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1.
Article in English | MEDLINE | ID: mdl-38953888

ABSTRACT

Two novel strain pairs (HM61T/HM23 and S-34T/S-58) were isolated from soil and the faeces of Tibetan antelope (Pantholops hodgsonii) collected at the Qinghai-Tibet Plateau of PR China. All four new isolates were aerobic, non-motile, Gram-stain-positive, catalase-positive, oxidase-negative, and short rod-shaped bacteria. The results of phylogenetic analysis based on the full-length 16S rRNA genes and 283 core genomic genes indicated that the four strains were separated into two independent branches belonging to the genus Nocardioides. Strains HM61T and HM23 were most closely related to Nocardioides pelophilus THG T63T (98.58 and 98.65 % 16S rRNA gene sequence similarity). Strains S-34T and S-58 were most closely related to Nocardioides okcheonensis MMS20-HV4-12T (98.89 and 98.89 % 16S rRNA gene sequence similarity). The G+C contents of the genomic DNA of strains HM61T and S-34T were 70.6 and 72.5 mol%, respectively. Strains HM61T, S-34T and the type strains of closely related species in the analysis had average nucleotide identity values of 75.4-90.5 % as well as digital DNA-DNA hybridization values between 20.1 and 40.8 %, which clearly indicated that the four isolates represent two novel species within the genus Nocardioides. The chemotaxonomic characteristics of strains HM61T and S-34T were consistent with the genus Nocardioides. The major fatty acids of all four strains were iso-C16 : 0, C17 : 1 ω8c or C18 : 1 ω9c. For strains HM61T and S-34T, MK-8(H4) was the predominant respiratory quinone, ll-2,6-diaminopimelic acid was the diagnostic diamino acid in the cell-wall peptidoglycan, and the polar lipids profiles were composed of diphosphatidylglycerol and phosphatidylglycerol. Based on phylogenetic, phenotypic, and chemotaxonomic data, we propose that strains HM61T and S-34T represent two novel species of the genus Nocardioides, respectively, with the names Nocardioides bizhenqiangii sp. nov. and Nocardioides renjunii sp. nov. The type strains are HM61T (=GDMCC 4.343T=JCM 36399T) and S-34T (=CGMCC 4.7664T=JCM 33792T).


Subject(s)
Antelopes , Bacterial Typing Techniques , Base Composition , DNA, Bacterial , Fatty Acids , Feces , Nucleic Acid Hybridization , Phylogeny , RNA, Ribosomal, 16S , Sequence Analysis, DNA , Soil Microbiology , RNA, Ribosomal, 16S/genetics , Tibet , Fatty Acids/analysis , Fatty Acids/chemistry , DNA, Bacterial/genetics , Feces/microbiology , Antelopes/microbiology , Animals , China , Actinomycetales/genetics , Actinomycetales/isolation & purification , Actinomycetales/classification , Peptidoglycan , Phospholipids/analysis
2.
Nano Lett ; 24(28): 8567-8574, 2024 Jul 17.
Article in English | MEDLINE | ID: mdl-38959438

ABSTRACT

Phagocytosis is an essential mechanism of the human immune system where pathogens are eliminated by immune cells. The CCN1 protein plays an important role in the phagocytosis of Staphylococcus aureus by favoring the bridging of the αVß3 integrin to the bacterial peptidoglycan (PG), through mechanical forces that remain unknown. Here, we employ single-molecule experiments to unravel the nanomechanics of the PG-CCN1-αVß3 ternary complex. While CCN1 binds αVß3 integrins with moderate force (∼60 pN), much higher binding strengths (up to ∼800 pN) are observed between CCN1 and PG. Notably, the strength of both CCN1-αVß3 and CCN1-PG bonds is dramatically enhanced by tensile loading, favoring a model in which mechanical stress induces the exposure of cryptic integrin binding sites in CCN1 and multivalent binding between CCN1 lectin sites and monosaccharides along the PG glycan chains.


Subject(s)
Cysteine-Rich Protein 61 , Integrin alphaVbeta3 , Phagocytosis , Staphylococcus aureus , Staphylococcus aureus/metabolism , Staphylococcus aureus/physiology , Humans , Cysteine-Rich Protein 61/metabolism , Cysteine-Rich Protein 61/chemistry , Integrin alphaVbeta3/metabolism , Peptidoglycan/metabolism , Peptidoglycan/chemistry , Protein Binding , Binding Sites
3.
Methods Mol Biol ; 2836: 111-132, 2024.
Article in English | MEDLINE | ID: mdl-38995539

ABSTRACT

Peptidoglycan is a major and essential component of the bacterial cell envelope that confers cell shape and provides protection against internal osmotic pressure. This complex macromolecule is made of glycan strands cross-linked by short peptides, and its structure is continually modified throughout growth via a process referred to as "remodeling." Peptidoglycan remodeling allows cells to grow, adapt to their environment, and release fragments that can act as signaling molecules during host-pathogen interactions. Preparing peptidoglycan samples for structural analysis first requires purification of the peptidoglycan sacculus, followed by its enzymatic digestion into disaccharide peptides (muropeptides). These muropeptides can then be characterized by liquid chromatography coupled mass spectrometry (LC-MS) and used to infer the structure of intact peptidoglycan sacculi. Due to the presence of unusual crosslinks, noncanonical amino acids, and amino sugars, the analysis of peptidoglycan LC-MS datasets cannot be handled by traditional proteomics software. In this chapter, we describe a protocol to perform the analysis of peptidoglycan LC-MS datasets using the open-source software PGFinder. We provide a step-by-step strategy to deconvolute data from various mass spectrometry instruments, generate muropeptide databases, perform a PGFinder search, and process the data output.


Subject(s)
Peptidoglycan , Software , Peptidoglycan/chemistry , Peptidoglycan/metabolism , Peptidoglycan/analysis , Chromatography, Liquid/methods , Mass Spectrometry/methods , Glycomics/methods , Proteomics/methods , Bacteria/metabolism , Bacteria/chemistry , Liquid Chromatography-Mass Spectrometry
4.
Antonie Van Leeuwenhoek ; 117(1): 100, 2024 Jul 13.
Article in English | MEDLINE | ID: mdl-39001997

ABSTRACT

An isolate of a Gram-positive, strictly aerobic, motile, rod-shaped, endospore forming bacterium was originally isolated from soil when screening and bioprospecting for plant beneficial microorganisms. Phylogenetic analysis of the 16S rRNA gene sequences indicated that this strain was closely related to Lysinibacillus fusiformis NRRL NRS-350T (99.7%) and Lysinibacillus sphaericus NRRL B-23268T (99.2%). In phenotypic characterization, the novel strain was found to grow between 10 and 45 °C and tolerate up to 8% (w/v) NaCl. Furthermore, the strain grew in media with pH 5 to 10 (optimal growth at pH 7.0). The predominant cellular fatty acids were observed to be iso-C15: 0 (52.3%), anteiso-C15: 0 (14.8%), C16:1ω7C alcohol (11.2%), and C16: 0 (9.5%). The cell-wall peptidoglycan contained lysine-aspartic acid, the same as congeners. A draft genome was assembled and the DNA G+C content was determined to be 37.1% (mol content). A phylogenomic analysis on the core genome of the new strain and 5 closest type strains of Lysinibacillus revealed this strain formed a distinct monophyletic clade with the nearest neighbor being Lysinibacillus fusiformis. DNA-DNA relatedness studies using in silico DNA-DNA hybridizations (DDH) showed this species was below the species threshold of 70%. Based upon the consensus of phylogenetic and phenotypic analyses, we conclude that this strain represents a novel species within the genus Lysinibacillus, for which the name Lysinibacillus pinottii sp. nov. is proposed, with type strain PB211T (= NRRL B-65672T, = CCUG 77181T).


Subject(s)
Bacillaceae , Base Composition , DNA, Bacterial , Fatty Acids , Phylogeny , RNA, Ribosomal, 16S , Bacillaceae/genetics , Bacillaceae/classification , Bacillaceae/isolation & purification , RNA, Ribosomal, 16S/genetics , DNA, Bacterial/genetics , Fatty Acids/analysis , Soil Microbiology , Bacterial Typing Techniques , Peptidoglycan , Animals , Genome, Bacterial , Sequence Analysis, DNA , Cell Wall/chemistry
5.
Dev Comp Immunol ; 159: 105222, 2024 Oct.
Article in English | MEDLINE | ID: mdl-38964676

ABSTRACT

Invertebrate lectins exhibit structural diversity and play crucial roles in the innate immune responses by recognizing and eliminating pathogens. In the present study, a novel lectin containing a Gal_Lectin, a CUB and a transmembrane domain was identified from the Pacific oyster Crassostrea gigas (defined as CgGal-CUB). CgGal-CUB mRNA was detectable in all the examined tissues with the highest expression in adductor muscle (11.00-fold of that in haemocytes, p < 0.05). The expression level of CgGal-CUB mRNA in haemocytes was significantly up-regulated at 3, 24, 48 and 72 h (8.37-fold, 12.13-fold, 4.28-fold and 10.14-fold of that in the control group, respectively) after Vibrio splendidus stimulation. The recombinant CgGal-CUB (rCgGal-CUB) displayed binding capability to Mannan (MAN), peptidoglycan (PGN), D-(+)-Galactose and L-Rhamnose monohydrate, as well as Gram-negative bacteria (Escherichia coli, V. splendidus and Vibrio anguillarum), Gram-positive bacteria (Micrococcus luteus, Staphylococcus aureus, and Bacillus sybtilis) and fungus (Pichia pastoris). rCgGal-CUB was also able to agglutinate V. splendidus, and inhibit V. splendidus growth. Furthermore, rCgGal-CUB exhibited the activities of enhancing the haemocyte phagocytosis towards V. splendidus, and the phagocytosis rate of haemocytes was descended in blockage assay with CgGal-CUB antibody. These results suggested that CgGal-CUB served as a pattern recognition receptor to bind various PAMPs and bacteria, and enhanced the haemocyte phagocytosis towards V. splendidus.


Subject(s)
Crassostrea , Hemocytes , Immunity, Innate , Lectins , Phagocytosis , Vibrio , Animals , Hemocytes/immunology , Hemocytes/metabolism , Crassostrea/immunology , Vibrio/immunology , Vibrio/physiology , Lectins/metabolism , Lectins/genetics , Lectins/immunology , Mannans/metabolism , Mannans/immunology , Protein Domains/genetics , Peptidoglycan/immunology , Peptidoglycan/metabolism , Galactose/metabolism , Galactose/immunology , Vibrio Infections/immunology
6.
Article in English | MEDLINE | ID: mdl-39073850

ABSTRACT

A Gram-stain-positive, rod-shaped, non-spore-forming and non-motile bacterium, designated strain WY-16T. Growth was observed at 20-42 °C (optimum, 30 °C), pH 6-9 (optimum, pH 7) and salinity of 0-3 % (w/v; optimum, 1 %). Phylogenetic analysis based on genome sequences indicated that WY-16T was affiliated to the family Microbacteriaceae and most closely related to Salinibacterium xinjiangense and Salinibacterium amurskyense. The average nucleotide identity values between strain WY-16T and S. xinjiangense and S. amurskyense were 74.7 and 72.5 %, respectively. The digital DNA-DNA hybridization values between strain WY-16T and S. xinjiangense and S. amurskyense were 19.6 and 18.6 %, respectively. The predominant fatty acids were anteiso-C15 : 0, iso-C16 : 0 and iso-C16 : 0 10-methyl. The major menaquinones were MK-12, MK-13, MK-14 and MK-15. The major polar lipids were diphosphatidylglycerol, phosphatidylglycerol, phosphatidylethanolamine, one unidentified glycolipid and one unidentified phospholipid. The cell-wall peptidoglycan contained 2,4-diaminobutyric acid as the diamino acid and ribose, rhamnose, glucose and galactose were the major cell-wall sugars. Based on phenotypic, genotypic and phylogenetic evidence, strain WY-16T represents a novel species in the genus Salinibacterium, for which the name Salinibacterium soli sp. nov. is proposed. The type strain is WY-16T (=GDMCC 1.4011T=JCM 36421T).


Subject(s)
Bacterial Typing Techniques , Base Composition , DNA, Bacterial , Fatty Acids , Lakes , Nucleic Acid Hybridization , Phospholipids , Phylogeny , RNA, Ribosomal, 16S , Sequence Analysis, DNA , Soil Microbiology , Vitamin K 2 , Fatty Acids/chemistry , Fatty Acids/analysis , RNA, Ribosomal, 16S/genetics , Vitamin K 2/analogs & derivatives , Vitamin K 2/analysis , DNA, Bacterial/genetics , Phospholipids/chemistry , Phospholipids/analysis , Lakes/microbiology , Peptidoglycan , China
7.
Molecules ; 29(14)2024 Jul 12.
Article in English | MEDLINE | ID: mdl-39064876

ABSTRACT

The interplay between the human innate immune system and bacterial cell wall components is pivotal in understanding diseases such as Crohn's disease and Lyme arthritis. Lyme disease, caused by Borrelia burgdorferi, is the most prevalent tick-borne illness in the United States, with a substantial number of cases reported annually. While antibiotic treatments are generally effective, approximately 10% of Lyme disease cases develop persistent arthritis, suggesting a dysregulated host immune response. We have previously identified a link between the immunogenic B. burgdorferi peptidoglycan (PG) and Lyme arthritis and showed that this pathogen sheds significant amounts of PG fragments during growth. Here, we synthesize these PG fragments, including ornithine-containing monosaccharides and disaccharides, to mimic the unique composition of Borrelia cell walls, using reproducible and rigorous synthetic methods. This synthetic approach allows for the modular preparation of PG derivatives, providing a diverse library of well-defined fragments. These fragments will serve as valuable tools for investigating the role of PG-mediated innate immune response in Lyme disease and aid in the development of improved diagnostic methods and treatment strategies.


Subject(s)
Borrelia burgdorferi , Lyme Disease , Borrelia burgdorferi/immunology , Lyme Disease/immunology , Lyme Disease/microbiology , Lyme Disease/drug therapy , Humans , Peptidoglycan/chemistry , Peptidoglycan/immunology , Cell Wall/chemistry
8.
Nat Commun ; 15(1): 5411, 2024 Jun 26.
Article in English | MEDLINE | ID: mdl-38926336

ABSTRACT

Most rod-shaped bacteria elongate by inserting new cell wall material into the inner surface of the cell sidewall. This is performed by class A penicillin binding proteins (PBPs) and a highly conserved protein complex, the elongasome, which moves processively around the cell circumference and inserts long glycan strands that act as barrel-hoop-like reinforcing structures, thereby giving rise to a rod-shaped cell. However, it remains unclear how elongasome synthesis dynamics and termination events are regulated to determine the length of these critical cell-reinforcing structures. To address this, we developed a method to track individual elongasome complexes around the entire circumference of Bacillus subtilis cells for minutes-long periods using single-molecule fluorescence microscopy. We found that the B. subtilis elongasome is highly processive and that processive synthesis events are frequently terminated by rapid reversal or extended pauses. We found that cellular levels of RodA regulate elongasome processivity, reversal and pausing. Our single-molecule data, together with stochastic simulations, show that elongasome dynamics and processivity are regulated by molecular motor tug-of-war competition between several, likely two, oppositely oriented peptidoglycan synthesis complexes associated with the MreB filament. Altogether these results demonstrate that molecular motor tug-of-war is a key regulator of elongasome dynamics in B. subtilis, which likely also regulates the cell shape via modulation of elongasome processivity.


Subject(s)
Bacillus subtilis , Bacterial Proteins , Cell Wall , Penicillin-Binding Proteins , Bacillus subtilis/metabolism , Bacillus subtilis/genetics , Cell Wall/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Penicillin-Binding Proteins/metabolism , Penicillin-Binding Proteins/genetics , Peptidoglycan/metabolism , Peptidoglycan/biosynthesis , Microscopy, Fluorescence , Single Molecule Imaging , Molecular Motor Proteins/metabolism , Molecular Motor Proteins/genetics
9.
Proc Natl Acad Sci U S A ; 121(25): e2401831121, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38875147

ABSTRACT

Ovoid-shaped bacteria, such as Streptococcus pneumoniae (pneumococcus), have two spatially separated peptidoglycan (PG) synthase nanomachines that locate zonally to the midcell of dividing cells. The septal PG synthase bPBP2x:FtsW closes the septum of dividing pneumococcal cells, whereas the elongasome located on the outer edge of the septal annulus synthesizes peripheral PG outward. We showed previously by sm-TIRFm that the septal PG synthase moves circumferentially at midcell, driven by PG synthesis and not by FtsZ treadmilling. The pneumococcal elongasome consists of the PG synthase bPBP2b:RodA, regulators MreC, MreD, and RodZ, but not MreB, and genetically associated proteins Class A aPBP1a and muramidase MpgA. Given its zonal location separate from FtsZ, it was of considerable interest to determine the dynamics of proteins in the pneumococcal elongasome. We found that bPBP2b, RodA, and MreC move circumferentially with the same velocities and durations at midcell, driven by PG synthesis. However, outside of the midcell zone, the majority of these elongasome proteins move diffusively over the entire surface of cells. Depletion of MreC resulted in loss of circumferential movement of bPBP2b, and bPBP2b and RodA require each other for localization and circumferential movement. Notably, a fraction of aPBP1a molecules also moved circumferentially at midcell with velocities similar to those of components of the core elongasome, but for shorter durations. Other aPBP1a molecules were static at midcell or diffusing over cell bodies. Last, MpgA displayed nonprocessive, subdiffusive motion that was largely confined to the midcell region and less frequently detected over the cell body.


Subject(s)
Bacterial Proteins , Penicillin-Binding Proteins , Streptococcus pneumoniae , Streptococcus pneumoniae/metabolism , Streptococcus pneumoniae/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Penicillin-Binding Proteins/metabolism , Penicillin-Binding Proteins/genetics , Peptidoglycan/metabolism , Peptidoglycan Glycosyltransferase/metabolism , Peptidoglycan Glycosyltransferase/genetics
10.
Elife ; 132024 Jun 10.
Article in English | MEDLINE | ID: mdl-38857064

ABSTRACT

Enterococcus faecium is a microbiota species in humans that can modulate host immunity (Griffin and Hang, 2022), but has also acquired antibiotic resistance and is a major cause of hospital-associated infections (Van Tyne and Gilmore, 2014). Notably, diverse strains of E. faecium produce SagA, a highly conserved peptidoglycan hydrolase that is sufficient to promote intestinal immunity (Rangan et al., 2016; Pedicord et al., 2016; Kim et al., 2019) and immune checkpoint inhibitor antitumor activity (Griffin et al., 2021). However, the functions of SagA in E. faecium were unknown. Here, we report that deletion of sagA impaired E. faecium growth and resulted in bulged and clustered enterococci due to defective peptidoglycan cleavage and cell separation. Moreover, ΔsagA showed increased antibiotic sensitivity, yielded lower levels of active muropeptides, displayed reduced activation of the peptidoglycan pattern-recognition receptor NOD2, and failed to promote cancer immunotherapy. Importantly, the plasmid-based expression of SagA, but not its catalytically inactive mutant, restored ΔsagA growth, production of active muropeptides, and NOD2 activation. SagA is, therefore, essential for E. faecium growth, stress resistance, and activation of host immunity.


Subject(s)
Enterococcus faecium , Immune Checkpoint Inhibitors , N-Acetylmuramoyl-L-alanine Amidase , Enterococcus faecium/genetics , N-Acetylmuramoyl-L-alanine Amidase/metabolism , N-Acetylmuramoyl-L-alanine Amidase/genetics , Immune Checkpoint Inhibitors/pharmacology , Humans , Animals , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Peptidoglycan/metabolism , Mice
11.
Pestic Biochem Physiol ; 202: 105935, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38879327

ABSTRACT

Imidacloprid (IMI) is a contaminant widespread in surface water, causing serious intestinal damage in the common carp. Melatonin (MT), an endogenous indoleamine hormone, plays a crucial role in mitigating pesticide-induced toxicity. Our previous research has demonstrated that MT effectively reduces the production of intestinal microbial-derived signal peptidoglycan (PGN) induced by IMI, thereby alleviating intestinal tight junction injuries in the common carp. In this study, we performed a transcriptomic analysis to explore the effect of MT on the IMI exposure-induced gut damage of the common carp. The results elucidated that the ferroptosis, mitogen-activated protein kinases (MAPKs), and nucleotide oligomerization domain (NOD)-like signaling pathways were significantly associated with IMI exposure and MT treatment. Meanwhile, the exposure to IMI resulted in the formation of pyroptotic bodies and distinct morphological features of ferroptosis, both mitigated with the addition of MT. Immunofluorescence double staining demonstrated that MT abolished the elevated expression of NOD-like receptor thermal protein domain associated protein 3 (NLRP3) and Gasdermin D (GSDMD) induced by IMI, as well as reduced expression of ferritin heavy chains (FTH) and glutathione peroxidase 4 (GPX4) in gut tissues. Subsequently, we found that the exposure to IMI or PGN enhanced the expression of toll-like receptors (TLR) 2 (a direct recognition receptor of PGN) triggering the P38MAPK signaling pathway, thereby aggravating the process of pyroptosis and ferroptosis of cell models. The addition of MT or SB203580 (a P38MAPK inhibitor) significantly reduced pyroptotic cells, and also decreased iron accumulation. Consequently, these results indicate that MT alleviates IMI-induced pyroptosis and ferroptosis in the gut of the common carp through the PGN/TLR2/P38MAPK pathway.


Subject(s)
Carps , Ferroptosis , Melatonin , Neonicotinoids , Nitro Compounds , Peptidoglycan , Pyroptosis , Animals , Carps/metabolism , Ferroptosis/drug effects , Melatonin/pharmacology , Pyroptosis/drug effects , Neonicotinoids/pharmacology , Neonicotinoids/toxicity , Peptidoglycan/pharmacology , Nitro Compounds/toxicity , Nitro Compounds/pharmacology , Insecticides/toxicity , Intestines/drug effects
12.
Sci Rep ; 14(1): 13999, 2024 06 18.
Article in English | MEDLINE | ID: mdl-38890528

ABSTRACT

Penicillin binding proteins (PBPs) are involved in biosynthesis, remodeling and recycling of peptidoglycan (PG) in bacteria. PBP-A from Thermosynechococcus elongatus belongs to a cyanobacterial family of enzymes sharing close structural and phylogenetic proximity to class A ß-lactamases. With the long-term aim of converting PBP-A into a ß-lactamase by directed evolution, we simulated what may happen when an organism like Escherichia coli acquires such a new PBP and observed growth defect associated with the enzyme activity. To further explore the molecular origins of this harmful effect, we decided to characterize deeper the activity of PBP-A both in vitro and in vivo. We found that PBP-A is an enzyme endowed with DD-carboxypeptidase and DD-endopeptidase activities, featuring high specificity towards muropeptides amidated on the D-iso-glutamyl residue. We also show that a low promiscuous activity on non-amidated peptidoglycan deteriorates E. coli's envelope, which is much higher under acidic conditions where substrate discrimination is mitigated. Besides expanding our knowledge of the biochemical activity of PBP-A, this work also highlights that promiscuity may depend on environmental conditions and how it may hinder rather than promote enzyme evolution in nature or in the laboratory.


Subject(s)
Escherichia coli , Penicillin-Binding Proteins , Peptidoglycan , Escherichia coli/genetics , Escherichia coli/metabolism , Hydrogen-Ion Concentration , Penicillin-Binding Proteins/metabolism , Penicillin-Binding Proteins/genetics , Penicillin-Binding Proteins/chemistry , Peptidoglycan/metabolism , Substrate Specificity , Cyanobacteria/metabolism , Cyanobacteria/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Synechococcus
13.
Microbiol Res ; 285: 127782, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38833832

ABSTRACT

As a major human and animal pathogen, Staphylococcus aureus can attach to medical implants (abiotic surface) or host tissues (biotic surface), and further establish robust biofilms which enhances resistance and persistence to host immune system and antibiotics. Cell-wall-anchored proteins (CWAPs) covalently link to peptidoglycan, and largely facilitate the colonization of S. aureus on various surfaces (including adhesion and biofilm formation) and invasion into host cells (including adhesion, immune evasion, iron acquisition and biofilm formation). During biofilm formation, CWAPs function in adhesion, aggregation, collagen-like fiber network formation, and consortia formation. In this review, we firstly focus on the structural features of CWAPs, including their intracellular function and interactions with host cells, as well as the functions and ligand binding of CWAPs in different stages of S. aureus biofilm formation. Then, the roles of CWAPs in different biofilm processes with regards in development of therapeutic approaches are clarified, followed by the association between CWAPs genes and clonal lineages. By touching upon these aspects, we hope to provide comprehensive knowledge and clearer understanding on the CWAPs of S. aureus and their roles in biofilm formation, which may further aid in prevention and treatment infection and vaccine development.


Subject(s)
Bacterial Adhesion , Bacterial Proteins , Biofilms , Cell Wall , Staphylococcal Infections , Staphylococcus aureus , Biofilms/growth & development , Staphylococcus aureus/physiology , Staphylococcus aureus/genetics , Humans , Staphylococcal Infections/microbiology , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Cell Wall/metabolism , Animals , Peptidoglycan/metabolism
14.
Protein Sci ; 33(7): e5038, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38864725

ABSTRACT

Peptidoglycan is a major constituent of the bacterial cell wall. Its integrity as a polymeric edifice is critical for bacterial survival and, as such, it is a preeminent target for antibiotics. The peptidoglycan is a dynamic crosslinked polymer that undergoes constant biosynthesis and turnover. The soluble lytic transglycosylase (Slt) of Pseudomonas aeruginosa is a periplasmic enzyme involved in this dynamic turnover. Using amber-codon-suppression methodology in live bacteria, we incorporated a fluorescent chromophore into the structure of Slt. Fluorescent microscopy shows that Slt populates the length of the periplasmic space and concentrates at the sites of septation in daughter cells. This concentration persists after separation of the cells. Amber-codon-suppression methodology was also used to incorporate a photoaffinity amino acid for the capture of partner proteins. Mass-spectrometry-based proteomics identified 12 partners for Slt in vivo. These proteomics experiments were complemented with in vitro pulldown analyses. Twenty additional partners were identified. We cloned the genes and purified to homogeneity 22 identified partners. Biophysical characterization confirmed all as bona fide Slt binders. The identities of the protein partners of Slt span disparate periplasmic protein families, inclusive of several proteins known to be present in the divisome. Notable periplasmic partners (KD < 0.5 µM) include PBPs (PBP1a, KD = 0.07 µM; PBP5 = 0.4 µM); other lytic transglycosylases (SltB2, KD = 0.09 µM; RlpA, KD = 0.4 µM); a type VI secretion system effector (Tse5, KD = 0.3 µM); and a regulatory protease for alginate biosynthesis (AlgO, KD < 0.4 µM). In light of the functional breadth of its interactome, Slt is conceptualized as a hub protein within the periplasm.


Subject(s)
Bacterial Proteins , Pseudomonas aeruginosa , Pseudomonas aeruginosa/enzymology , Pseudomonas aeruginosa/metabolism , Pseudomonas aeruginosa/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Periplasm/metabolism , Periplasm/enzymology , Periplasmic Proteins/metabolism , Periplasmic Proteins/genetics , Periplasmic Proteins/chemistry , Glycosyltransferases/metabolism , Glycosyltransferases/genetics , Glycosyltransferases/chemistry , Peptidoglycan/metabolism , Peptidoglycan/chemistry
15.
mBio ; 15(7): e0141924, 2024 Jul 17.
Article in English | MEDLINE | ID: mdl-38920394

ABSTRACT

Pseudomonas aeruginosa encodes the beta-lactamase AmpC, which promotes resistance to beta-lactam antibiotics. Expression of ampC is induced by anhydro-muropeptides (AMPs) released from the peptidoglycan (PG) cell wall upon beta-lactam treatment. AmpC can also be induced via genetic inactivation of PG biogenesis factors such as the endopeptidase DacB that cleaves PG crosslinks. Mutants in dacB occur in beta-lactam-resistant clinical isolates of P. aeruginosa, but it has remained unclear why DacB inactivation promotes ampC induction. Similarly, the inactivation of lytic transglycosylase (LT) enzymes such as SltB1 that cut PG glycans has also been associated with ampC induction and beta-lactam resistance. Given that LT enzymes are capable of producing AMP products that serve as ampC inducers, this latter observation has been especially difficult to explain. Here, we show that ampC induction in sltB1 or dacB mutants requires another LT enzyme called MltG. In Escherichia coli, MltG has been implicated in the degradation of nascent PG strands produced upon beta-lactam treatment. Accordingly, in P. aeruginosa sltB1 and dacB mutants, we detected the MltG-dependent production of pentapeptide-containing AMP products that are signatures of nascent PG degradation. Our results therefore support a model in which SltB1 and DacB use their PG-cleaving activity to open space in the PG matrix for the insertion of new material. Thus, their inactivation mimics low-level beta-lactam treatment by reducing the efficiency of new PG insertion into the wall, causing the degradation of some nascent PG material by MltG to produce the ampC-inducing signal. IMPORTANCE: Inducible beta-lactamases like the ampC system of Pseudomonas aeruginosa are a common determinant of beta-lactam resistance among gram-negative bacteria. The regulation of ampC is elegantly tuned to detect defects in cell wall synthesis caused by beta-lactam drugs. Studies of mutations causing ampC induction in the absence of drug therefore promise to reveal new insights into the process of cell wall biogenesis in addition to aiding our understanding of how resistance to beta-lactam antibiotics arises in the clinic. In this study, the ampC induction phenotype for mutants lacking a glycan-cleaving enzyme or an enzyme that cuts cell wall crosslinks was used to uncover a potential role for these enzymes in making space in the wall matrix for the insertion of new material during cell growth.


Subject(s)
Bacterial Proteins , Cell Wall , Pseudomonas aeruginosa , beta-Lactamases , Pseudomonas aeruginosa/genetics , Pseudomonas aeruginosa/enzymology , Pseudomonas aeruginosa/drug effects , Pseudomonas aeruginosa/metabolism , Cell Wall/metabolism , Cell Wall/drug effects , beta-Lactamases/genetics , beta-Lactamases/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , beta-Lactam Resistance/genetics , Phenotype , Peptidoglycan/metabolism , Anti-Bacterial Agents/pharmacology , beta-Lactams/pharmacology , beta-Lactams/metabolism , Gene Expression Regulation, Bacterial
16.
Nat Commun ; 15(1): 5461, 2024 Jun 27.
Article in English | MEDLINE | ID: mdl-38937433

ABSTRACT

Peptidoglycan (PG) sacculi surround the cytoplasmic membrane, maintaining cell integrity by withstanding internal turgor pressure. During cell growth, PG endopeptidases cleave the crosslinks of the fully closed sacculi, allowing for the incorporation of new glycan strands and expansion of the peptidoglycan mesh. Outer-membrane-anchored NlpI associates with hydrolases and synthases near PG synthesis complexes, facilitating spatially close PG hydrolysis. Here, we present the structure of adaptor NlpI in complex with the endopeptidase MepS, revealing atomic details of how NlpI recruits multiple MepS molecules and subsequently influences PG expansion. NlpI binding elicits a disorder-to-order transition in the intrinsically disordered N-terminal of MepS, concomitantly promoting the dimerization of monomeric MepS. This results in the alignment of two asymmetric MepS dimers respectively located on the two opposite sides of the dimerization interface of NlpI, thus enhancing MepS activity in PG hydrolysis. Notably, the protein level of MepS is primarily modulated by the tail-specific protease Prc, which is known to interact with NlpI. The structure of the Prc-NlpI-MepS complex demonstrates that NlpI brings together MepS and Prc, leading to the efficient MepS degradation by Prc. Collectively, our results provide structural insights into the NlpI-enabled avidity effect of cellular endopeptidases and NlpI-directed MepS degradation by Prc.


Subject(s)
Endopeptidases , Lipoproteins , Peptidoglycan , Peptidoglycan/metabolism , Endopeptidases/metabolism , Endopeptidases/chemistry , Lipoproteins/metabolism , Lipoproteins/chemistry , Protein Binding , Protein Multimerization , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Models, Molecular , Crystallography, X-Ray , Hydrolysis , Escherichia coli/metabolism
17.
J Bacteriol ; 206(7): e0022024, 2024 Jul 25.
Article in English | MEDLINE | ID: mdl-38904397

ABSTRACT

During spore development in bacteria, a polar septum separates two transcriptionally distinct cellular compartments, the mother cell and the forespore. The conserved serine phosphatase SpoIIE is known for its critical role in the formation of this septum and activation of compartment-specific transcription in the forespore. Signaling between the mother cell and forespore then leads to activation of mother cell transcription and a phagocytic-like process called engulfment, which involves dramatic remodeling of the septum and requires a balance between peptidoglycan synthesis and hydrolysis to ensure septal stability and compartmentalization. Using Bacillus subtilis, we identify an additional role for SpoIIE in maintaining septal stability and compartmentalization at the onset of engulfment. This role for SpoIIE is mediated by SpoIIQ, which anchors SpoIIE in the engulfing membrane. A SpoIIQ mutant (SpoIIQ Y28A) that fails to anchor SpoIIE, results in septal instability and miscompartmentalization during septal peptidoglycan hydrolysis, when other septal stabilization factors are absent. Our data support a model whereby SpoIIE and its interactions with the peptidoglycan synthetic machinery contribute to the stabilization of the asymmetric septum early in engulfment, thereby ensuring compartmentalization during spore development.IMPORTANCEBacterial sporulation is a complex process involving a vast array of proteins. Some of these proteins are absolutely critical and regulate key points in the developmental process. Once such protein is SpoIIE, known for its role in the formation of the polar septum, a hallmark of the early stages of sporulation, and activation of the first sporulation-specific sigma factor, σF, in the developing spore. Interestingly, SpoIIE has been shown to interact with SpoIIQ, an important σF-regulated protein that functions during the engulfment stage. However, the significance of this interaction has remained unclear. Here, we unveil the importance of the SpoIIQ-SpoIIE interaction and identify a role for SpoIIE in the stabilization of the polar septum and maintenance of compartmentalization at the onset of engulfment. In this way, we demonstrate that key sporulation proteins, like SpoIIQ and SpoIIE, function in multiple processes during spore development.


Subject(s)
Bacillus subtilis , Bacterial Proteins , Spores, Bacterial , Bacillus subtilis/genetics , Bacillus subtilis/metabolism , Bacillus subtilis/growth & development , Bacillus subtilis/physiology , Spores, Bacterial/genetics , Spores, Bacterial/growth & development , Spores, Bacterial/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Peptidoglycan/metabolism , Gene Expression Regulation, Bacterial , Cell Wall/metabolism , Cell Wall/genetics
18.
Biochem Biophys Res Commun ; 727: 150318, 2024 Oct 01.
Article in English | MEDLINE | ID: mdl-38945066

ABSTRACT

MltG, positioned within the inner membrane of bacteria, functions as a lytic transglycosylase (LT) essential for integrating into the cell wall by cleaving the newly synthesized glycan strand, emphasizing its critical involvement in bacterial cell wall biosynthesis and remodeling. Current study reported the first structure of MltG family of LT. We have elucidated the structure of MltG from Acinetobacter baumannii (abMltG), a formidable superbug renowned for its remarkable antibiotic resistance. Our structural and biochemical investigations unveiled the presence of a flexible peptidoglycan (PG)-binding domain (PGD) within MltG family, which exists as a monomer in solution. Furthermore, we delineated the putative active site of abMltG via a combination of structural analysis and sequence comparison. This discovery enhances our comprehension of the transglycosylation process mediated by the MltG family, offering insights that could inform the development of novel antibiotics tailored to combat A. baumannii.


Subject(s)
Acinetobacter baumannii , Bacterial Proteins , Catalytic Domain , Models, Molecular , Acinetobacter baumannii/metabolism , Crystallography, X-Ray , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Peptidoglycan/metabolism , Peptidoglycan/chemistry , Amino Acid Sequence , Protein Domains , Glycosyltransferases/metabolism , Glycosyltransferases/chemistry
19.
Dev Comp Immunol ; 159: 105220, 2024 Oct.
Article in English | MEDLINE | ID: mdl-38925432

ABSTRACT

To overcome bacterial invasion and infection, animals have evolved various antimicrobial effectors such as antimicrobial peptides and lysozymes. Although C. elegans is exposed to a variety of microbes due to its bacterivorous lifestyle, previous work on the components of its immune system mainly based on the description of transcriptional changes during bacterial challenges. Very few effector components of its immune system have been characterized so far. To investigate the role of lysozymes in terms of antibacterial defense and digestion, we studied a member of the widely neglected family of C. elegans invertebrate lysozymes (ILYS). We focused on the so far virtually undescribed ILYS-5, which we purified from protein extracts of C. elegans tracing its peptidoglycan-degrading activity and localized the tissue expression of the gene in vivo using a translational reporter construct. We recombinantly synthesized ILYS-5 and determined the physicochemical activity optimum and the antibacterial spectrum of a lysozyme from C. elegans for the first time. With an activity optimum at low ionic strength (≤100 mM) and at acidic pH (≤ pH 4.0), ILYS-5 is likely to be involved in killing and digestion of bacteria within acidified phagolysosomes and acidic regions of the gut, presumably secreted by lysosome-like vesicles. This notion is supported by potent activity against various live Gram-positive and Gram-negative bacteria. Notably, members of the natural associated microbiome of C. elegans are substantially less susceptible to ILYS-5. Ablation of the ilys-5 gene resulted in reduction of lifespan and fertility when cultured on the standard food bacterium Escherichia coli OP50, whereas exposure of the ilys-5 knock-out mutant to the host-associated bacterium Pseudomonas lurida MYb11 did not have a clear effect. These findings indicate a role of ILYS-5 in immunity and nutrition and a co-evolved adaptation of host and bacteria to the mutualistic nature of their interaction.


Subject(s)
Caenorhabditis elegans Proteins , Caenorhabditis elegans , Muramidase , Animals , Caenorhabditis elegans/immunology , Caenorhabditis elegans/genetics , Caenorhabditis elegans/microbiology , Muramidase/metabolism , Muramidase/genetics , Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans Proteins/genetics , Peptidoglycan/metabolism , Immunity, Innate , Anti-Bacterial Agents/metabolism , Anti-Bacterial Agents/pharmacology
20.
Drug Discov Ther ; 18(3): 194-198, 2024 Jul 09.
Article in English | MEDLINE | ID: mdl-38925960

ABSTRACT

Staphylococcus aureus, a Gram-positive bacterium, causes inflammatory skin diseases, such as atopic dermatitis, and serious systemic diseases, such as sepsis. In the skin and nasal environment, peptidoglycan (PGN)-degrading enzymes, including lysozyme and lysostaphin, affects S. aureus PGN. However, the effects of PGN-degrading enzymes on the acute innate immune-inducing activity of S. aureus have not yet been investigated. In this study, we demonstrated that PGN-degrading enzymes induce acute silkworm hemolymph melanization by S. aureus. Insoluble fractions of S. aureus treated with lysozyme, lysostaphin, or both enzymes, were prepared. Melanization of the silkworm hemolymph caused by the injection of these insoluble fractions was higher than that of S. aureus without enzyme treatment. These results suggest that structural changes in S. aureus PGN caused by PGN-degrading enzymes affect the acute innate immune response in silkworms.


Subject(s)
Bombyx , Hemolymph , Immunity, Innate , Muramidase , Peptidoglycan , Staphylococcus aureus , Animals , Staphylococcus aureus/drug effects , Hemolymph/metabolism , Peptidoglycan/pharmacology , Muramidase/metabolism , Immunity, Innate/drug effects , Melanins/metabolism
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