encoding enzymes that detoxify ROS, such as superoxide dismutase (SodA). Thus, we hypothesized that lactococcal SodA played a role in attenuating colitis. Inactivation of the sodA gene abolished L. lactis I-1631's beneficial effect in the T-bet(-/-) Rag2(-/-) model. Similar effects were obtained in two additional colonic inflammation models, Il10(-/-) mice and dextran sulfate sodium-treated mice. Efforts to understand how a lipophobic superoxide anion (O2 (-)) can be detoxified by cytoplasmic lactoccocal SodA led to the finding that host antimicrobial-mediated lysis is a prerequisite for SodA release and SodA's extracytoplasmic O2 (-) scavenging. L. lactis I-1631 may represent a promising vehicle to deliver antioxidant, colitis-attenuating SodA to the inflamed intestinal mucosa, and host antimicrobials may play a critical role in mediating SodA's bioaccessibility.


Asunto(s)
Colitis/metabolismo , Lactococcus lactis/metabolismo , Muramidasa/metabolismo , Superóxido Dismutasa/metabolismo , Animales , Colitis/enzimología , Colitis/microbiología , Mucosa Intestinal/enzimología , Mucosa Intestinal/metabolismo , Mucosa Intestinal/microbiología , Ratones , Especies Reactivas de Oxígeno/metabolismo
11.
J Biol Chem ; 291(21): 11323-36, 2016 May 20.
Artículo en Inglés | MEDLINE | ID: mdl-27022026

RESUMEN

To ensure optimal cell growth and separation and to adapt to environmental parameters, bacteria have to maintain a balance between cell wall (CW) rigidity and flexibility. This can be achieved by a concerted action of peptidoglycan (PG) hydrolases and PG-synthesizing/modifying enzymes. In a search for new regulatory mechanisms responsible for the maintenance of this equilibrium in Lactococcus lactis, we isolated mutants that are resistant to the PG hydrolase lysozyme. We found that 14% of the causative mutations were mapped in the guaA gene, the product of which is involved in purine metabolism. Genetic and transcriptional analyses combined with PG structure determination of the guaA mutant enabled us to reveal the pivotal role of the pyrB gene in the regulation of CW rigidity. Our results indicate that conversion of l-aspartate (l-Asp) to N-carbamoyl-l-aspartate by PyrB may reduce the amount of l-Asp available for PG synthesis and thus cause the appearance of Asp/Asn-less stem peptides in PG. Such stem peptides do not form PG cross-bridges, resulting in a decrease in PG cross-linking and, consequently, reduced PG thickness and rigidity. We hypothesize that the concurrent utilization of l-Asp for pyrimidine and PG synthesis may be part of the regulatory scheme, ensuring CW flexibility during exponential growth and rigidity in stationary phase. The fact that l-Asp availability is dependent on nucleotide metabolism, which is tightly regulated in accordance with the growth rate, provides L. lactis cells the means to ensure optimal CW plasticity without the need to control the expression of PG synthesis genes.


Asunto(s)
Lactococcus lactis/metabolismo , Nucleótidos/metabolismo , Aspartato Carbamoiltransferasa/genética , Aspartato Carbamoiltransferasa/metabolismo , Ácido Aspártico/metabolismo , Proteínas Bacterianas/genética , Proteínas Bacterianas/metabolismo , Pared Celular/metabolismo , Pared Celular/ultraestructura , Elasticidad , Genes Bacterianos , Lactococcus lactis/genética , Lactococcus lactis/crecimiento & desarrollo , Muramidasa/farmacología , Mutación , N-Acetil Muramoil-L-Alanina Amidasa/genética , N-Acetil Muramoil-L-Alanina Amidasa/metabolismo , Peptidoglicano/química , Peptidoglicano/metabolismo
12.
Mol Cell Proteomics ; 12(12): 3935-47, 2013 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-24002364

RESUMEN

Surface proteins of Gram-positive bacteria play crucial roles in bacterial adhesion to host tissues. Regarding commensal or probiotic bacteria, adhesion to intestinal mucosa may promote their persistence in the gastro-intestinal tract and their beneficial effects to the host. In this study, seven Lactococcus lactis strains exhibiting variable surface physico-chemical properties were compared for their adhesion to Caco-2 intestinal epithelial cells. In this test, only one vegetal isolate TIL448 expressed a high-adhesion phenotype. A nonadhesive derivative was obtained by plasmid curing from TIL448, indicating that the adhesion determinants were plasmid-encoded. Surface-exposed proteins in TIL448 were analyzed by a proteomic approach consisting in shaving of the bacterial surface with trypsin and analysis of the released peptides by LC-MS/MS. As the TIL448 complete genome sequence was not available, the tryptic peptides were identified by a mass matching approach against a database including all Lactococcus protein sequences and the sequences deduced from partial DNA sequences of the TIL448 plasmids. Two surface proteins, encoded by plasmids in TIL448, were identified as candidate adhesins, the first one displaying pilin characteristics and the second one containing two mucus-binding domains. Inactivation of the pilin gene abolished adhesion to Caco-2 cells whereas inactivation of the mucus-binding protein gene had no effect on adhesion. The pilin gene is located inside a cluster of four genes encoding two other pilin-like proteins and one class-C sortase. Synthesis of pili was confirmed by immunoblotting detection of high molecular weight forms of pilins associated to the cell wall as well as by electron and atomic force microscopy observations. As a conclusion, surface proteome analysis allowed us to detect pilins at the surface of L. lactis TIL448. Moreover we showed that pili appendages are formed and involved in adhesion to Caco-2 intestinal epithelial cells.


Asunto(s)
Proteínas Bacterianas/genética , Proteínas Fimbrias/genética , Fimbrias Bacterianas/genética , Regulación Bacteriana de la Expresión Génica , Lactococcus lactis/genética , Proteoma/genética , Adhesinas Bacterianas/genética , Adhesinas Bacterianas/metabolismo , Secuencia de Aminoácidos , Aminoaciltransferasas/genética , Aminoaciltransferasas/metabolismo , Adhesión Bacteriana , Proteínas Bacterianas/metabolismo , Células CACO-2 , Cromatografía Liquida , Cisteína Endopeptidasas/genética , Cisteína Endopeptidasas/metabolismo , Proteínas Fimbrias/metabolismo , Fimbrias Bacterianas/metabolismo , Fimbrias Bacterianas/ultraestructura , Humanos , Intestinos/citología , Intestinos/microbiología , Lactococcus lactis/metabolismo , Lactococcus lactis/ultraestructura , Microscopía Electrónica , Anotación de Secuencia Molecular , Datos de Secuencia Molecular , Familia de Multigenes , Fragmentos de Péptidos/análisis , Plásmidos , Probióticos/química , Proteolisis , Proteoma/metabolismo , Espectrometría de Masas en Tándem , Tripsina/química
13.
J Biol Chem ; 288(28): 20416-26, 2013 Jul 12.
Artículo en Inglés | MEDLINE | ID: mdl-23733182

RESUMEN

Peptidoglycan hydrolases (PGHs) are responsible for bacterial cell lysis. Most PGHs have a modular structure comprising a catalytic domain and a cell wall-binding domain (CWBD). PGHs of bacteriophage origin, called endolysins, are involved in bacterial lysis at the end of the infection cycle. We have characterized two endolysins, Lc-Lys and Lc-Lys-2, identified in prophages present in the genome of Lactobacillus casei BL23. These two enzymes have different catalytic domains but similar putative C-terminal CWBDs. By analyzing purified peptidoglycan (PG) degradation products, we showed that Lc-Lys is an N-acetylmuramoyl-L-alanine amidase, whereas Lc-Lys-2 is a γ-D-glutamyl-L-lysyl endopeptidase. Remarkably, both lysins were able to lyse only Gram-positive bacterial strains that possess PG with D-Ala(4)→D-Asx-L-Lys(3) in their cross-bridge, such as Lactococcus casei, Lactococcus lactis, and Enterococcus faecium. By testing a panel of L. lactis cell wall mutants, we observed that Lc-Lys and Lc-Lys-2 were not able to lyse mutants with a modified PG cross-bridge, constituting D-Ala(4)→L-Ala-(L-Ala/L-Ser)-L-Lys(3); moreover, they do not lyse the L. lactis mutant containing only the nonamidated D-Asp cross-bridge, i.e. D-Ala(4)→D-Asp-L-Lys(3). In contrast, Lc-Lys could lyse the ampicillin-resistant E. faecium mutant with 3→3 L-Lys(3)-D-Asn-L-Lys(3) bridges replacing the wild-type 4→3 D-Ala(4)-D-Asn-L-Lys(3) bridges. We showed that the C-terminal CWBD of Lc-Lys binds PG containing mainly D-Asn but not PG with only the nonamidated D-Asp-containing cross-bridge, indicating that the CWBD confers to Lc-Lys its narrow specificity. In conclusion, the CWBD characterized in this study is a novel type of PG-binding domain targeting specifically the D-Asn interpeptide bridge of PG.


Asunto(s)
Bacteriófagos/enzimología , Endopeptidasas/metabolismo , Lacticaseibacillus casei/enzimología , N-Acetil Muramoil-L-Alanina Amidasa/metabolismo , Peptidoglicano/metabolismo , Amidas/metabolismo , Secuencia de Aminoácidos , Asparagina/genética , Asparagina/metabolismo , Ácido Aspártico/genética , Ácido Aspártico/metabolismo , Bacteriófagos/genética , Sitios de Unión/genética , Dominio Catalítico/genética , Pared Celular/metabolismo , Electroforesis en Gel de Poliacrilamida , Endopeptidasas/genética , Bacterias Grampositivas/genética , Bacterias Grampositivas/metabolismo , Lacticaseibacillus casei/genética , Lacticaseibacillus casei/virología , Microscopía Fluorescente , Datos de Secuencia Molecular , Mutación , N-Acetil Muramoil-L-Alanina Amidasa/genética , Profagos/enzimología , Profagos/genética , Unión Proteica , Homología de Secuencia de Aminoácido , Especificidad por Sustrato
14.
J Biol Chem ; 288(8): 5581-90, 2013 Feb 22.
Artículo en Inglés | MEDLINE | ID: mdl-23300085

RESUMEN

Lactococcal phages Tuc2009 and TP901-1 possess a conserved tail fiber called a tail-associated lysin (referred to as Tal(2009) for Tuc2009, and Tal(901-1) for TP901-1), suspended from their tail tips that projects a peptidoglycan hydrolase domain toward a potential host bacterium. Tal(2009) and Tal(901-1) can undergo proteolytic processing mid-protein at the glycine-rich sequence GG(S/N)SGGG, removing their C-terminal structural lysin. In this study, we show that the peptidoglycan hydrolase of these Tal proteins is an M23 peptidase that exhibits D-Ala-D-Asp endopeptidase activity and that this activity is required for efficient infection of stationary phase cells. Interestingly, the observed proteolytic processing of Tal(2009) and Tal(901-1) facilitates increased host adsorption efficiencies of the resulting phages. This represents, to the best of our knowledge, the first example of tail fiber proteolytic processing that results in a heterogeneous population of two phage types. Phages that possess a full-length tail fiber, or a truncated derivative, are better adapted to efficiently infect cells with an extensively cross-linked cell wall or infect with increased host-adsorption efficiencies, respectively.


Asunto(s)
Lactococcus lactis/virología , Siphoviridae/metabolismo , Adsorción , Adhesión Bacteriana , Biología Computacional/métodos , Hidrólisis , Mutagénesis , Peptidoglicano/química , Plásmidos/metabolismo , Unión Proteica , Conformación Proteica , Estructura Terciaria de Proteína , Siphoviridae/genética , Proteínas de la Cola de los Virus/química , Proteínas de la Cola de los Virus/metabolismo , Virión/metabolismo
15.
J Biol Chem ; 288(31): 22233-47, 2013 Aug 02.
Artículo en Inglés | MEDLINE | ID: mdl-23760506

RESUMEN

Acm2, the major autolysin of Lactobacillus plantarum, is a tripartite protein. Its catalytic domain is surrounded by an O-glycosylated N-terminal region rich in Ala, Ser, and Thr (AST domain), which is of low complexity and unknown function, and a C-terminal region composed of five SH3b peptidoglycan (PG) binding domains. Here, we investigate the contribution of these two accessory domains and of O-glycosylation to Acm2 functionality. We demonstrate that Acm2 is an N-acetylglucosaminidase and identify the pattern of O-glycosylation (21 mono-N-acetylglucosamines) of its AST domain. The O-glycosylation process is species-specific as Acm2 purified from Lactococcus lactis is not glycosylated. We therefore explored the functional role of O-glycosylation by purifying different truncated versions of Acm2 that were either glycosylated or non-glycosylated. We show that SH3b domains are able to bind PG and are responsible for Acm2 targeting to the septum of dividing cells, whereas the AST domain and its O-glycosylation are not involved in this process. Notably, our data reveal that the lack of O-glycosylation of the AST domain significantly increases Acm2 enzymatic activity, whereas removal of SH3b PG binding domains dramatically reduces this activity. Based on this antagonistic role, we propose a model in which access of the Acm2 catalytic domain to its substrate may be hindered by the AST domain where O-glycosylation changes its conformation and/or mediates interdomain interactions. To the best of our knowledge, this is the first time that O-glycosylation is shown to control the activity of a bacterial enzyme.


Asunto(s)
N-Acetil Muramoil-L-Alanina Amidasa/metabolismo , Acetilglucosaminidasa/metabolismo , Secuencia de Aminoácidos , Glicosilación , Lactobacillus plantarum/enzimología , Lactobacillus plantarum/metabolismo , Microscopía de Fuerza Atómica , Microscopía Fluorescente , Datos de Secuencia Molecular , N-Acetil Muramoil-L-Alanina Amidasa/química , Espectrometría de Masa por Láser de Matriz Asistida de Ionización Desorción
16.
Microbiology (Reading) ; 160(Pt 8): 1807-1819, 2014 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-24858286

RESUMEN

Bacterial cell wall hydrolases are essential for peptidoglycan remodelling in regard to bacterial cell growth and division. In this study, peptidoglycan hydrolases (PGHs) of different Lactobacillus buchneri strains were investigated. First, the genome sequence of L. buchneri CD034 and L. buchneri NRRL B-30929 was analysed in silico for the presence of PGHs. Of 23 putative PGHs with different predicted hydrolytic specificities, the glycosyl hydrolase family 25 domain-containing homologues LbGH25B and LbGH25N from L. buchneri CD034 and NRRL B-30929, respectively, were selected and characterized in detail. Zymogram analysis confirmed hydrolysing activity on bacterial cell walls for both enzymes. Subsequent reversed-phase HPLC and MALDI-TOF MS analysis of the peptidoglycan breakdown products from L. buchneri strains CD034 and NRRL B-30929, and from Lactobacillus rhamnosus GG, which served as a reference, revealed that LbGH25B and LbGH25N have N-acetylmuramidase activity. Both enzymes were identified as cell wall-associated proteins by means of immunofluorescence microscopy and cellular fractionation, as well as by the ability of purified recombinant LbGH25B and LbGH25N to bind to L. buchneri cell walls in vitro. Moreover, similar secondary structures mainly composed of ß-sheets and nearly identical thermal stabilities with Tm values around 49 °C were found for the two N-acetylmuramidases by far-UV circular dichroism spectroscopy. The functional and structural data obtained are discussed and compared to related PGHs. In this study, a major N-acetylmuramidase from L. buchneri was characterized in detail for the first time.


Asunto(s)
Proteínas Bacterianas/química , Glicósido Hidrolasas/química , Lactobacillus/enzimología , Proteínas Bacterianas/genética , Proteínas Bacterianas/metabolismo , Pared Celular/química , Pared Celular/enzimología , Pared Celular/genética , Estabilidad de Enzimas , Glicósido Hidrolasas/genética , Glicósido Hidrolasas/metabolismo , Lactobacillus/química , Lactobacillus/genética , Peptidoglicano/metabolismo , Estructura Secundaria de Proteína , Transporte de Proteínas
17.
J Virol ; 87(22): 12302-12, 2013 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-24027307

RESUMEN

Lactococcal siphophages from the 936 and P335 groups infect the Gram-positive bacterium Lactococcus lactis using receptor binding proteins (RBPs) attached to their baseplate, a large multiprotein complex at the distal part of the tail. We have previously reported the crystal and electron microscopy (EM) structures of the baseplates of phages p2 (936 group) and TP901-1 (P335 group) as well as the full EM structure of the TP901-1 virion. Here, we report the complete EM structure of siphophage p2, including its capsid, connector complex, tail, and baseplate. Furthermore, we show that the p2 tail is characterized by the presence of protruding decorations, which are related to adhesins and are likely contributed by the major tail protein C-terminal domains. This feature is reminiscent of the tail of Escherichia coli phage λ and Bacillus subtilis phage SPP1 and might point to a common mechanism for establishing initial interactions with their bacterial hosts. Comparative analyses showed that the architecture of the phage p2 baseplate differs largely from that of lactococcal phage TP901-1. We quantified the interaction of its RBP with the saccharidic receptor and determined that specificity is due to lower k(off) values of the RBP/saccharidic dissociation. Taken together, these results suggest that the infection of L. lactis strains by phage p2 is a multistep process that involves reversible attachment, followed by baseplate activation, specific attachment of the RBPs to the saccharidic receptor, and DNA ejection.


Asunto(s)
Bacteriófago P2/química , Bacteriófago P2/patogenicidad , Interacciones Huésped-Patógeno , Lactococcus lactis/fisiología , Oligosacáridos/metabolismo , Virión/química , Adsorción , Bacteriófago P2/metabolismo , Biopelículas , Proteínas de la Cápside/metabolismo , Microscopía Electrónica , Modelos Moleculares , Unión Proteica , Conformación Proteica , Resonancia por Plasmón de Superficie
18.
PLoS Pathog ; 8(6): e1002756, 2012.
Artículo en Inglés | MEDLINE | ID: mdl-22719253

RESUMEN

Streptococcus agalactiae (Group B streptococcus, GBS) is a leading cause of infections in neonates and an emerging pathogen in adults. The Lancefield Group B carbohydrate (GBC) is a peptidoglycan-anchored antigen that defines this species as a Group B Streptococcus. Despite earlier immunological and biochemical characterizations, the function of this abundant glycopolymer has never been addressed experimentally. Here, we inactivated the gene gbcO encoding a putative UDP-N-acetylglucosamine-1-phosphate:lipid phosphate transferase thought to catalyze the first step of GBC synthesis. Indeed, the gbcO mutant was unable to synthesize the GBC polymer, and displayed an important growth defect in vitro. Electron microscopy study of the GBC-depleted strain of S. agalactiae revealed a series of growth-related abnormalities: random placement of septa, defective cell division and separation processes, and aberrant cell morphology. Furthermore, vancomycin labeling and peptidoglycan structure analysis demonstrated that, in the absence of GBC, cells failed to initiate normal PG synthesis and cannot complete polymerization of the murein sacculus. Finally, the subcellular localization of the PG hydrolase PcsB, which has a critical role in cell division of streptococci, was altered in the gbcO mutant. Collectively, these findings show that GBC is an essential component of the cell wall of S. agalactiae whose function is reminiscent of that of conventional wall teichoic acids found in Staphylococcus aureus or Bacillus subtilis. Furthermore, our findings raise the possibility that GBC-like molecules play a major role in the growth of most if not all beta-hemolytic streptococci.


Asunto(s)
Antígenos Bacterianos/metabolismo , Pared Celular/metabolismo , Polisacáridos Bacterianos/metabolismo , Streptococcus agalactiae/fisiología , Antígenos Bacterianos/química , Pared Celular/química , Electroforesis en Gel de Poliacrilamida , Cromatografía de Gases y Espectrometría de Masas , Genes Bacterianos , Microscopía Fluorescente , Peptidoglicano/metabolismo , Polisacáridos Bacterianos/química , Streptococcus agalactiae/química
19.
Microb Cell Fact ; 13 Suppl 1: S9, 2014 Aug 29.
Artículo en Inglés | MEDLINE | ID: mdl-25186919

RESUMEN

The cell wall of Gram-positive bacteria is a complex assemblage of glycopolymers and proteins. It consists of a thick peptidoglycan sacculus that surrounds the cytoplasmic membrane and that is decorated with teichoic acids, polysaccharides, and proteins. It plays a major role in bacterial physiology since it maintains cell shape and integrity during growth and division; in addition, it acts as the interface between the bacterium and its environment. Lactic acid bacteria (LAB) are traditionally and widely used to ferment food, and they are also the subject of more and more research because of their potential health-related benefits. It is now recognized that understanding the composition, structure, and properties of LAB cell walls is a crucial part of developing technological and health applications using these bacteria. In this review, we examine the different components of the Gram-positive cell wall: peptidoglycan, teichoic acids, polysaccharides, and proteins. We present recent findings regarding the structure and function of these complex compounds, results that have emerged thanks to the tandem development of structural analysis and whole genome sequencing. Although general structures and biosynthesis pathways are conserved among Gram-positive bacteria, studies have revealed that LAB cell walls demonstrate unique properties; these studies have yielded some notable, fundamental, and novel findings. Given the potential of this research to contribute to future applied strategies, in our discussion of the role played by cell wall components in LAB physiology, we pay special attention to the mechanisms controlling bacterial autolysis, bacterial sensitivity to bacteriophages and the mechanisms underlying interactions between probiotic bacteria and their hosts.


Asunto(s)
Pared Celular/metabolismo , Lactobacillaceae/metabolismo , Acetilación , Proteínas Bacterianas/metabolismo , Pared Celular/química , Interacciones Huésped-Patógeno , Lipopolisacáridos/biosíntesis , Lipopolisacáridos/química , Lipopolisacáridos/metabolismo , Peptidoglicano/biosíntesis , Peptidoglicano/química , Peptidoglicano/metabolismo , Polisacáridos Bacterianos/biosíntesis , Polisacáridos Bacterianos/química , Polisacáridos Bacterianos/metabolismo , Ácidos Teicoicos/biosíntesis , Ácidos Teicoicos/química , Ácidos Teicoicos/metabolismo
20.
Microbiology (Reading) ; 159(Pt 7): 1510-1520, 2013 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-23676437

RESUMEN

Primary antibiotic treatment of Clostridium difficile intestinal diseases requires metronidazole or vancomycin therapy. A cluster of genes homologous to enterococcal glycopeptides resistance vanG genes was found in the genome of C. difficile 630, although this strain remains sensitive to vancomycin. This vanG-like gene cluster was found to consist of five ORFs: the regulatory region consisting of vanR and vanS and the effector region consisting of vanG, vanXY and vanT. We found that 57 out of 83 C. difficile strains, representative of the main lineages of the species, harbour this vanG-like cluster. The cluster is expressed as an operon and, when present, is found at the same genomic location in all strains. The vanG, vanXY and vanT homologues in C. difficile 630 are co-transcribed and expressed to a low level throughout the growth phases in the absence of vancomycin. Conversely, the expression of these genes is strongly induced in the presence of subinhibitory concentrations of vancomycin, indicating that the vanG-like operon is functional at the transcriptional level in C. difficile. Hydrophilic interaction liquid chromatography (HILIC-HPLC) and MS analysis of cytoplasmic peptidoglycan precursors of C. difficile 630 grown without vancomycin revealed the exclusive presence of a UDP-MurNAc-pentapeptide with an alanine at the C terminus. UDP-MurNAc-pentapeptide [d-Ala] was also the only peptidoglycan precursor detected in C. difficile grown in the presence of vancomycin, corroborating the lack of vancomycin resistance. Peptidoglycan structures of a vanG-like mutant strain and of a strain lacking the vanG-like cluster did not differ from the C. difficile 630 strain, indicating that the vanG-like cluster also has no impact on cell-wall composition.


Asunto(s)
Proteínas Bacterianas/metabolismo , Clostridioides difficile/metabolismo , Regulación Bacteriana de la Expresión Génica , Familia de Multigenes , Resistencia a la Vancomicina/genética , Antibacterianos/farmacología , Proteínas Bacterianas/genética , Clostridioides difficile/efectos de los fármacos , Clostridioides difficile/genética , Genes Bacterianos , Genómica , Humanos , Pruebas de Sensibilidad Microbiana , Operón/genética , Operón/fisiología , Filogenia , Uridina Difosfato Ácido N-Acetilmurámico/análogos & derivados , Uridina Difosfato Ácido N-Acetilmurámico/química , Uridina Difosfato Ácido N-Acetilmurámico/metabolismo , Vancomicina/farmacología
SELECCIÓN DE REFERENCIAS
DETALLE DE LA BÚSQUEDA