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1.
Molecules ; 29(12)2024 Jun 19.
Article in English | MEDLINE | ID: mdl-38930979

ABSTRACT

Secondary metabolites, bioactive compounds produced by living organisms, can unveil symbiotic relationships in nature. In this study, soilborne entomopathogenic nematodes associated with symbiotic bacteria (Xenorhabdus stockiae and Photorhabdus luminescens) were extracted from solvent supernatant containing secondary metabolites, demonstrating significant inhibitory effects against E. coli, S. aureus, B. subtilus, P. mirabilis, E. faecalis, and P. stutzeri. The characterization of these secondary metabolites by Fourier transforms infrared spectroscopy revealed amine groups of proteins, hydroxyl and carboxyl groups of polyphenols, hydroxyl groups of polysaccharides, and carboxyl groups of organic acids. Furthermore, the obtained crude extracts were analyzed by high-performance liquid chromatography for the basic identification of potential bioactive peptides. Gas chromatography-mass spectrometry analysis of ethyl acetate extracts from Xenorhabdus stockiae identified major compounds including nonanoic acid derivatives, proline, paromycin, octodecanal derivatives, trioxa-5-aza-1-silabicyclo, 4-octadecenal, methyl ester, oleic acid, and 1,2-benzenedicarboxylicacid. Additional extraction from Photorhabdus luminescens yielded functional compounds such as indole-3-acetic acid, phthalic acid, 1-tetradecanol, nemorosonol, 1-eicosanol, and unsaturated fatty acids. These findings support the potential development of novel natural antimicrobial agents for future pathogen suppression.


Subject(s)
Anti-Bacterial Agents , Gas Chromatography-Mass Spectrometry , Symbiosis , Chromatography, High Pressure Liquid/methods , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Spectroscopy, Fourier Transform Infrared/methods , Gas Chromatography-Mass Spectrometry/methods , Secondary Metabolism , Photorhabdus/chemistry , Photorhabdus/metabolism , Xenorhabdus/chemistry , Xenorhabdus/metabolism , Microbial Sensitivity Tests , Animals
2.
Insect Biochem Mol Biol ; 162: 104014, 2023 11.
Article in English | MEDLINE | ID: mdl-37778713

ABSTRACT

PirAB binary toxin from Photorhabdus is toxic to the larvae of dipteran and lepidopteran insect pests. However, the 3-D structures and their toxicity mechanism are not yet fully understood. Here we report the crystal structures of PirA and PirB proteins from Photorhabdus akhurstii subsp. akhurstii K-1 at 1.6 and 2.1 Å, respectively. PirA comprises of eight ß-strands depicting jelly-roll topology while PirB folds into two distinct domains, an N-terminal domain (PirB-N) made up of seven α-helices and a C-terminal domain (PirB-C) consists of ten ß-strands. Despite the low sequence identity, PirA adopts similar architecture as domain III and PirB shared similar architecture as domain I/II of the Cry δ-endotoxin of Bacillus thuringiensis, respectively. However, PirA shows significant structural variations as compared to domain III of lepidopteran and dipteran specific Cry toxins (Cry1Aa and Cry11Ba) suggesting its role in virulence among range of insect pests and hence, in receptor binding. High structural resemblance between PirB-N and domain I of Cry toxin raises the possibility that the putative PirAB binary toxin may mimic the toxicity mechanism of the Cry protein, particularly its ability to perform pore formation. The mixture of independently purified PirA and PirB proteins are not toxic to insects. However, PirA-PirB protein complex purified from expression of pir operon with non-coding Enterobacterial Repetitive Intergenic Consensus (ERIC) sequences found toxic to Galleria mellonella larvae with LD50 value of 1.62 µg/larva. This suggests that toxic conformation of PirA and PirB are achieved in-vivo with the help of ERIC sequences.


Subject(s)
Moths , Photorhabdus , Animals , Photorhabdus/chemistry , Bacterial Proteins/chemistry , Endotoxins , Larva , Insecta , Hemolysin Proteins
3.
Nature ; 616(7956): 357-364, 2023 04.
Article in English | MEDLINE | ID: mdl-36991127

ABSTRACT

Endosymbiotic bacteria have evolved intricate delivery systems that enable these organisms to interface with host biology. One example, the extracellular contractile injection systems (eCISs), are syringe-like macromolecular complexes that inject protein payloads into eukaryotic cells by driving a spike through the cellular membrane. Recently, eCISs have been found to target mouse cells1-3, raising the possibility that these systems could be harnessed for therapeutic protein delivery. However, whether eCISs can function in human cells remains unknown, and the mechanism by which these systems recognize target cells is poorly understood. Here we show that target selection by the Photorhabdus virulence cassette (PVC)-an eCIS from the entomopathogenic bacterium Photorhabdus asymbiotica-is mediated by specific recognition of a target receptor by a distal binding element of the PVC tail fibre. Furthermore, using in silico structure-guided engineering of the tail fibre, we show that PVCs can be reprogrammed to target organisms not natively targeted by these systems-including human cells and mice-with efficiencies approaching 100%. Finally, we show that PVCs can load diverse protein payloads, including Cas9, base editors and toxins, and can functionally deliver them into human cells. Our results demonstrate that PVCs are programmable protein delivery devices with possible applications in gene therapy, cancer therapy and biocontrol.


Subject(s)
Cell Membrane , Drug Delivery Systems , Eukaryotic Cells , Photorhabdus , Proteins , Animals , Humans , Mice , Cell Membrane/metabolism , Eukaryotic Cells/cytology , Eukaryotic Cells/metabolism , Photorhabdus/chemistry , Photorhabdus/metabolism , CRISPR-Associated Protein 9/metabolism , Toxins, Biological/metabolism , Proteins/metabolism , Drug Delivery Systems/methods , Protein Transport
4.
Microbiol Spectr ; 10(1): e0257721, 2022 02 23.
Article in English | MEDLINE | ID: mdl-35138171

ABSTRACT

Entomopathogenic Photorhabdus bacteria (Enterobacteriaceae: Gamma-proteobacteria), the natural symbionts of Heterorhabditis nematodes, are a rich source for the discovery of biologically active secondary metabolites (SMs). This study describes the isolation of three nematicidal SMs from in vitro culture supernatants of the Arizona-native Photorhabdus luminescens sonorensis strain Caborca by bioactivity-guided fractionation. Nuclear magnetic resonance spectroscopy and comparison to authentic synthetic standards identified these bioactive metabolites as trans-cinnamic acid (t-CA), (4E)-5-phenylpent-4-enoic acid (PPA), and indole. PPA and t-CA displayed potent, concentration-dependent nematicidal activities against the root-knot nematode (Meloidogyne incognita) and the citrus nematode (Tylenchulus semipenetrans), two economically and globally important plant parasitic nematodes (PPNs) that are ubiquitous in the United States. Southwest. Indole showed potent, concentration-dependent nematistatic activity by inducing the temporary rigid paralysis of the same targeted nematodes. While paralysis was persistent in the presence of indole, the nematodes recovered upon removal of the compound. All three SMs were found to be selective against the tested PPNs, exerting little effects on non-target species such as the bacteria-feeding nematode Caenorhabditis elegans or the entomopathogenic nematodes Steinernema carpocapsae, Heterorhabditis bacteriophora, and Hymenocallis sonorensis. Moreover, none of these SMs showed cytotoxicity against normal or neoplastic human cells. The combination of t-CA + PPA + indole had a synergistic nematicidal effect on both targeted PPNs. Two-component mixtures prepared from these SMs revealed complex, compound-, and nematode species-dependent interactions. These results justify further investigations into the chemical ecology of Photorhabdus SMs, and recommend t-CA, PPA and indole, alone or in combinations, as lead compounds for the development of selective and environmentally benign nematicides against the tested PPNs. IMPORTANCE Two phenylpropanoid and one alkaloid secondary metabolites were isolated and identified from culture filtrates of Photorhabdus l. sonorensis strain Caborca. The three identified metabolites showed selective nematicidal and/or nematistatic activities against two important plant parasitic nematodes, the root-knot nematode (Meloidogyne incognita) and the citrus nematode (Tylenchulus semipenetrans). The mixture of all three metabolites had a synergistic nematicidal effect on both targeted nematodes, while other combinations showed compound- and nematode-dependent interactions.


Subject(s)
Anthelmintics/pharmacology , Photorhabdus/chemistry , Plant Diseases/parasitology , Secondary Metabolism , Tylenchoidea/drug effects , Animals , Anthelmintics/chemistry , Anthelmintics/metabolism , Cinnamates/chemistry , Cinnamates/metabolism , Cinnamates/pharmacology , Indoles/chemistry , Indoles/metabolism , Indoles/pharmacology , Molecular Structure , Photorhabdus/metabolism , Tylenchoidea/growth & development
5.
Org Lett ; 23(18): 7083-7087, 2021 09 17.
Article in English | MEDLINE | ID: mdl-34459612

ABSTRACT

Herein, we report the total synthesis of the phosphorylated zwitterionic trisaccharide repeating unit of Photorhabdus temperata subsp. cinerea 3240. The efficient route involves regio- and stereoselective assembly of trisaccharide with rare deoxyamino sugar AAT at the nonreducing end, late stage oxidation, and installation of a phosphate linker on the trisaccharide. The total synthesis was completed via a longest linear sequence of 24 steps in 6.5% overall yield.


Subject(s)
Photorhabdus/chemistry , Trisaccharides/chemical synthesis , Molecular Structure , Phosphorylation , Trisaccharides/chemistry
6.
PLoS One ; 16(8): e0255943, 2021.
Article in English | MEDLINE | ID: mdl-34383819

ABSTRACT

Xenorhabdus and Photorhabdus are gram negative bacteria that can produce several secondary metabolites, including antimicrobial compounds. They have a symbiotic association with entomopathogenic nematodes (EPNs). The aim of this study was to isolate and identify Xenorhabdus and Photorhabdus species and their associated nematode symbionts from Northeastern region of Thailand. We also evaluated the antibacterial activity of these symbiotic bacteria. The recovery rate of EPNs was 7.82% (113/1445). A total of 62 Xenorhabdus and 51 Photorhabdus strains were isolated from the EPNs. Based on recA sequencing and phylogeny, Xenorhabdus isolates were identified as X. stockiae (n = 60), X. indica (n = 1) and X. eapokensis (n = 1). Photorhabdus isolates were identified as P. luminescens subsp. akhurstii (n = 29), P. luminescens subsp. hainanensis (n = 18), P. luminescens subsp. laumondii (n = 2), and P. asymbiotica subsp. australis (n = 2). The EPNs based on 28S rDNA and internal transcribed spacer (ITS) analysis were identified as Steinernema surkhetense (n = 35), S. sangi (n = 1), unidentified Steinernema (n = 1), Heterorhabditis indica (n = 39), H. baujardi (n = 1), and Heterorhabditis sp. SGmg3 (n = 3). Antibacterial activity showed that X. stockiae (bMSK7.5_TH) extract inhibited several antibiotic-resistant bacterial strains. To the best of our knowledge, this is the first report on mutualistic association between P. luminescens subsp. laumondii and Heterorhabditis sp. SGmg3. This study could act as a platform for future studies focusing on the discovery of novel antimicrobial compounds from these bacterial isolates.


Subject(s)
Anti-Bacterial Agents/pharmacology , Drug Resistance, Bacterial/drug effects , Nematoda/microbiology , Photorhabdus/genetics , Xenorhabdus/genetics , Animals , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/isolation & purification , Gram-Negative Bacteria/drug effects , Gram-Positive Bacteria/drug effects , Larva/microbiology , Microbial Sensitivity Tests , Nematoda/classification , Nematoda/genetics , Nematoda/isolation & purification , Photorhabdus/chemistry , Photorhabdus/classification , Photorhabdus/isolation & purification , Phylogeny , RNA, Ribosomal, 16S/genetics , RNA, Ribosomal, 16S/metabolism , RNA, Ribosomal, 28S/genetics , RNA, Ribosomal, 28S/metabolism , Soil/chemistry , Soil/parasitology , Soil Microbiology , Symbiosis , Xenorhabdus/chemistry , Xenorhabdus/classification , Xenorhabdus/isolation & purification
7.
Nucleic Acids Res ; 49(14): 8384-8395, 2021 08 20.
Article in English | MEDLINE | ID: mdl-34255843

ABSTRACT

Bacteria have evolved sophisticated mechanisms to deliver potent toxins into bacterial competitors or into eukaryotic cells in order to destroy rivals and gain access to a specific niche or to hijack essential metabolic or signaling pathways in the host. Delivered effectors carry various activities such as nucleases, phospholipases, peptidoglycan hydrolases, enzymes that deplete the pools of NADH or ATP, compromise the cell division machinery, or the host cell cytoskeleton. Effectors categorized in the family of polymorphic toxins have a modular structure, in which the toxin domain is fused to additional elements acting as cargo to adapt the effector to a specific secretion machinery. Here we show that Photorhabdus laumondii, an entomopathogen species, delivers a polymorphic antibacterial toxin via a type VI secretion system. This toxin inhibits protein synthesis in a NAD+-dependent manner. Using a biotinylated derivative of NAD, we demonstrate that translation is inhibited through ADP-ribosylation of the ribosomal 23S RNA. Mapping of the modification further showed that the adduct locates on helix 44 of the thiostrepton loop located in the GTPase-associated center and decreases the GTPase activity of the EF-G elongation factor.


Subject(s)
Bacterial Toxins/pharmacology , GTP Phosphohydrolases/genetics , RNA, Ribosomal, 23S/genetics , Type VI Secretion Systems/drug effects , ADP-Ribosylation/drug effects , Bacterial Toxins/chemistry , Bacterial Toxins/genetics , NAD/genetics , Peptide Elongation Factor G/genetics , Photorhabdus/chemistry , Photorhabdus/genetics , Protein Biosynthesis/drug effects , RNA, Ribosomal, 23S/drug effects , Thiostrepton/chemistry , Thiostrepton/pharmacology
8.
Org Lett ; 23(15): 5922-5926, 2021 08 06.
Article in English | MEDLINE | ID: mdl-34314177

ABSTRACT

Zwitterionic carbohydrate modifications, such as phosphoethanolamine (PEtN), govern host-pathogen interactions. Whereas it is recognized that these modifications stimulate the host immune system, the purpose of PEtN modification remains largely descriptive. As an enabling step toward studying this carbohydrate modification, we report a synthesis of the P. temperata zwitterionic trisaccharide repeating unit. The 32-step synthesis was enabled by H-phosphonate chemistry to install the PEtN arm on a poorly reactive and sterically hindered C4-alcohol.


Subject(s)
Ethanolamines/chemical synthesis , Photorhabdus/chemistry , Trisaccharides/chemical synthesis , Ethanolamines/chemistry , Molecular Structure , Trisaccharides/chemistry
9.
Structure ; 29(9): 1003-1013.e4, 2021 09 02.
Article in English | MEDLINE | ID: mdl-33765407

ABSTRACT

Carbohydrate-binding proteins from pathogenic bacteria and fungi have been shown to be implicated in various pathological processes, where they interact with glycans present on the surface of the host cells. These interactions are part of the initial processes of infection of the host and are very important to study at the atomic level. Here, we report the room temperature neutron structures of PLL lectin from Photorhabdus laumondii in its apo form and in complex with deuterated L-fucose, which is, to our knowledge, the first neutron structure of a carbohydrate-binding protein in complex with a fully deuterated carbohydrate ligand. A detailed structural analysis of the lectin-carbohydrate interactions provides information on the hydrogen bond network, the role of water molecules, and the extent of the CH-π stacking interactions between fucose and the aromatic amino acids in the binding site.


Subject(s)
Bacterial Proteins/chemistry , Fucose/chemistry , Lectins/chemistry , Bacterial Proteins/metabolism , Fucose/metabolism , Hydrogen/chemistry , Lectins/metabolism , Photorhabdus/chemistry , Protein Binding
10.
Appl Biochem Biotechnol ; 191(1): 191-200, 2020 May.
Article in English | MEDLINE | ID: mdl-32100234

ABSTRACT

Photorhabdus luminescens is an entomopathogenic rod-shaped bacterium infected with insect nematodes of the Heterorhabditidae family. It kills insects through the secretion of high molecular weight toxin complexes. In this study, Plutella xylostella larvae were orally administered P. luminescens for bioassay. After incubation in Luria-Bertani (LB) medium for a sufficiently long period, the mortality rates of P. xylostella observed after diluting the fermentation broth 50 times and diluting the supernatant 5 times were 18.89% and 91.11%, respectively. Retentates measuring more than 70 kDa showed 88% mortality after ultrafiltration (UF) membrane treatment. Thus, the supernatant of P. luminescens had insecticidal activity, and the main insecticidal toxin complexes had a molecular weight exceeding 70 kDa. The L9 (34) Taguchi orthogonal experimental optimized medium mode-predicted insecticidal activity levels were 84% and 119% in the 50-fold diluted fermentation broth and 5-fold diluted supernatant, respectively. Moreover, the insecticidal activity was improved to 92.2% in the 100-fold diluted fermentation broth and to 97.8% in the 10-fold diluted supernatant in the experiments. All combinations tested showed clear indications of lethality, including swelling, vesicle formation, cytoplasm vacuolization, and brush border membrane lysis. Thus, these results promote the use of P. luminescens 0805-P2R as a potent biopesticide to effectively control P. xylostella.


Subject(s)
Bacterial Toxins , Insecticides , Moths/growth & development , Photorhabdus , Animals , Bacterial Toxins/biosynthesis , Bacterial Toxins/chemistry , Bacterial Toxins/isolation & purification , Bacterial Toxins/pharmacology , Insecticides/chemistry , Insecticides/isolation & purification , Insecticides/metabolism , Insecticides/pharmacology , Photorhabdus/chemistry , Photorhabdus/growth & development
11.
Nature ; 576(7787): 459-464, 2019 12.
Article in English | MEDLINE | ID: mdl-31747680

ABSTRACT

The current need for novel antibiotics is especially acute for drug-resistant Gram-negative pathogens1,2. These microorganisms have a highly restrictive permeability barrier, which limits the penetration of most compounds3,4. As a result, the last class of antibiotics that acted against Gram-negative bacteria was developed in the 1960s2. We reason that useful compounds can be found in bacteria that share similar requirements for antibiotics with humans, and focus on Photorhabdus symbionts of entomopathogenic nematode microbiomes. Here we report a new antibiotic that we name darobactin, which was obtained using a screen of Photorhabdus isolates. Darobactin is coded by a silent operon with little production under laboratory conditions, and is ribosomally synthesized. Darobactin has an unusual structure with two fused rings that form post-translationally. The compound is active against important Gram-negative pathogens both in vitro and in animal models of infection. Mutants that are resistant to darobactin map to BamA, an essential chaperone and translocator that folds outer membrane proteins. Our study suggests that bacterial symbionts of animals contain antibiotics that are particularly suitable for development into therapeutics.


Subject(s)
Anti-Bacterial Agents/isolation & purification , Anti-Bacterial Agents/pharmacology , Gram-Negative Bacteria/drug effects , Gram-Negative Bacteria/pathogenicity , Phenylpropionates/isolation & purification , Phenylpropionates/pharmacology , Animals , Anti-Bacterial Agents/chemistry , Bacterial Outer Membrane Proteins/antagonists & inhibitors , Bacterial Outer Membrane Proteins/chemistry , Bacterial Outer Membrane Proteins/genetics , Bacterial Outer Membrane Proteins/metabolism , Cell Line , Disease Models, Animal , Drug Discovery , Drug Resistance, Microbial/drug effects , Drug Resistance, Microbial/genetics , Escherichia coli Proteins/antagonists & inhibitors , Escherichia coli Proteins/chemistry , Escherichia coli Proteins/genetics , Escherichia coli Proteins/metabolism , Female , Gastrointestinal Microbiome/drug effects , Gram-Negative Bacteria/genetics , Humans , Mice , Microbial Sensitivity Tests , Microbial Viability/drug effects , Mutation , Nematoda/microbiology , Operon/genetics , Photorhabdus/chemistry , Photorhabdus/genetics , Photorhabdus/isolation & purification , Substrate Specificity , Symbiosis
12.
Nat Commun ; 10(1): 5263, 2019 11 20.
Article in English | MEDLINE | ID: mdl-31748551

ABSTRACT

Tc toxins are bacterial protein complexes that inject cytotoxic enzymes into target cells using a syringe-like mechanism. Tc toxins are composed of a membrane translocator and a cocoon that encapsulates a toxic enzyme. The toxic enzyme varies between Tc toxins from different species and is not conserved. Here, we investigate whether the toxic enzyme can be replaced by other small proteins of different origin and properties, namely Cdc42, herpes simplex virus ICP47, Arabidopsis thaliana iLOV, Escherichia coli DHFR, Ras-binding domain of CRAF kinase, and TEV protease. Using a combination of electron microscopy, X-ray crystallography and in vitro translocation assays, we demonstrate that it is possible to turn Tc toxins into customizable molecular syringes for delivering proteins of interest across membranes. We also infer the guidelines that protein cargos must obey in terms of size, charge, and fold in order to apply Tc toxins as a universal protein translocation system.


Subject(s)
Bacterial Proteins/metabolism , Bacterial Toxins/metabolism , Protein Translocation Systems/metabolism , Arabidopsis Proteins/chemistry , Arabidopsis Proteins/metabolism , Bacterial Proteins/chemistry , Bacterial Toxins/chemistry , Crystallography, X-Ray , Endopeptidases/chemistry , Endopeptidases/metabolism , Escherichia coli Proteins/chemistry , Escherichia coli Proteins/metabolism , Immediate-Early Proteins/chemistry , Immediate-Early Proteins/metabolism , Microscopy, Electron , Models, Molecular , Photorhabdus/chemistry , Photorhabdus/metabolism , Protein Translocation Systems/chemistry , Proto-Oncogene Proteins c-raf/chemistry , Proto-Oncogene Proteins c-raf/metabolism , Tetrahydrofolate Dehydrogenase/chemistry , Tetrahydrofolate Dehydrogenase/metabolism , cdc42 GTP-Binding Protein/chemistry , cdc42 GTP-Binding Protein/metabolism
13.
Proc Natl Acad Sci U S A ; 116(46): 23083-23090, 2019 11 12.
Article in English | MEDLINE | ID: mdl-31666324

ABSTRACT

Tc toxins are modular toxin systems of insect and human pathogenic bacteria. They are composed of a 1.4-MDa pentameric membrane translocator (TcA) and a 250-kDa cocoon (TcB and TcC) encapsulating the 30-kDa toxic enzyme (C terminus of TcC). Binding of Tc toxins to target cells and a pH shift trigger the conformational transition from the soluble prepore state to the membrane-embedded pore. Subsequently, the toxic enzyme is translocated and released into the cytoplasm. A high-resolution structure of a holotoxin embedded in membranes is missing, leaving open the question of whether TcB-TcC has an influence on the conformational transition of TcA. Here we show in atomic detail a fully assembled 1.7-MDa Tc holotoxin complex from Photorhabdus luminescens in the membrane. We find that the 5 TcA protomers conformationally adapt to fit around the cocoon during the prepore-to-pore transition. The architecture of the Tc toxin complex allows TcB-TcC to bind to an already membrane-embedded TcA pore to form a holotoxin. Importantly, assembly of the holotoxin at the membrane results in spontaneous translocation of the toxic enzyme, indicating that this process is not driven by a proton gradient or other energy source. Mammalian lipids with zwitterionic head groups are preferred over other lipids for the integration of Tc toxins. In a nontoxic Tc toxin variant, we can visualize part of the translocating toxic enzyme, which transiently interacts with alternating negative charges and hydrophobic stretches of the translocation channel, providing insights into the mechanism of action of Tc toxins.


Subject(s)
Bacterial Toxins/chemistry , Photorhabdus/chemistry , ADP Ribose Transferases/metabolism , Bacterial Toxins/metabolism , Cryoelectron Microscopy , Photorhabdus/metabolism , Protein Structure, Quaternary
14.
Org Biomol Chem ; 17(34): 7858-7862, 2019 08 28.
Article in English | MEDLINE | ID: mdl-31403156

ABSTRACT

A new natural product compound library, photohexapeptide library, was identified from entomopathogenic Photorhabdus asymbiotica PB68.1 after the NRPS-encoding gene phpS was activated via promoter exchange. Peptide structures, including the absolute configurations of amino acids, were determined by using a combination of bioinformatics analysis and isotopic labelling experiments followed by detailed HPLC-MS analysis. Additionally, their structures were confirmed by chemical synthesis and NMR after preparative isolation. The chemical diversity of the photohexapeptides results from promiscuous adenylation domain specificity being an excellent example of how to create libraries in nature.


Subject(s)
Bacterial Proteins/chemistry , Oligopeptides/chemistry , Peptide Library , Photorhabdus/chemistry , Bacterial Proteins/biosynthesis , Computational Biology , Genes, Bacterial , Isotope Labeling , Molecular Structure , Oligopeptides/biosynthesis , Peptide Synthases/genetics , Photorhabdus/enzymology , Transcriptional Activation
15.
Exp Parasitol ; 204: 107724, 2019 Sep.
Article in English | MEDLINE | ID: mdl-31279930

ABSTRACT

Only two drugs are currently available for the treatment of Chagas disease and their effectiveness are unsatisfactory. Photorhabdus luminescens and Xenorhabdus nematophila, two enteric bacteria highly pathogenic to a broad range of insects, have been studied as potential source for bioactive metabolites against protozoa causing neglected tropical diseases. Therefore, we tested the in vitro anti-Trypanosoma cruzi activity of secreted metabolites from these bacteria. The conditioned medium of X. nematophila and P. luminescens showed significant parasiticidal activity in a concentration-dependent manner (IC50XN = 0.34 mg/mL, IC50PL = 1.0 mg/mL). The parasiticidal compound was identified as a small molecule stable to heating and pH changes ranging from 2 to 12. Moreover, anti-Trypanosoma molecules secreted by both bacteria stimulate the trypanocidal activity of macrophages by a mechanism independent of nitric oxide. Summarizing, our studies reveal that P. luminescens and X. nematophila are potential sources of putative novel drugs against Chagas disease.


Subject(s)
Bacterial Proteins/pharmacology , Photorhabdus/chemistry , Trypanocidal Agents/pharmacology , Trypanosoma cruzi/drug effects , Xenorhabdus/chemistry , Analysis of Variance , Animals , Bacterial Proteins/metabolism , Bacterial Proteins/therapeutic use , Biological Assay , Chagas Disease/drug therapy , Culture Media, Conditioned , Endopeptidase K/metabolism , Humans , Hydrogen-Ion Concentration , Inhibitory Concentration 50 , Temperature , Trypanocidal Agents/adverse effects , Trypanocidal Agents/therapeutic use , Trypanosoma cruzi/growth & development
16.
Cell ; 177(2): 370-383.e15, 2019 04 04.
Article in English | MEDLINE | ID: mdl-30905475

ABSTRACT

Contractile injection systems (CISs) are cell-puncturing nanodevices that share ancestry with contractile tail bacteriophages. Photorhabdus virulence cassette (PVC) represents one group of extracellular CISs that are present in both bacteria and archaea. Here, we report the cryo-EM structure of an intact PVC from P. asymbiotica. This over 10-MDa device resembles a simplified T4 phage tail, containing a hexagonal baseplate complex with six fibers and a capped 117-nanometer sheath-tube trunk. One distinct feature of the PVC is the presence of three variants for both tube and sheath proteins, indicating a functional specialization of them during evolution. The terminal hexameric cap docks onto the topmost layer of the inner tube and locks the outer sheath in pre-contraction state with six stretching arms. Our results on the PVC provide a framework for understanding the general mechanism of widespread CISs and pave the way for using them as delivery tools in biological or therapeutic applications.


Subject(s)
Photorhabdus/chemistry , Photorhabdus/ultrastructure , Bacteriophage T4/chemistry , Cell Membrane/chemistry , Cryoelectron Microscopy/methods , Models, Molecular , Photorhabdus/metabolism , Protein Conformation , Type VI Secretion Systems/metabolism
17.
J Biol Chem ; 294(3): 1035-1044, 2019 01 18.
Article in English | MEDLINE | ID: mdl-30478175

ABSTRACT

The nematode mutualistic bacterium Photorhabdus asymbiotica produces a large virulence-associated multifunctional protein toxin named PaTox. A glycosyltransferase domain and a deamidase domain of this large toxin function as effectors that specifically target host Rho GTPases and heterotrimeric G proteins, respectively. Modification of these intracellular regulators results in toxicity toward insects and mammalian cells. In this study, we identified a cysteine protease-like domain spanning PaTox residues 1844-2114 (PaToxP), upstream of these two effector domains and characterized by three conserved amino acid residues (Cys-1865, His-1955, and Asp-1975). We determined the crystal structure of the PaToxP C1865A variant by native single-wavelength anomalous diffraction of sulfur atoms (sulfur-SAD). At 2.0 Å resolution, this structure revealed a catalytic site typical for papain-like cysteine proteases, comprising a catalytic triad, oxyanion hole, and typical secondary structural elements. The PaToxP structure had highest similarity to that of the AvrPphB protease from Pseudomonas syringae classified as a C58-protease. Furthermore, we observed that PaToxP shares structural homology also with non-C58-cysteine proteases, deubiquitinases, and deamidases. Upon delivery into insect larvae, PaToxP alone without full-length PaTox had no toxic effects. Yet, PaToxP expression in mammalian cells was toxic and enhanced the apoptotic phenotype induced by PaTox in HeLa cells. We propose that PaToxP is a C58-like cysteine protease module that is essential for full PaTox activity.


Subject(s)
Bacterial Toxins/chemistry , Cysteine Proteases/chemistry , Photorhabdus/chemistry , Bacterial Toxins/genetics , Bacterial Toxins/metabolism , Crystallography, X-Ray , Cysteine Proteases/genetics , Cysteine Proteases/metabolism , Photorhabdus/genetics , Photorhabdus/metabolism , Protein Domains
18.
Langmuir ; 35(2): 365-371, 2019 01 15.
Article in English | MEDLINE | ID: mdl-30565941

ABSTRACT

A crucial step of exotoxin action is the attack on the membrane. Many exotoxins show an architecture following the AB model, where a binding subunit translocates an "action" subunit across a cell membrane. Atomic force microscopy is an ideal technique to study these systems because of its ability to provide structural as well as dynamic information at the same time. We report first images of toxins Photorhabdus luminescens TcdA1 and Clostridium difficile TcdB on a supported lipid bilayer. A significant amount of toxin binds to the bilayer at neutral pH in the absence of receptors. Lack of diffusion indicates that toxin particles penetrate the membrane. This observation is supported by fluorescence recovery after photobleaching measurements. We mimic endocytosis by acidification while imaging the particles over time; however, we see no large conformational change. We therefore conclude that the toxin particles we imaged in neutral conditions had already formed a pore and speculate that there is no "pre-pore" state in our imaging conditions (i.e., in the absence of receptor).


Subject(s)
Bacterial Proteins/metabolism , Bacterial Toxins/metabolism , Exotoxins/metabolism , Lipid Bilayers/metabolism , Bacterial Proteins/chemistry , Bacterial Toxins/chemistry , Clostridioides difficile/chemistry , Exotoxins/chemistry , Hydrogen-Ion Concentration , Lipid Bilayers/chemistry , Microscopy, Atomic Force , Phosphatidylcholines/chemistry , Phosphatidylethanolamines/chemistry , Photorhabdus/chemistry , Protein Binding , Protein Conformation , Rhodamines/chemistry
19.
Nature ; 563(7730): 209-213, 2018 11.
Article in English | MEDLINE | ID: mdl-30232455

ABSTRACT

Tc toxins secrete toxic enzymes into host cells using a unique syringe-like injection mechanism. They are composed of three subunits, TcA, TcB and TcC. TcA forms the translocation channel and the TcB-TcC heterodimer functions as a cocoon that shields the toxic enzyme. Binding of the cocoon to the channel triggers opening of the cocoon and translocation of the toxic enzyme into the channel. Here we show in atomic detail how the assembly of the three components activates the toxin. We find that part of the cocoon completely unfolds and refolds into an alternative conformation upon binding. The presence of the toxic enzyme inside the cocoon is essential for its subnanomolar binding affinity for the TcA subunit. The enzyme passes through a narrow negatively charged constriction site inside the cocoon, probably acting as an extruder that releases the unfolded protein with its C terminus first into the translocation channel.


Subject(s)
Bacterial Toxins/chemistry , Bacterial Toxins/metabolism , Cryoelectron Microscopy , Multiprotein Complexes/ultrastructure , Photorhabdus/ultrastructure , Protein Refolding , Protein Unfolding , ADP Ribose Transferases/chemistry , ADP Ribose Transferases/metabolism , ADP Ribose Transferases/ultrastructure , Bacterial Toxins/biosynthesis , Cytotoxins/biosynthesis , Cytotoxins/chemistry , Cytotoxins/metabolism , Models, Biological , Models, Molecular , Multiprotein Complexes/biosynthesis , Multiprotein Complexes/chemistry , Multiprotein Complexes/metabolism , Photorhabdus/chemistry , Protein Conformation , Protein Transport
20.
Angew Chem Int Ed Engl ; 57(20): 5699-5702, 2018 05 14.
Article in English | MEDLINE | ID: mdl-29508935

ABSTRACT

Photorhabdus luminescens dedicates a significant proportion of its genome to the production of natural products. These products and the structural variation in their derivatives may occur by a number of well-described mechanisms, such as module skipping or precursor promiscuity. Cappable-seq was used to identify transcriptional start sites of many of the gene clusters present in P. luminescens TTO1. We discovered that variations associated with the non-ribosomal peptide synthetase Kol, which is responsible for kolossin A production, possessed a number of internal transcripts that lead to synthesis of the smaller kolossin derivatives kolossin B and C. The data here support a new mechanism of natural product biosynthetic variation whereby mRNA may code for shorter NRPS enzymes in addition to full-length proteins, resulting in the production of smaller peptide derivatives.


Subject(s)
Biological Products/metabolism , Peptide Synthases/metabolism , Photorhabdus/chemistry , Biological Products/chemistry , Molecular Conformation , Peptide Synthases/chemistry , Peptide Synthases/genetics , Photorhabdus/metabolism
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