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1.
Appl Microbiol Biotechnol ; 108(1): 326, 2024 May 08.
Article En | MEDLINE | ID: mdl-38717487

Aspartyl dipeptidase (dipeptidase E) can hydrolyze Asp-X dipeptides (where X is any amino acid), and the enzyme plays a key role in the degradation of peptides as nutrient sources. Dipeptidase E remains uncharacterized in Streptomyces. Orf2 from Streptomyces sp. 139 is located in the exopolysaccharide biosynthesis gene cluster, which may be a novel dipeptidase E with "S134-H170-D198" catalytic triad by sequence and structure comparison. Herein, recombinant Orf2 was expressed in E. coli and characterized dipeptidase E activity using the Asp-ρNA substrate. The optimal pH and temperature for Orf2 are 7.5 and 40 ℃; Vmax and Km of Orf2 are 0.0787 mM·min-1 and 1.709 mM, respectively. Orf2 exhibits significant degradation activities to Asp-Gly-Gly, Asp-Leu, Asp-His, and isoAsp-Leu and minimal activities to Asp-Pro and Asp-Ala. Orf2 contains a Ser-His-Asp catalytic triad characterized by point mutation. In addition, the Asp147 residue of Orf2 is also proven to be critical for the enzyme's activity through molecular docking and point mutation. Transcriptome analysis reveals the upregulation of genes associated with ribosomes, amino acid biosynthesis, and aminoacyl-tRNA biosynthesis in the orf2 mutant strain. Compared with the orf2 mutant strain and WT, the yield of crude polysaccharide does not change significantly. However, crude polysaccharides from the orf2 mutant strain exhibit a wider range of molecular weight distribution. The results indicate that the Orf2 links nutrient stress to secondary metabolism as a novel dipeptidase E. KEY POINTS: • A novel dipeptidase E with a Ser-His-Asp catalytic triad was characterized from Streptomyces sp. 139. • Orf2 was involved in peptide metabolism both in vitro and in vivo. • Orf2 linked nutrient stress to mycelia formation and secondary metabolism in Streptomyces.


Escherichia coli , Streptomyces , Streptomyces/genetics , Streptomyces/enzymology , Escherichia coli/genetics , Escherichia coli/metabolism , Substrate Specificity , Dipeptidases/metabolism , Dipeptidases/genetics , Dipeptidases/chemistry , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Recombinant Proteins/chemistry , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Molecular Docking Simulation , Multigene Family , Hydrogen-Ion Concentration , Dipeptides/metabolism , Temperature , Kinetics
2.
Nat Commun ; 15(1): 3850, 2024 May 08.
Article En | MEDLINE | ID: mdl-38719864

The K+ uptake system KtrAB is essential for bacterial survival in low K+ environments. The activity of KtrAB is regulated by nucleotides and Na+. Previous studies proposed a putative gating mechanism of KtrB regulated by KtrA upon binding to ATP or ADP. However, how Na+ activates KtrAB and the Na+ binding site remain unknown. Here we present the cryo-EM structures of ATP- and ADP-bound KtrAB from Bacillus subtilis (BsKtrAB) both solved at 2.8 Å. A cryo-EM density at the intra-dimer interface of ATP-KtrA was identified as Na+, as supported by X-ray crystallography and ICP-MS. Thermostability assays and functional studies demonstrated that Na+ binding stabilizes the ATP-bound BsKtrAB complex and enhances its K+ flux activity. Comparing ATP- and ADP-BsKtrAB structures suggests that BsKtrB Arg417 and Phe91 serve as a channel gate. The synergism of ATP and Na+ in activating BsKtrAB is likely applicable to Na+-activated K+ channels in central nervous system.


Adenosine Diphosphate , Adenosine Triphosphate , Bacillus subtilis , Bacterial Proteins , Potassium , Sodium , Adenosine Triphosphate/metabolism , Bacillus subtilis/metabolism , Sodium/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Potassium/metabolism , Crystallography, X-Ray , Adenosine Diphosphate/metabolism , Cryoelectron Microscopy , Binding Sites , Cation Transport Proteins/metabolism , Cation Transport Proteins/chemistry , Models, Molecular , Protein Binding
3.
Front Immunol ; 15: 1390468, 2024.
Article En | MEDLINE | ID: mdl-38726006

Introduction: Relapsing fever (RF) remains a neglected human disease that is caused by a number of diverse pathogenic Borrelia (B.) species. Characterized by high cell densities in human blood, relapsing fever spirochetes have developed plentiful strategies to avoid recognition by the host defense mechanisms. In this scenario, spirochetal lipoproteins exhibiting multifunctional binding properties in the interaction with host-derived molecules are known to play a key role in adhesion, fibrinolysis and complement activation. Methods: Binding of CihC/FbpC orthologs to different human proteins and conversion of protein-bound plasminogen to proteolytic active plasmin were examined by ELISA. To analyze the inhibitory capacity of CihC/FbpC orthologs on complement activation, a microtiter-based approach was performed. Finally, AlphaFold predictions were utilized to identified the complement-interacting residues. Results and discussion: Here, we elucidate the binding properties of CihC/FbpC-orthologs from distinct RF spirochetes including B. parkeri, B. hermsii, B. turicatae, and B. recurrentis to human fibronectin, plasminogen, and complement component C1r. All CihC/FbpC-orthologs displayed similar binding properties to fibronectin, plasminogen, and C1r, respectively. Functional studies revealed a dose dependent binding of plasminogen to all borrelial proteins and conversion to active plasmin. The proteolytic activity of plasmin was almost completely abrogated by tranexamic acid, indicating that lysine residues are involved in the interaction with this serine protease. In addition, a strong inactivation capacity toward the classical pathway could be demonstrated for the wild-type CihC/FbpC-orthologs as well as for the C-terminal CihC fragment of B. recurrentis. Pre-incubation of human serum with borrelial molecules except CihC/FbpC variants lacking the C-terminal region protected serum-susceptible Borrelia cells from complement-mediated lysis. Utilizing AlphaFold2 predictions and existing crystal structures, we mapped the putative key residues involved in C1r binding on the CihC/FbpC orthologs attempting to explain the relatively small differences in C1r binding affinity despite the substitutions of key residues. Collectively, our data advance the understanding of the multiple binding properties of structural and functional highly similar molecules of relapsing fever spirochetes proposed to be involved in pathogenesis and virulence.


Bacterial Proteins , Borrelia , Fibrinolysis , Plasminogen , Protein Binding , Relapsing Fever , Humans , Borrelia/immunology , Borrelia/metabolism , Relapsing Fever/microbiology , Relapsing Fever/immunology , Relapsing Fever/metabolism , Plasminogen/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/immunology , Complement Activation , Immune Evasion , Bacterial Adhesion , Host-Pathogen Interactions/immunology , Fibronectins/metabolism , Fibrinolysin/metabolism , Complement System Proteins/immunology , Complement System Proteins/metabolism
4.
Protein Sci ; 33(6): e5002, 2024 Jun.
Article En | MEDLINE | ID: mdl-38723146

Bacteria that have acquired resistance to most antibiotics, particularly those causing nosocomial infections, create serious problems. Among these, the emergence of vancomycin-resistant enterococci was a tremendous shock, considering that vancomycin is the last resort for controlling methicillin-resistant Staphylococcus aureus. Therefore, there is an urgent need to develop an inhibitor of VanX, a protein involved in vancomycin resistance. Although the crystal structure of VanX has been resolved, its asymmetric unit contains six molecules aligned in a row. We have developed a structural model of VanX as a stable dimer in solution, primarily utilizing nuclear magnetic resonance (NMR) residual dipolar coupling. Despite the 46 kDa molecular mass of the dimer, the analyses, which are typically not as straightforward as those of small proteins around 10 kDa, were successfully conducted. We assigned the main chain using an amino acid-selective unlabeling method. Because we found that the zinc ion-coordinating active sites in the dimer structure were situated in the opposite direction to the dimer interface, we generated an active monomer by replacing an amino acid at the dimer interface. The monomer consists of only 202 amino acids and is expected to be used in future studies to screen and improve inhibitors using NMR.


Bacterial Proteins , Protein Multimerization , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/antagonists & inhibitors , Models, Molecular , Nuclear Magnetic Resonance, Biomolecular , Vancomycin Resistance , Metalloendopeptidases/chemistry , Metalloendopeptidases/antagonists & inhibitors , Metalloendopeptidases/metabolism , Catalytic Domain , Serine-Type D-Ala-D-Ala Carboxypeptidase
5.
Protein Sci ; 33(6): e4997, 2024 Jun.
Article En | MEDLINE | ID: mdl-38723110

Rieske oxygenases (ROs) are a diverse metalloenzyme class with growing potential in bioconversion and synthetic applications. We postulated that ROs are nonetheless underutilized because they are unstable. Terephthalate dioxygenase (TPADO PDB ID 7Q05) is a structurally characterized heterohexameric α3ß3 RO that, with its cognate reductase (TPARED), catalyzes the first intracellular step of bacterial polyethylene terephthalate plastic bioconversion. Here, we showed that the heterologously expressed TPADO/TPARED system exhibits only ~300 total turnovers at its optimal pH and temperature. We investigated the thermal stability of the system and the unfolding pathway of TPADO through a combination of biochemical and biophysical approaches. The system's activity is thermally limited by a melting temperature (Tm) of 39.9°C for the monomeric TPARED, while the independent Tm of TPADO is 50.8°C. Differential scanning calorimetry revealed a two-step thermal decomposition pathway for TPADO with Tm values of 47.6 and 58.0°C (ΔH = 210 and 509 kcal mol-1, respectively) for each step. Temperature-dependent small-angle x-ray scattering and dynamic light scattering both detected heat-induced dissociation of TPADO subunits at 53.8°C, followed by higher-temperature loss of tertiary structure that coincided with protein aggregation. The computed enthalpies of dissociation for the monomer interfaces were most congruent with a decomposition pathway initiated by ß-ß interface dissociation, a pattern predicted to be widespread in ROs. As a strategy for enhancing TPADO stability, we propose prioritizing the re-engineering of the ß subunit interfaces, with subsequent targeted improvements of the subunits.


Enzyme Stability , Oxidoreductases/chemistry , Oxidoreductases/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Models, Molecular , Dioxygenases/chemistry , Dioxygenases/metabolism , Dioxygenases/genetics , Temperature , Escherichia coli/enzymology , Escherichia coli/genetics , Escherichia coli/metabolism , Polyethylene Terephthalates/chemistry , Polyethylene Terephthalates/metabolism , Hydrogen-Ion Concentration , Electron Transport Complex III
6.
Protein Sci ; 33(6): e5012, 2024 Jun.
Article En | MEDLINE | ID: mdl-38723180

The enormous LysR-type transcriptional regulators (LTTRs), which are diversely distributed amongst prokaryotes, play crucial roles in transcription regulation of genes involved in basic metabolic pathways, virulence and stress resistance. However, the precise transcription activation mechanism of these genes by LTTRs remains to be explored. Here, we determine the cryo-EM structure of a LTTR-dependent transcription activation complex comprising of Escherichia coli RNA polymerase (RNAP), an essential LTTR protein GcvA and its cognate promoter DNA. Structural analysis shows two N-terminal DNA binding domains of GcvA (GcvA_DBD) dimerize and engage the GcvA activation binding sites, presenting the -35 element for specific recognition with the conserved σ70R4. In particular, the versatile C-terminal domain of α subunit of RNAP directly interconnects with GcvA_DBD, σ70R4 and promoter DNA, providing more interfaces for stabilizing the complex. Moreover, molecular docking supports glycine as one potential inducer of GcvA, and single molecule photobleaching experiments kinetically visualize the occurrence of tetrameric GcvA-engaged transcription activation complex as suggested for the other LTTR homologs. Thus, a general model for tetrameric LTTR-dependent transcription activation is proposed. These findings will provide new structural and functional insights into transcription activation of the essential LTTRs.


DNA-Directed RNA Polymerases , Escherichia coli , Transcriptional Activation , Escherichia coli/genetics , Escherichia coli/metabolism , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Promoter Regions, Genetic , Cryoelectron Microscopy , Escherichia coli Proteins/chemistry , Escherichia coli Proteins/metabolism , Escherichia coli Proteins/genetics , Transcription Factors/chemistry , Transcription Factors/metabolism , Transcription Factors/genetics , Models, Molecular , Molecular Docking Simulation , Gene Expression Regulation, Bacterial , Protein Multimerization , Binding Sites
7.
Virulence ; 15(1): 2350893, 2024 Dec.
Article En | MEDLINE | ID: mdl-38725096

Coxiella burnetii (C. burnetii) is the causative agent of Q fever, a zoonotic disease. Intracellular replication of C. burnetii requires the maturation of a phagolysosome-like compartment known as the replication permissive Coxiella-containing vacuole (CCV). Effector proteins secreted by the Dot/Icm secretion system are indispensable for maturation of a single large CCV by facilitating the fusion of promiscuous vesicles. However, the mechanisms of CCV maintenance and evasion of host cell clearance remain to be defined. Here, we show that C. burnetii secreted Coxiella vacuolar protein E (CvpE) contributes to CCV biogenesis by inducing lysosome-like vacuole (LLV) enlargement. LLV fission by tubulation and autolysosome degradation is impaired in CvpE-expressing cells. Subsequently, we found that CvpE suppresses lysosomal Ca2+ channel transient receptor potential channel mucolipin 1 (TRPML1) activity in an indirect manner, in which CvpE binds phosphatidylinositol 3-phosphate [PI(3)P] and perturbs PIKfyve activity in lysosomes. Finally, the agonist of TRPML1, ML-SA5, inhibits CCV biogenesis and C. burnetii replication. These results provide insight into the mechanisms of CCV maintenance by CvpE and suggest that the agonist of TRPML1 can be a novel potential treatment that does not rely on antibiotics for Q fever by enhancing Coxiella-containing vacuoles (CCVs) fission.


Bacterial Proteins , Coxiella burnetii , Lysosomes , Phosphatidylinositol 3-Kinases , Phosphatidylinositol Phosphates , Transient Receptor Potential Channels , Vacuoles , Coxiella burnetii/metabolism , Coxiella burnetii/growth & development , Coxiella burnetii/genetics , Vacuoles/microbiology , Vacuoles/metabolism , Lysosomes/metabolism , Lysosomes/microbiology , Phosphatidylinositol Phosphates/metabolism , Humans , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Transient Receptor Potential Channels/metabolism , Transient Receptor Potential Channels/genetics , Phosphatidylinositol 3-Kinases/metabolism , Animals , Q Fever/microbiology , HeLa Cells , Host-Pathogen Interactions
8.
Sci Adv ; 10(19): eadk7283, 2024 May 10.
Article En | MEDLINE | ID: mdl-38728392

Cyanobacterial CO2 concentrating mechanisms (CCMs) sequester a globally consequential proportion of carbon into the biosphere. Proteinaceous microcompartments, called carboxysomes, play a critical role in CCM function, housing two enzymes to enhance CO2 fixation: carbonic anhydrase (CA) and Rubisco. Despite its importance, our current understanding of the carboxysomal CAs found in α-cyanobacteria, CsoSCA, remains limited, particularly regarding the regulation of its activity. Here, we present a structural and biochemical study of CsoSCA from the cyanobacterium Cyanobium sp. PCC7001. Our results show that the Cyanobium CsoSCA is allosterically activated by the Rubisco substrate ribulose-1,5-bisphosphate and forms a hexameric trimer of dimers. Comprehensive phylogenetic and mutational analyses are consistent with this regulation appearing exclusively in cyanobacterial α-carboxysome CAs. These findings clarify the biologically relevant oligomeric state of α-carboxysomal CAs and advance our understanding of the regulation of photosynthesis in this globally dominant lineage.


Carbonic Anhydrases , Cyanobacteria , Ribulose-Bisphosphate Carboxylase , Ribulose-Bisphosphate Carboxylase/metabolism , Ribulose-Bisphosphate Carboxylase/chemistry , Ribulose-Bisphosphate Carboxylase/genetics , Carbonic Anhydrases/metabolism , Carbonic Anhydrases/genetics , Carbonic Anhydrases/chemistry , Cyanobacteria/metabolism , Cyanobacteria/genetics , Cyanobacteria/enzymology , Allosteric Regulation , Phylogeny , Ribulosephosphates/metabolism , Models, Molecular , Protein Multimerization , Carbon Dioxide/metabolism , Substrate Specificity , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry
9.
Biomacromolecules ; 25(5): 2762-2769, 2024 May 13.
Article En | MEDLINE | ID: mdl-38689446

Protein-based encapsulin nanocompartments, known for their well-defined structures and versatile functionalities, present promising opportunities in the fields of biotechnology and nanomedicine. In this investigation, we effectively developed a sortase A-mediated protein ligation system in Escherichia coli to site-specifically attach target proteins to encapsulin, both internally and on its surfaces without any further in vitro steps. We explored the potential applications of fusing sortase enzyme and a protease for post-translational ligation of encapsulin to a green fluorescent protein and anti-CD3 scFv. Our results demonstrated that this system could attach other proteins to the nanoparticles' exterior surfaces without adversely affecting their folding and assembly processes. Additionally, this system enabled the attachment of proteins inside encapsulins which varied shapes and sizes of the nanoparticles due to cargo overload. This research developed an alternative enzymatic ligation method for engineering encapsulin nanoparticles to facilitate the conjugation process.


Aminoacyltransferases , Bacterial Proteins , Cysteine Endopeptidases , Escherichia coli , Protein Processing, Post-Translational , Aminoacyltransferases/metabolism , Aminoacyltransferases/chemistry , Cysteine Endopeptidases/metabolism , Cysteine Endopeptidases/chemistry , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Escherichia coli/metabolism , Green Fluorescent Proteins/metabolism , Green Fluorescent Proteins/chemistry , Nanoparticles/chemistry , Single-Chain Antibodies/chemistry , Single-Chain Antibodies/metabolism
10.
Nat Commun ; 15(1): 3890, 2024 May 08.
Article En | MEDLINE | ID: mdl-38719850

Shigella flexneri is a Gram-negative bacterium causing severe bloody dysentery. Its pathogenesis is largely dictated by a plasmid-encoded type III secretion system (T3SS) and its associated effectors. Among these, the effector OspG has been shown to bind to the ubiquitin conjugation machinery (E2~Ub) to activate its kinase activity. However, the cellular targets of OspG remain elusive despite years of extensive efforts. Here we show by unbiased phosphoproteomics that a major target of OspG is CAND1, a regulatory protein controlling the assembly of cullin-RING ubiquitin ligases (CRLs). CAND1 phosphorylation weakens its interaction with cullins, which is expected to impact a large panel of CRL E3s. Indeed, global ubiquitome profiling reveals marked changes in the ubiquitination landscape when OspG is introduced. Notably, OspG promotes ubiquitination of a class of cytoskeletal proteins called septins, thereby inhibiting formation of cage-like structures encircling cytosolic bacteria. Overall, we demonstrate that pathogens have evolved an elaborate strategy to modulate host ubiquitin signaling to evade septin-cage entrapment.


Bacterial Proteins , Septins , Shigella flexneri , Signal Transduction , Ubiquitin , Ubiquitination , Shigella flexneri/metabolism , Shigella flexneri/pathogenicity , Septins/metabolism , Septins/genetics , Humans , Ubiquitin/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Phosphorylation , Host-Pathogen Interactions , HeLa Cells , Cullin Proteins/metabolism , Ubiquitin-Protein Ligases/metabolism , Ubiquitin-Protein Ligases/genetics , HEK293 Cells , Dysentery, Bacillary/microbiology , Dysentery, Bacillary/metabolism
11.
Trop Anim Health Prod ; 56(4): 158, 2024 May 10.
Article En | MEDLINE | ID: mdl-38727851

The aim of current experiment was to determine the effect of replacement of alfalfa hay with ribwort plantain (Plantago lanceolata) hay in ruminant diets on the fermentation parameters such as gas production, methane (CH4) production, true digestible dry matter (TDDM), true digestibility (TD), partitioning factor, microbial protein, and efficiency of microbial protein using in vitro gas production technique. The alfalfa hay was replaced with P. lanceolata hay in a diets isocaloric (2650 kcal/kg DM) and nitrogenic (17% CP kg DM) at the ratio of 0, 5, 10 and 15%. Partial substitution of alfalfa hay with P. lanceolata hay had no significant effect on gas and methane (ml/incubated substrate or %) production whereas the partial substitution had a significant effect on TDDM, TD, gas (ml/digested DM), CH4 (ml ml/digested DM) and microbial MP of diets. The replacement of alfalfa hay with ribwort plantain hay shifted the fermentation pattern from gas and methane production to microbial protein production. Therefore alfalfa hay can be replaced with ribwort plantain hay with high digestibility and anti-methanogenic potential in ruminant diets up to 15% to decrease methane production and improve microbial protein production. However further in vivo experiments are required to determine the effect of replacement on feed intake and animal production.


Animal Feed , Diet , Digestion , Fermentation , Medicago sativa , Methane , Plantago , Methane/metabolism , Digestion/drug effects , Animals , Plantago/chemistry , Medicago sativa/chemistry , Animal Feed/analysis , Diet/veterinary , Animal Nutritional Physiological Phenomena , Rumen/microbiology , Rumen/metabolism , Bacterial Proteins/metabolism
12.
Nat Commun ; 15(1): 3975, 2024 May 10.
Article En | MEDLINE | ID: mdl-38729930

Oxidoreductases have evolved tyrosine/tryptophan pathways that channel highly oxidizing holes away from the active site to avoid damage. Here we dissect such a pathway in a bacterial LPMO, member of a widespread family of C-H bond activating enzymes with outstanding industrial potential. We show that a strictly conserved tryptophan is critical for radical formation and hole transference and that holes traverse the protein to reach a tyrosine-histidine pair in the protein's surface. Real-time monitoring of radical formation reveals a clear correlation between the efficiency of hole transference and enzyme performance under oxidative stress. Residues involved in this pathway vary considerably between natural LPMOs, which could reflect adaptation to different ecological niches. Importantly, we show that enzyme activity is increased in a variant with slower radical transference, providing experimental evidence for a previously postulated trade-off between activity and redox robustness.


Bacterial Proteins , Mixed Function Oxygenases , Oxidation-Reduction , Mixed Function Oxygenases/metabolism , Mixed Function Oxygenases/genetics , Mixed Function Oxygenases/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Catalytic Domain , Tryptophan/metabolism , Polysaccharides/metabolism , Mutation , Oxidative Stress , Tyrosine/metabolism , Models, Molecular , Histidine/metabolism , Histidine/genetics
13.
Nat Commun ; 15(1): 3947, 2024 May 10.
Article En | MEDLINE | ID: mdl-38729951

Gram-negative bacteria (GNB) are a major cause of neonatal sepsis in low- and middle-income countries (LMICs). Although the World Health Organization (WHO) reports that over 80% of these sepsis deaths could be prevented through improved treatment, the efficacy of the currently recommended first- and second-line treatment regimens for this condition is increasingly affected by high rates of drug resistance. Here we assess three well known antibiotics, fosfomycin, flomoxef and amikacin, in combination as potential antibiotic treatment regimens by investigating the drug resistance and genetic profiles of commonly isolated GNB causing neonatal sepsis in LMICs. The five most prevalent bacterial isolates in the NeoOBS study (NCT03721302) are Klebsiella pneumoniae, Acinetobacter baumannii, E. coli, Serratia marcescens and Enterobacter cloacae complex. Among these isolates, high levels of ESBL and carbapenemase encoding genes are detected along with resistance to ampicillin, gentamicin and cefotaxime, the current WHO recommended empiric regimens. The three new combinations show excellent in vitro activity against ESBL-producing K. pneumoniae and E. coli isolates. Our data should further inform and support the clinical evaluation of these three antibiotic combinations for the treatment of neonatal sepsis in areas with high rates of multidrug-resistant Gram-negative bacteria.


Acinetobacter baumannii , Anti-Bacterial Agents , Gram-Negative Bacteria , Gram-Negative Bacterial Infections , Klebsiella pneumoniae , Microbial Sensitivity Tests , Neonatal Sepsis , Humans , Anti-Bacterial Agents/therapeutic use , Anti-Bacterial Agents/pharmacology , Neonatal Sepsis/microbiology , Neonatal Sepsis/drug therapy , Infant, Newborn , Gram-Negative Bacteria/drug effects , Gram-Negative Bacteria/genetics , Gram-Negative Bacteria/isolation & purification , Gram-Negative Bacterial Infections/drug therapy , Gram-Negative Bacterial Infections/microbiology , Acinetobacter baumannii/drug effects , Acinetobacter baumannii/isolation & purification , Acinetobacter baumannii/genetics , Klebsiella pneumoniae/drug effects , Klebsiella pneumoniae/isolation & purification , Klebsiella pneumoniae/genetics , Amikacin/pharmacology , Amikacin/therapeutic use , Fosfomycin/pharmacology , Fosfomycin/therapeutic use , beta-Lactamases/genetics , beta-Lactamases/metabolism , Escherichia coli/drug effects , Escherichia coli/genetics , Escherichia coli/isolation & purification , Developing Countries , Drug Resistance, Multiple, Bacterial/genetics , Drug Therapy, Combination , Serratia marcescens/drug effects , Serratia marcescens/genetics , Serratia marcescens/isolation & purification , Enterobacter cloacae/drug effects , Enterobacter cloacae/genetics , Enterobacter cloacae/isolation & purification , Bacterial Proteins/genetics , Bacterial Proteins/metabolism
14.
Nat Commun ; 15(1): 3954, 2024 May 10.
Article En | MEDLINE | ID: mdl-38729958

Defense-associated sirtuin 2 (DSR2) systems are widely distributed across prokaryotic genomes, providing robust protection against phage infection. DSR2 recognizes phage tail tube proteins and induces abortive infection by depleting intracellular NAD+, a process that is counteracted by another phage-encoded protein, DSR Anti Defense 1 (DSAD1). Here, we present cryo-EM structures of Bacillus subtilis DSR2 in its apo, Tube-bound, and DSAD1-bound states. DSR2 assembles into an elongated tetramer, with four NADase catalytic modules clustered in the center and the regulatory-sensing modules distributed at four distal corners. Interestingly, monomeric Tube protein, rather than its oligomeric states, docks at each corner of the DSR2 tetramer to form a 4:4 DSR2-Tube assembly, which is essential for DSR2 NADase activity. DSAD1 competes with Tube for binding to DSR2 by occupying an overlapping region, thereby inhibiting DSR2 immunity. Thus, our results provide important insights into the assembly, activation and inhibition of the DSR2 anti-phage defense system.


Bacillus subtilis , Bacterial Proteins , Bacteriophages , Cryoelectron Microscopy , Bacillus subtilis/immunology , Bacillus subtilis/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/immunology , Bacteriophages/genetics , Bacteriophages/immunology , Immune Evasion , Sirtuins/metabolism , Sirtuins/genetics , Viral Proteins/metabolism , Viral Proteins/immunology , Viral Proteins/chemistry , Viral Proteins/genetics , Protein Binding , Models, Molecular , NAD/metabolism
15.
Int J Mol Sci ; 25(9)2024 Apr 25.
Article En | MEDLINE | ID: mdl-38731921

The conserved cyanobacterial protein PipX is part of a complex interaction network with regulators involved in essential processes that include metabolic homeostasis and ribosome assembly. Because PipX interactions depend on the relative levels of their different partners and of the effector molecules binding to them, in vivo studies are required to understand the physiological significance and contribution of environmental factors to the regulation of PipX complexes. Here, we have used the NanoBiT complementation system to analyse the regulation of complex formation in Synechococcus elongatus PCC 7942 between PipX and each of its two best-characterized partners, PII and NtcA. Our results confirm previous in vitro analyses on the regulation of PipX-PII and PipX-NtcA complexes by 2-oxoglutarate and on the regulation of PipX-PII by the ATP/ADP ratio, showing the disruption of PipX-NtcA complexes due to increased levels of ADP-bound PII in Synechococcus elongatus. The demonstration of a positive role of PII on PipX-NtcA complexes during their initial response to nitrogen starvation or the impact of a PipX point mutation on the activity of PipX-PII and PipX-NtcA reporters are further indications of the sensitivity of the system. This study reveals additional regulatory complexities in the PipX interaction network, opening a path for future research on cyanobacteria.


Bacterial Proteins , Synechococcus , Synechococcus/metabolism , Synechococcus/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Gene Expression Regulation, Bacterial , Protein Binding , Adenosine Triphosphate/metabolism , Protein Interaction Maps , DNA-Binding Proteins , Transcription Factors
16.
Int J Mol Sci ; 25(9)2024 Apr 26.
Article En | MEDLINE | ID: mdl-38731965

Antimicrobial resistance has recently been considered an emerging catastrophe globally. The public health and environmental threats were aggravated by the injudicious use of antibiotics in animal farming, aquaculture, and croup fields, etc. Consequently, failure of antibiotic therapies is common because of the emergence of multidrug-resistant (MDR) bacteria in the environment. Thus, the reduction in antibiotic spillage in the environment could be an important step for overcoming this situation. Bear in mind, this research was focused on the green synthesis of chitosan nanoparticles (ChiNPs) using Citrus lemon (Assam lemon) extract as a cross-linker and application in controlling MDR bacteria to reduce the antibiotic spillage in that sector. For evaluating antibacterial activity, Staphylococcus aureus and Escherichia coli were isolated from environmental specimens, and their multidrug-resistant pattern were identified both phenotypically by disk diffusion and genotypically by detecting methicillin- (mecA), penicillin- (blaZ), and streptomycin (aadA1)-resistance encoding genes. The inhibitory zone's diameter was employed as a parameter for determining the antibacterial effect against MDR bacteria revealing 30 ± 0.4 mm, 34 ± 0.2 mm, and 36 ± 0.8 mm zones of inhibition against methicillin- (mecA) and penicillin (blaZ)-resistant S. aureus, and streptomycin (aadA1)-resistant E. coli, respectively. The minimum inhibitory concentration at 0.31 mg/mL and minimum bactericidal concentration at 0.62 mg/mL of yielded ChiNPs were used as the broad-spectrum application against MDR bacteria. Finally, the biocompatibility of ChiNPs was confirmed by showing a negligible decrease in BHK-21 cell viability at doses less than 2 MIC, suggesting their potential for future application in antibiotic-free farming practices.


Anti-Bacterial Agents , Chitosan , Drug Resistance, Multiple, Bacterial , Escherichia coli , Microbial Sensitivity Tests , Nanoparticles , Staphylococcus aureus , Chitosan/pharmacology , Chitosan/chemistry , Nanoparticles/chemistry , Escherichia coli/drug effects , Escherichia coli/genetics , Drug Resistance, Multiple, Bacterial/drug effects , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Staphylococcus aureus/drug effects , Green Chemistry Technology , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Penicillin-Binding Proteins/genetics , Penicillin-Binding Proteins/metabolism , Penicillin-Binding Proteins/antagonists & inhibitors
17.
Gut Microbes ; 16(1): 2350778, 2024.
Article En | MEDLINE | ID: mdl-38717446

Ethanolamine is an abundant compound in the gastrointestinal tract and a valuable source of carbon and nitrogen for pathogenic bacteria harboring ethanolamine utilization (eut) genes. Eut-positive pathogens can consume free ethanolamine to outcompete commensal microbes, which often lack eut genes, and establish infection. Ethanolamine can also act as a host recognition signal for eut-positive pathogens to upregulate virulence genes during colonization. Therefore, reducing free ethanolamine titers may represent a novel approach to preventing infection by eut-positive pathogens. Interestingly, the commensal microorganism Levilactobacillus brevis ATCC 14869 was found to encode over 18 eut genes within its genome. This led us to hypothesize that L. brevis can compete with eut-positive pathogens by clearing free ethanolamine from the environment. Our results demonstrate that despite being unable to metabolize ethanolamine under most conditions, L. brevis ATCC 14869 responds to the compound by increasing the expression of genes encoding proteins involved in microcompartment formation and adhesion to the intestinal epithelial barrier. The improved intestinal adhesion of L. brevis in the presence of ethanolamine also enhanced the exclusion of eut-positive pathogens from adhering to intestinal epithelial cells. These findings support further studies to test whether L. brevis ATCC 14869 can counter enteric pathogens and prevent or reduce the severity of infections. Overall, the metabolic capabilities of L. brevis ATCC 14869 offer a unique opportunity to add to the armamentarium of antimicrobial therapies as well as our understanding of the mechanisms used by beneficial microbes to sense and adapt to host microenvironments.


Bacterial Adhesion , Ethanolamine , Gene Expression Regulation, Bacterial , Levilactobacillus brevis , Ethanolamine/metabolism , Bacterial Adhesion/drug effects , Levilactobacillus brevis/genetics , Levilactobacillus brevis/metabolism , Humans , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Gastrointestinal Microbiome , Animals , Virulence/genetics
18.
Proc Natl Acad Sci U S A ; 121(20): e2312892121, 2024 May 14.
Article En | MEDLINE | ID: mdl-38713622

Marine picocyanobacteria of the genera Prochlorococcus and Synechococcus, the two most abundant phototrophs on Earth, thrive in oligotrophic oceanic regions. While it is well known that specific lineages are exquisitely adapted to prevailing in situ light and temperature regimes, much less is known of the molecular machinery required to facilitate occupancy of these low-nutrient environments. Here, we describe a hitherto unknown alkaline phosphatase, Psip1, that has a substantially higher affinity for phosphomonoesters than other well-known phosphatases like PhoA, PhoX, or PhoD and is restricted to clade III Synechococcus and a subset of high light I-adapted Prochlorococcus strains, suggesting niche specificity. We demonstrate that Psip1 has undergone convergent evolution with PhoX, requiring both iron and calcium for activity and likely possessing identical key residues around the active site, despite generally very low sequence homology. Interrogation of metagenomes and transcriptomes from TARA oceans and an Atlantic Meridional transect shows that psip1 is abundant and highly expressed in picocyanobacterial populations from the Mediterranean Sea and north Atlantic gyre, regions well recognized to be phosphorus (P)-deplete. Together, this identifies psip1 as an important oligotrophy-specific gene for P recycling in these organisms. Furthermore, psip1 is not restricted to picocyanobacteria and is abundant and highly transcribed in some α-proteobacteria and eukaryotic algae, suggesting that such a high-affinity phosphatase is important across the microbial taxonomic world to occupy low-P environments.


Alkaline Phosphatase , Prochlorococcus , Alkaline Phosphatase/metabolism , Alkaline Phosphatase/genetics , Prochlorococcus/genetics , Prochlorococcus/metabolism , Phosphorus/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Synechococcus/genetics , Synechococcus/metabolism , Phylogeny , Seawater/microbiology
19.
Geobiology ; 22(3): e12600, 2024.
Article En | MEDLINE | ID: mdl-38725144

Microbial sulfate reduction is central to the global carbon cycle and the redox evolution of Earth's surface. Tracking the activity of sulfate reducing microorganisms over space and time relies on a nuanced understanding of stable sulfur isotope fractionation in the context of the biochemical machinery of the metabolism. Here, we link the magnitude of stable sulfur isotopic fractionation to proteomic and metabolite profiles under different cellular energetic regimes. When energy availability is limited, cell-specific sulfate respiration rates and net sulfur isotope fractionation inversely covary. Beyond net S isotope fractionation values, we also quantified shifts in protein expression, abundances and isotopic composition of intracellular S metabolites, and lipid structures and lipid/water H isotope fractionation values. These coupled approaches reveal which protein abundances shift directly as a function of energy flux, those that vary minimally, and those that may vary independent of energy flux and likely do not contribute to shifts in S-isotope fractionation. By coupling the bulk S-isotope observations with quantitative proteomics, we provide novel constraints for metabolic isotope models. Together, these results lay the foundation for more predictive metabolic fractionation models, alongside interpretations of environmental sulfur and sulfate reducer lipid-H isotope data.


Desulfovibrio vulgaris , Proteomics , Sulfur Isotopes , Sulfur Isotopes/analysis , Sulfur Isotopes/metabolism , Desulfovibrio vulgaris/metabolism , Proteome/metabolism , Proteome/analysis , Energy Metabolism , Metabolome , Bacterial Proteins/metabolism , Oxidation-Reduction , Sulfates/metabolism
20.
PLoS Pathog ; 20(5): e1012214, 2024 May.
Article En | MEDLINE | ID: mdl-38722857

Epithelial cells function as the primary line of defense against invading pathogens. However, bacterial pathogens possess the ability to compromise this barrier and facilitate the transmigration of bacteria. Nonetheless, the specific molecular mechanism employed by Mycobacterium tuberculosis (M.tb) in this process is not fully understood. Here, we investigated the role of Rv2569c in M.tb translocation by assessing its ability to cleave E-cadherin, a crucial component of cell-cell adhesion junctions that are disrupted during bacterial invasion. By utilizing recombinant Rv2569c expressed in Escherichia coli and subsequently purified through affinity chromatography, we demonstrated that Rv2569c exhibited cell wall-associated serine protease activity. Furthermore, Rv2569c was capable of degrading a range of protein substrates, including casein, fibrinogen, fibronectin, and E-cadherin. We also determined that the optimal conditions for the protease activity of Rv2569c occurred at a temperature of 37°C and a pH of 9.0, in the presence of MgCl2. To investigate the function of Rv2569c in M.tb, a deletion mutant of Rv2569c and its complemented strains were generated and used to infect A549 cells and mice. The results of the A549-cell infection experiments revealed that Rv2569c had the ability to cleave E-cadherin and facilitate the transmigration of M.tb through polarized A549 epithelial cell layers. Furthermore, in vivo infection assays demonstrated that Rv2569c could disrupt E-cadherin, enhance the colonization of M.tb, and induce pathological damage in the lungs of C57BL/6 mice. Collectively, these results strongly suggest that M.tb employs the serine protease Rv2569c to disrupt epithelial defenses and facilitate its systemic dissemination by crossing the epithelial barrier.


Bacterial Proteins , Cadherins , Epithelial Cells , Mycobacterium tuberculosis , Serine Proteases , Cadherins/metabolism , Mycobacterium tuberculosis/pathogenicity , Mycobacterium tuberculosis/metabolism , Animals , Humans , Mice , Serine Proteases/metabolism , Serine Proteases/genetics , Epithelial Cells/metabolism , Epithelial Cells/microbiology , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , A549 Cells , Tuberculosis/microbiology , Tuberculosis/metabolism , Female
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