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An efficient proteomics based strategy for the functional characterization of a novel halophilic enzyme from Halobacterium salinarum.

The extremely halophilic archaeon, Halobacterium salinarum grows in environments containing over 25% NaCl. The enzymes of this organism have thus been adapted to be active and stable in hypersaline conditions, which makes them strong candidates as robust industrial enzymes. In this study, the proteomics approach was applied to screen novel halophilic enzymes. We focused initially on proteins that are differentially expressed under different salt concentrations in culture media. After two-dimensional gel electrophoresis over a pH 3.5-4.5 range, 29 differentially expressed protein spots were identified by tandem mass spectrometry and six of these had no similarity to preexisting genes of known function. To predict the function of them, we used various bioinformatic methods. Among other proteins, we selected Vng0487h, which showed a high similarity to acetyltransferases. As a step toward assaying the enzymatic activity of this protein, we cloned the Vng0487h gene of H. salinarum and expressed and purified the recombinant protein with a glutathione-S-transferase (GST) tag in Escherichia coli. Using a GST-pulldown assay, a protein fragment derived from E. coli could interact with recombinant Vng0487h, and was identified to be the ribosomal protein L3. This protein showed high sequence homology with ribosomal protein L7/12 from E. coli and ribosomal protein L13p from H. salinarum. This suggests that Vng0487h acetylates a subunit of ribosomal protein, possibly L13p, in H. salinarum. During the present study, an efficient procedure was established to screen novel halophilic enzymes, and to predict and assess their functions.

Acetyltransferases↗

G-protein-coupled receptor domain overexpression in Halobacterium salinarum: long-range transmembrane interactions in heptahelical membrane proteins.

The aminergic alpha(2b)-adrenergic receptor (alpha(2b)-AR) third intracellular loop (alpha(2b)-AR 3i) mediates receptor subcellular compartmentalization and signal transduction processes via ligand-dependent interaction with G(i)- and G(o)- proteins. To understand the structural origins of these processes we engineered several lengths of alpha(2b)-AR 3i into the third intracellular loop of the proton pump bacteriorhodopsin (bR) and produced the fusion proteins in quantities suitable for physical studies. The fusion proteins were expressed in the Archaeon Halobacterium salinarum and purified. A highly expressed fusion protein was crystallized from bicelles and diffracted to low resolution on an in-house diffractometer. The bR-alpha(2b)-AR 3i(203-292) protein possessed a photocycle slightly perturbed from that of the wild-type bR. The first half of the fusion protein photocycle, correlated with proton release, is accelerated by a factor of 3, whereas the second half, correlated with proton uptake, is slightly slower than wild-type bR. In addition, there is a large decrease in the pK(a), (from 9.6 to 8.3) of the terminal proton release group in the unphotolyzed state of bR-alpha(2b)-AR 3i as deduced from the pH-dependence of the M-formation. Perturbation of a cytoplasmic loop has thus resulted in the perturbation of proton release at the extracellular surface. The current work indicates that long-range and highly coupled intramolecular interactions exist that are capable of "transducing" structural perturbations (e.g., signals) across the cellular membrane. This gene fusion approach may have general applicability for physical studies of G-protein-coupled receptor domains in the context of the bR structural scaffold.

Amino Acid Sequence↗

Properties of a second sensory receptor protein in Halobacterium halobium phototaxis.

A second slow-cycling retinylidene protein, in addition to slow-cycling (sensory) rhodopsin (SR), can be bleached with hydroxylamine and regenerated with all-trans retinal in photosensory signaling Halobacterium halobium membranes. Flash photolysis shows this protein undergoes a photochemical reaction cycle characterized by photoconversion of its ground state (lambda max 480 nm) to a species with lambda max less than or equal to 360 nm, which thermally regenerates the 480-nm species with a t1/2 of 260 msec at 25 degrees C, under conditions in which SR photocycles at 650 msec in the same membranes. Mutants characterized with respect to their phototaxis behavior are identified which contain SR and the 480-nm pigment, the latter ranging from undetectable to a concentration equal to that of SR. Receptor mutants lacking all phototaxis sensitivity lack both of the photochemically reactive proteins. The mutant properties contribute to an accumulation of behavioral and spectroscopic evidence that the 480-nm pigment is a second sensory photoreceptor in H. halobium. NaDodSO4-polyacrylamide gel electrophoresis of [3H]retinal-labeled membrane proteins from the mutants indicates SR and the 480-nm pigment contain distinct chromophoric polypeptides differing in their migration rates. The data implicate polypeptides of 25,000 Mr and 23,000 Mr as retinal-binding polypeptides of SR and the 480-nm protein, respectively.

Bacterial Proteins↗

Identification of proteolipid from an extremely halophilic archaeon Halobacterium salinarum as an N,N'-dicyclohexyl-carbodiimide binding subunit of ATP synthase.

ATP synthesis in an extremely halophilic archaeon, Halobacterium salinarum, was inhibited by N-cyclohexyl-N'-[4-(dimethylamino)-alpha-naphthyl]carbodiimide (NCD-4), a fluorescent analog of N,N'-dicyclohexylcarbodiimide (DCCD). By tracing the fluorescent signal, a hydrophobic 8-kDa protein (proteolipid) was purified from the halobacterial membrane as one of the most DCCD-reactive proteins and its N-terminal amino acid sequence was determined. The gene encoding the proteolipid was found in the region upstream of the genes encoding the two major subunits of halobacterial A-type ATPase [K. Ihara and Y.Mukohata (1991) Arch. Biochem. Biophys. 286, 111-116]. Halobacterial proteolipid was more similar in size to the proteolipid of F-type ATPase than that of V-type ATPase. However, multiple amino acid sequence alignment of proteolipids showed a higher degree of relatedness between V-type and A-type ATPase proteolipids. Together with the recent finding of a triplicate proteolipid encoding gene from the methanogenic archaeon Methanococcus jannaschii [C. J. Bult et al. (1996) Science 273, 1058-1073], proteolipids from archaea seem to have diverse characteristics in comparison with those from eubacteria or from eukaryotes.

Adenosine Triphosphatases↗

Cyclosporin A sensitive peptidyl-prolyl cis-trans isomerase in a halophilic archaeum, Halobacterium cutirubrum.

A cyclophilin type peptidyl-prolyl cis-trans isomerase was purified from a halophilic archaeum, Halobacterium cutirubrum DSM 669. The activity increased with an increase in KCl concentration up to 4 M. Sensitivity to cyclosporin A was comparable to that of eukaryotic cyclophilin and was also affected by KCl. IC50 for Cyclosporin A was 1.5 x 10(-8) M in 2.9 M KCl but 1.4 x 10(-7) M in 1.4 M KCl. The apparent molecular weight was 31 K by SDS-PAGE and 22 K in 2.9 M KCl and 150 K in 0 M KCl by gel filtration chromatography. The N-terminal amino acid sequence (33 residues) sheared 4 completely and 5 highly conserved amino acid residues with other reported cyclophilin family PPIases.

Amino Acid Isomerases↗

Enhanced superoxide production by membrane vesicles from Halobacterium halobium in a hyposaline environment.

Membrane vesicles were prepared from the halophilic archaebacterium, Halobacterium halobium, which was grown either in medium containing 4 M NaCl or in a relatively hyposaline medium containing 1.25 M NaCl. Membrane vesicles prepared from bacteria grown in the lower salt environment consumed more oxygen, oxidized more NADH and generated more superoxide than vesicles prepared from cells grown in the normal 4 M NaCl containing medium. The enhanced respiratory activity of the membrane fragments obtained from the halophile which was grown and assayed in a hyposaline environment, along with the concomitant increased flux in superoxide, demonstrate a relation between an environmental perturbation and an altered electron transport activity.

Adaptation, Physiological↗

Characterization of chimeric heme-copper respiratory oxidases using subunits I of Escherichia coli cytochrome b o and Halobacterium salinarium cytochrome aa3.

We constructed chimeric enzymes with the Escherichia coli cytochrome bo and the Halobacterium salinarium cytochrome aa3 through recombinant DNA techniques and investigated their spectroscopic and biochemical properties. Although most of the chimeras could not retain hemes in the molecule, the chimeric enzyme containing helix VII of subunit I of the H. salinarium cytochrome aa3 showed the spectral properties similar to those of the native E. coli oxidase, suggesting that both the low-spin heme b and the high-spin heme o are associated with the chimeric subunit I. However, CuB was absent in the chimera. Helix VII of subunit I of the H. salinarium cytochrome aa3 is 70% similar to the counterpart of the E. coli cytochrome bo and further contains two invariant histidines which serve as the CuB ligands. These results indicate that helix VII must be arranged properly relative to helix VI which provides the third CuB ligand.

Amino Acid Sequence↗

Cloning, sequencing, and characterization of ribosomal protein and RNA polymerase genes from the region analogous to the alpha-operon of escherichia coli in halophilic archaea, halobacterium halobium.

A determination was made of the nucleotide sequence of the 3215-bp region of a ribosomal protein gene cluster (HS13, HS4, HS11, and HeL18), RNA polymerase (RNA poly D), and tRNA genes (tRNAser and tRNAarg) of halophilic Archaea Halobacterium halobium, which is analogous to the alpha-operon of Escherichia coli (tRNAser-HS13-HS4-HS11-RNA poly D-tRNAarg-HeL18). The seven-gene string was preceded by a pseudoknot-like structure similar to the proposed S4 ribosomal protein binding site of the alpha-operon mRNA leader in E. coli. Using an inducible expression system H. halobium HS4 was produced in large amounts in E. coli, and immunoblot analysis showed the S4 to constitute a 21-kDa polypeptide component of the ribosome. Analysis of the deduced amino acids sequence revealed that the HS13, HS4, and HS11 sequences including the RNA polymerase subunit are more similar to their eukaryotic than to their bacterial counterparts. HeL18, located downstream of the gene cluster analogous to the E. coli alpha-operon (S13-S11-S4-RNA poly D-L17), was similar to both the eukaryotic (eL18) and eubacterial ribosomal protein L15 located in the spc-operon, but not to L17 positioned as the terminal gene of the bacterial alpha-operon.

Amino Acid Sequence↗

Projection structure of halorhodopsin from Halobacterium halobium at 6 A resolution obtained by electron cryo-microscopy.

Two-dimensional crystals of halorhodopsin (HR), in space group p42(1)2 (a = 102 A) have been obtained using the overexpressing Halobacterium halobium strain D2. An HR membrane fraction with the same buoyant density as purple membrane (HR-PM) was obtained by homogenization and sucrose gradient purification and used for electron cryomicroscopic analysis. Electron micrographs and electron diffraction patterns of HR-PM were recorded at liquid nitrogen temperatures. The micrographs showed significant diffraction out to 9 A resolution optically and to 6 A after computer processing. By combining data from electron micrographs and electron diffraction patterns, a projection map of HR was calculated. The crystal form of the isolated HR consists of one membrane in which alternating halorhodopsin tetramers are oriented in opposite directions across the membrane. It is not known whether this occurs by misinsertion of some of the molecules in vivo, or by adventitious fusion at some point during isolation. The projected structure of the HR molecule to a resolution of 6A is almost identical to that found for bacteriorhodopsin (BR). This physical structural similarity thus complements the known sequence relatedness to BR.

Bacteriorhodopsins↗

Mechanism of photosensory adaptation in Halobacterium salinarium.

Phototaxis in Halobacterium salinarium is the result of an interplay of sensory rhodopsin excitation and adaptation to the stimulus background. Adaptation to orange light, received by sensory rhodopsin I was probed by measuring the behavioral response of cells to a step-like decrease in intensity. Cells were able to adapt to an intensity range of more than four orders of magnitude. The data were analysed on the basis of theoretical fluence rate response relationships calculated from the photocycle kinetics of the complex of sensory rhodopsin I with its transducer HtrI. Independent of the stimulus background, the cellular response was shown to be a function of the absolute number of photoreceptor complex molecules turned over by the light stimulus. Receptor deactivation was identified as the underlying mechanism of adaptation and was sufficient to account for the experimental results. We suggest that reversible methylation of the transducer protein HtrI provides the chemical mechanism of sensory adaptation in H. salinarium and also explains the different sensitivity of the cells to orange and UV light.

Adaptation, Physiological↗

Deletion analysis of the che operon in the archaeon Halobacterium salinarium.

Halobacterium salinarium is a chemo- and phototactic archaeon whose signal transduction pathway includes the classical two-component system made up of CheA and CheY. Deletion analysis of the che operon in H. salinarium has been undertaken. Following the removal of the entire operon, the importance of each of the four individual members, cheY, cheB, cheA, and the novel member cheJ, was evaluated by their replacement in combinations of three. The mutant strains were investigated for their motility, their chemo- and phototactic signalling, and the rotational bias of their flagella. Loss of cheA, cheY or cheB led to the complete loss of chemo- and phototaxis, whereas the absence of cheJ caused a reduction in chemo- and phototactic ability. Reverse swimming and counterclockwise rotation of the flagella required the presence of cheA and CheY. The wild-type 50:50 distribution of forward and reverse swimming was observed in the strain lacking cheB, whereas this distribution was perturbed to 88:12 in the strain lacking cheJ. These results are compared with the corresponding deletion strains in Escherichia coli and provide new insights into the eu- and archeabacterial flagellar switch.

Bacterial Proteins↗

A sparsomycin-resistant mutant of Halobacterium salinarium lacks a modification at nucleotide U2603 in the peptidyl transferase centre of 23 S rRNA.

Sparsomycin, a broad-spectrum antibiotic, acts at the peptidyl transferase centre of the ribosome, stabilizing peptidyl-tRNA binding at the P-site and weakening ternary complex binding. A sparsomycin-resistant mutant was isolated for the archaeon Halobacterium salinarium and shown to lack a post-transcriptional modification of U2603 (Escherichia coli numbering U2584), which is a universally conserved uridine base located within the peptidyl transferase loop of 23 S rRNA. This mutant also exhibited altered sensitivities to the peptidyl transferase antibiotics anisomycin, chloramphenicol and puromycin. Several lines of evidence indicate that the unmodified uridine base lies within the P-substrate site of the peptidyl transferase centre.

Anti-Bacterial Agents↗

In vivo and in vitro analysis of transcription of the L region from the Halobacterium salinarium phage phi H: definition of a repressor-enhancing gene.

The 12-kb L region of the Halobacterium salinarium phage phi H is able to replicate as a plasmid, conferring a certain immunity to the host cell. We show here that the whole region is utilised for transcription at one stage or another in the phage life cycle. The DNA segment between the lytic transcripts T4 and T1 is shown to be constitutively transcribed. The effects of transcription on immunity were investigated using transformation experiments with H. salinarium. In this way, we show in vivo that the immune transcript T9, which on its own has no influence on phage growth or immunity, has a co-operative effect on the phi H repressor. The immunity effects analysed are sufficient to account for the degree of immunity conferred by the L region.

Amino Acid Sequence↗

Temperature related alterations in the acidic alanine-rich "A" protein from the 50S ribosomal particle of the extreme halophile, Halobacterium cutirubrum.

50-S ribosomal subunits from the extreme halophilic bacterium, Halobacterium cutirubrum, contain an alanine-rich acidic "A" protein which resembles the L7--L12 multimer (Kaltschmidt and Wittmann, 1970) found in the 50-S ribosomal subunit of Escherichia coli cells. The protein contains 24 mole % alanine and is devoid of histidine, tryptophan and cysteine. Unlike E. coli which has two forms of the "A" protein distinguished solely by the acetylation state of the serine amino terminus. H. cutirubrum 50-S subunits contain only one unsubstituted form of the "A" protein in vivo. However, during purification of ribosomes from cells grown between 25 and 37 degrees C the latter "A" protein undergoes rapid, specific, in vitro enzymatic alteration at its carboxy-terminal end. When the halophile is grown in the temperature range of 40 to 42 degrees C the cleaving enzyme is not active and only one form of the "A" protein is found on the ribosomes.

Alanine↗

In vivo studies on the effects of immunity genes on early lytic transcription in the Halobacterium salinarium phage phi H.

We have studied in vivo the effects of putative immunity genes on the expression of an early lytic gene of the Halobacterium salinarium phage. phi H. We transformed an H. salinarium host with DNA coding for a putative repressor gene, the transcript of which has been designated T6. We show that, in vivo, this gene specifically shuts off production of the early lytic transcript T4. A construct carrying the DNA transcribed as T4, but without its putative repressor binding sequences, shows T4 transcription enhanced to a level comparable to that observed in lytic growth of mutant phages capable of growing on immune H. salinarium strains. This transcript is insensitive to the action of the T6 product. The product of this 'unrepressed' T4 transcript is able to complement in trans the repressed T4 on superinfecting phi H-sensitive phages, allowing these to grow on a strain containing the repressor gene. It has, however, no effect on the production of repressor. We also mapped the start and end points of two other transcripts, T9 and T10, which are expressed only in the lysogenic state by cells immune to superinfection by phage, cloned the coding DNA and used it to transform H. salinarium. This DNA, though transcribed by the transformants, has no detectable effect on the cells, which remain susceptible to phage infection.

Bacteriophages↗

Organization and nucleotide sequence of ten ribosomal protein genes from the region equivalent to the spectinomycin operon in the archaebacterium Halobacterium marismortui.

The nucleotide sequence has been determined of a 4700 bp region from a ribosomal protein gene cluster of Halobacterium marismortui (Haloarcula marismortui), which is equivalent to part of the spectinomycin operon of Escherichia coli. The genes were localized on the recombinant lambda EMBL3 clone PP*7, which also contains several other ribosomal protein genes from the DNA region in H. marismortui equivalent to the linked S10/spc operon. The genes analysed encode ten ribosomal proteins, namely HmaL5, HmaS14, HmaS8, HmaL6, HL5, HL24, HmaL18, HmaS5, HmaL30 and HmaL15. The gene organization of the archaebacterial cluster is similar to that in eubacteria but has two additional genes, namely those encoding HL5 and HL24, which were identified as extra proteins that are apparently not present in E. coli. These correspond to the gene products of orfd and orfe in Methanococcus vannielii and also have eukaryotic counterparts.

Amino Acid Sequence↗

Genome organization in Halobacterium halobium: a 70 kb island of more (AT) rich DNA in the chromosome.

The more A + T rich fractionated component (FII DNA) of the Halobacterium halobium genome constitutes one third of the total DNA and upon isolation consists of covalently closed circular DNA (pHH1 and minor cccDNA) and nonsupercoiled sequences. We have investigated the physical organization of the non cccDNA in FII by a chromosome walk using one copy of the halobacterial insertion element ISH1 as a start point. This chromosome walk led to the isolation of 160 kb of chromosomal DNA containing 70 kb of FII DNA covalently linked to more G + C rich sequences (FI DNA). Copies of three previously characterized insertion elements (ISH1, ISH2, and ISH26) as well as at least 10 other repeated sequences are clustered within this chromosomal FII DNA "island". Unique sequences are found in the FI DNA flanking the FII DNA island as well as in 40 kb of FI DNA surrounding the bacterio-opsin gene. The presence of pHH1 in H. halobium and closely related species correlates with the occurrence of the characterized chromosomal FII DNA island. Halophilic purple membrane producing isolates YC81819-9, GN101, SB3 and GRA lack pHH1 and the 70 kb FII DNA, but contain all of the FI DNA sequences tested. We propose that pHH1 and this chromosomal FII DNA are characteristic genomic components of H. halobium and closely related species, and, that the 70 kb FII DNA might represent a large insertion in the chromosome of H. halobium and closely related species. The conservation of both FI and FII DNA sequences can be used for strain classification and determination of evolutionary relationships among halo-bacteria.

Base Sequence↗

Sequence of 5S ribosomal RNA gene regions and their products in the archaebacterium Halobacterium volcanii.

We show that the archaebacterium Halobacterium volcanii contains two ribosomal RNA gene clusters, in which genes for individual rRNAs lie in the order 16S-23S-5S. We have cloned the 5S rRNA genes of both clusters and present sequences of the two 5S rRNA genes and their 5' and 3' flanking regions, as well as the sequence of H. volcanii 5S rRNA. We show that a gene for a tRNACys lies downstream from one, but not the other, 5S rRNA gene, and have obtained evidence that this tRNA gene is transcribed in vivo. We discuss regions of potential secondary structure which may be involved in transcription termination. We note regions of unexpected flanking sequence conversation both within H. volcanii 5S rRNA gene regions, and between them and the corresponding 5S rRNA gene region of H. cutirubrum (Hui and Dennis 1984).

Base Sequence↗