21 research outputs found

    Biosynthesis of selenate reductase in <i>Salmonella enterica</i>:critical roles for the signal peptide and DmsD

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    Salmonella enterica serovar Typhimurium is a Gram-negative bacterium with a flexible respiratory capability. Under anaerobic conditions, S. enterica can utilize a range of terminal electron acceptors, including selenate, to sustain respiratory electron transport. The S. enterica selenate reductase is a membrane-bound enzyme encoded by the ynfEFGH-dmsD operon. The active enzyme is predicted to comprise at least three subunits where YnfE is a molybdenum-containing catalytic subunit. The YnfE protein is synthesized with an N-terminal twin-arginine signal peptide and biosynthesis of the enzyme is coordinated by a signal peptide binding chaperone called DmsD. In this work, the interaction between S. enterica DmsD and the YnfE signal peptide has been studied by chemical crosslinking. These experiments were complemented by genetic approaches, which identified the DmsD binding epitope within the YnfE signal peptide. YnfE signal peptide residues L24 and A28 were shown to be important for assembly of an active selenate reductase. Conversely, a random genetic screen identified the DmsD V16 residue as being important for signal peptide recognition and selenate reductase assembly

    A signal sequence suppressor mutant that stabilizes an assembled state of the twin arginine translocase

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    The twin-arginine protein translocation (Tat) system mediates transport of folded proteins across the cytoplasmic membrane of bacteria and the thylakoid membrane of chloroplasts. The Tat system of Escherichia coli is made up of TatA, TatB and TatC components. TatBC comprise the substrate receptor complex, and active Tat translocases are formed by the substrate-induced association of TatA oligomers with this receptor. Proteins are targeted to TatBC by signal peptides containing an essential pair of arginine residues. We isolated substitutions, locating to the transmembrane helix of TatB that restored transport activity to Tat signal peptides with inactivating twin arginine substitutions. A subset of these variants also suppressed inactivating substitutions in the signal peptide binding site on TatC. The suppressors did not function by restoring detectable signal peptide binding to the TatBC complex. Instead, site specific crosslinking experiments indicate that the suppressor substitutions induce conformational change in the complex and movement of the TatB subunit. The TatB F13Y substitution was associated with the strongest suppressing activity, even allowing transport of a Tat substrate lacking a signal peptide. In vivo analysis using a TatA-YFP fusion showed that the TatB F13Y substitution resulted in signal peptide independent assembly of the Tat translocase. We conclude that Tat signal peptides play roles in substrate targeting and in triggering assembly of the active translocase

    Heterogeneity in ess transcriptional organization and variable contribution of the Ess/Type VII protein secretion system to virulence across closely related <em>Staphylocccus aureus </em>strains

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    The Type VII protein secretion system, found in Gram-positive bacteria, secretes small proteins, containing a conserved W-x-G amino acid sequence motif, to the growth medium. Staphylococcus aureus has a conserved Type VII secretion system, termed Ess, which is dispensable for laboratory growth but required for virulence. In this study we show that there are unexpected differences in the organization of the ess gene cluster between closely related strains of S. aureus. We further show that in laboratory growth medium different strains of S. aureus secrete the EsxA and EsxC substrate proteins at different growth points, and that the Ess system in strain Newman is inactive under these conditions. Systematic deletion analysis in S. aureus RN6390 is consistent with the EsaA, EsaB, EssA, EssB, EssC and EsxA proteins comprising core components of the secretion machinery in this strain. Finally we demonstrate that the Ess secretion machinery of two S. aureus strains, RN6390 and COL, is important for nasal colonization and virulence in the murine lung pneumonia model. Surprisingly, however, the secretion system plays no role in the virulence of strain SA113 under the same conditions

    Haem-iron plays a key role in the regulation of the Ess/Type VII secretion system of <i>Staphylococcus aureus</i> RN6390

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    This study was supported by the Wellcome Trust (through Investigator Award 10183/Z/15/Z to T. P. and through Clinical PhD studentship support to C. P. H. through grant 104241/z/14/z), the Biotechnology and Biological Sciences Research Council and the Medical Research Council (through grants BB/H007571/1 and MR/M011224/1, respectively).The Staphylococcus aureus type VII protein secretion system (T7SS) plays important roles in virulence and intra-species competition. Here we show that the T7SS in strain RN6390 is activated by supplementing the growth medium with haemoglobin, and its cofactor haemin (haem B). Transcript analysis and secretion assays suggest that activation by haemin occurs at a transcriptional and a post-translational level. Loss of T7 secretion activity by deletion of essC results in upregulation of genes required for iron acquisition. Taken together these findings suggest that the T7SS plays a role in iron homeostasis in at least some S. aureus strains.Publisher PDFPeer reviewe

    The TatC component of the twin-arginine protein translocase functions as an obligate oligomer

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    The Tat protein export system translocates folded proteins across the bacterial cytoplasmic membrane and the plant thylakoid membrane. The Tat system in Escherichia coli is composed of TatA, TatB and TatC proteins. TatB and TatC form an oligomeric, multivalent receptor complex that binds Tat substrates, while multiple protomers of TatA assemble at substrate-bound TatBC receptors to facilitate substrate transport. We have addressed whether oligomerisation of TatC is an absolute requirement for operation of the Tat pathway by screening for dominant negative alleles of tatC that inactivate Tat function in the presence of wild-type tatC. Single substitutions that confer dominant negative TatC activity were localised to the periplasmic cap region. The variant TatC proteins retained the ability to interact with TatB and with a Tat substrate but were unable to support the in vivo assembly of TatA complexes. Blue-native PAGE analysis showed that the variant TatC proteins produced smaller TatBC complexes than the wild-type TatC protein. The substitutions did not alter disulphide crosslinking to neighbouring TatC molecules from positions in the periplasmic cap but abolished a substrate-induced disulphide crosslink in transmembrane helix 5 of TatC. Our findings show that TatC functions as an obligate oligomer.</p

    A membrane-depolarizing toxin substrate of the Staphylococcus aureus type VII secretion system mediates intraspecies competition.

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    The type VII protein secretion system (T7SS) is conserved across Staphylococcus aureus strains and plays important roles in virulence and interbacterial competition. To date, only one T7SS substrate protein, encoded in a subset of S. aureus genomes, has been functionally characterized. Here, using an unbiased proteomic approach, we identify TspA as a further T7SS substrate. TspA is encoded distantly from the T7SS gene cluster and is found across all S. aureus strains as well as in Listeria and Enterococci. Heterologous expression of TspA from S. aureus strain RN6390 indicates its C-terminal domain is toxic when targeted to the Escherichia coli periplasm and that it depolarizes the cytoplasmic membrane. The membrane-depolarizing activity is alleviated by coproduction of the membrane-bound TsaI immunity protein, which is encoded adjacent to tspA on the S. aureus chromosome. Using a zebrafish hindbrain ventricle infection model, we demonstrate that the T7SS of strain RN6390 promotes bacterial replication in vivo, and deletion of tspA leads to increased bacterial clearance. The toxin domain of TspA is highly polymorphic and S. aureus strains encode multiple tsaI homologs at the tspA locus, suggestive of additional roles in intraspecies competition. In agreement, we demonstrate TspA-dependent growth inhibition of RN6390 by strain COL in the zebrafish infection model that is alleviated by the presence of TsaI homologs

    EssC:domain structures inform on the elusive translocation channels in the Type VII secretion system.

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    The membrane-bound protein EssC is an integral component of the bacterial Type VII secretion system (T7SS), which is a determinant of virulence in important Gram-positive pathogens. The protein is predicted to consist of an intracellular repeat of forkhead-associated (FHA) domains at the N-terminus, two transmembrane helices and three P-loop-containing ATPase-type domains, D1–D3, forming the C-terminal intracellular segment. We present crystal structures of the N-terminal FHA domains (EssC-N) and a C-terminal fragment EssC-C from Geobacillus thermodenitrificans, encompassing two of the ATPase-type modules, D2 and D3. Module D2 binds ATP with high affinity whereas D3 does not. The EssC-N and EssC-C constructs are monomeric in solution, but the full-length recombinant protein, with a molecular mass of approximately 169 kDa, forms a multimer of approximately 1 MDa. The observation of protomer contacts in the crystal structure of EssC-C together with similarity to the DNA translocase FtsK, suggests a model for a hexameric EssC assembly. Such an observation potentially identifies the key, and to date elusive, component of pore formation required for secretion by this recently discovered secretion system. The juxtaposition of the FHA domains suggests potential for interacting with other components of the secretion system. The structural data were used to guide an analysis of which domains are required for the T7SS machine to function in pathogenic Staphylococcus aureus. The extreme C-terminal ATPase domain appears to be essential for EssC activity as a key part of the T7SS, whereas D2 and FHA domains are required for the production of a stable and functional protein

    Struktur- und Funktionsuntersuchungen des C 4-Dicarboxylat-Sensors DcuS von Escherichia coli

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    Das Zweikomponentensystem DcuSR reguliert die Expression der Gene der anaeroben Fumaratatmung in E. coli in Abhängigkeit von externen C4-Dicarbonsäuren. Die membranständige Histidinkinase DcuS detektiert den Reiz und leitet ihn über die Membran an den Responseregulaor DcuR weiter, der die Aktivität der Zielgene reguliert. Das Substratspektrum von DcuS wurde näher untersucht und strukturelle Eigenschaften der Substrate sowie ihre Affinität zu DcuS bestimmt. Es wird vermutet, dass Histidinkinasen im aktiven Zustand als Dimere oder höhere Oligomere vorliegen. Der Oligomerisierungszustand von DcuS in der Membran wurde mittels EPR-Spektroskopie untersucht. Es wurden funktionelle Cysteinmutanten von DcuS hergestellt, die nur an bestimmten Positionen der periplasmatischen Domäne Cysteinreste, aber sonst keine weiteren Cysteinreste, enthielten. Die Proteine wurden isoliert, über die Cysteinreste mit Nitroxiden markiert und in Liposomen rekonstituiert. Erste EPR-Messungen zeigten, dass rekonstituiertes DcuS in einem geordneten Zustand in der Membran vorliegt, der diskrete Abstände zwischen den Monomeren aufweist. Die Struktur von rekonstituiertem DcuS in der Membran soll durch Festkörper-NMR aufgeklärt werden. Ein geeignetes C-terminal verkürztes Konstrukt, DcuS-PD/PAS wurde zu diesem Zweck hergestellt. Das Protein ließ sich in hoher Reinheit isolieren und konnte wieder in Liposomen rekonstituiert werden. Vorbereitende NMR-Messungen zeigten, dass eine Strukturaufklärung an diesem Protein möglich ist. Weitere Strukturuntersuchungen werden zur Zeit durchgeführt.The DcuSR two-component system of E. coli mediates the C4-dicarboxylate dependent expression of the genes for the anaerobic fumarate respiration. The signal is received by the membrane-bound histidine kinase DcuS and transduced across the membrane to its cognate response regulator DcuR which activates target gene expression. Dicarboxylates acting on DcuS were investigated for their structural properties and affinity to the sensor. Histidine kinases are supposed to function as dimers or higher oligomers. Oligomerization of DcuS in the membrane was determined using EPR spectroscopy. Single cysteine replacement mutants at defined positions at the periplasmic domain of a cysteine-free DcuS mutant were constructed and tested for activity. The proteins were then isolated, nitroxide-labeled at the cysteine residue and reconstituted into liposomes. EPR spectra revealed discrete distances between the monomers in the lipid bilayer, indicating that DcuS is in an ordered state. The structure of reconstituted DcuS should be determined by solid state NMR spectroscopy. For this reason DcuS-PD/PAS, a DcuS protein lacking the C-terminal kinase domain, was constructed. The protein was isolated and reconstituted into liposomes. Initial NMR spectra showed that DcuS-PD/PAS could be used in solid state NMR experiments. Investigation of the structure of the protein is in progress
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