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Halococcus morrhuae: a sulfated heteropolysaccharide as the structural component of the bacterial cell wall.

The qualitative and quantitative composition of purifed cell wall of Halococcus morrhuae CCM 859 was determined. Glucose, mannose, galactose; glucuronic and galacturonic acids; glucosamine, galactosamine, gulosaminuronic acid; acetate, glycine and sulfate are found as major constituents. The amino sugars are N-acetylated. It was not possible to fractionate the cell wall in chemically different polymers. Evidence is presented that the major cell wall polymer of this strain is a complex heterolgycan which seems, like the peptidoglycan of most bacteria, to be responsible for the rigidity and stability of the cell wall. In addition it could be proved that this heteroglycan is sulfated and therefore differs considerably from previously described bacterial cell wall polymers.

Amino Sugars

Halosimplex yunnanense sp. nov., a novel haloarchaeon from an underground salt mine.

Strain J119T, a halophilic archaeon, was isolated from a salt mine sample collected in Yunnan Province, China. Cells are spherical (diameter 0.5-0.7 µm) or short‑rod‑shaped (0.4-0.5 × 0.7-0.8 µm), non‑motile, Gram‑stain‑negative, and can grow at 20-55°C (optimum 42°C), with NaCl tolerance ranging from 15% to 30% (w/v) (optimum 20%) and a pH growth range of 5.5-9.0 (optimum pH 7.0). Strain J119T's nearly complete 16S rRNA gene sequence (1,452 bp; accession MW736888.1) shows the highest sequence similarity (97.32%) to Halosimplex salinum YPL4T; this value is lower than the species boundary threshold of 98.65%. Its rpoB' gene (1,830 bp; NZ_JBTJEL000000000.1) shares the highest similarity (95.52%) with Halosimplex aquaticum XZYJT29T. Genomic analyses revealed that the average amino acid identity, average nucleotide identity and digital DNA-DNA hybridization values between strain J119T and strains YPL4T and XZYJT29T were 78.58%, 82.59%, 25.50% and 82.61%, 85.70%, 29.20%, respectively. The genomic DNA G + C content of strain J119T is 66.5%. Phenotypic, phylogenetic, and genome-based analyses suggest that strain J119T (= KCTC 4326T = MCCC 4K00178T) represents a novel species of the genus Halosimplex, for which the name Halosimplex yunnanense sp. nov. is proposed.

RNA, Ribosomal, 16S

Purification and properties of a dissimilatory nitrate reductase from Haloferax denitrificans.

A membrane-bound nitrate reductase (nitrite:(acceptor) oxidoreductase, EC 1.7.99.4) from the extremely halophilic bacterium Haloferax denitrificans was solubilized by incubating membranes in buffer lacking NaCl and purified by DEAE, hydroxylapatite, and Sepharose 6B gel filtration chromatography. The purified nitrate reductase reduced chlorate and was inhibited by azide and cyanide. Preincubating the enzyme with cyanide increased the extent of inhibition which in turn was intensified when dithionite was present. Although cyanide was a noncompetitive inhibitor with respect to nitrate, nitrate protected against inhibition. The enzyme, as isolated, was composed of two subunits (Mr 116,000 and 60,000) and behaved as a dimer during gel filtration (Mr 380,000). Unlike other halobacterial enzymes, this nitrate reductase was most active, as well as stable, in the absence of salt.

Cell Membrane

The N-terminal sequence of the ribosomal 'A' protein from two moderate halophiles, Vibrio costicola and an unidentified moderate (NRCC 11227).

The 'A' protein, equivalent to ribosomal protein EL7/L12 from Escherichia coli, has been isolated and purified from two moderate halophiles Vibrio costicola and NRCC 11227. The 'A' protein from V. costicola contained an N-terminal serine and separated into two forms on DEAE-cellulose and two-dimensional electrophoresis while the equivalent protein in NRCC 11227 contained an N-terminal alanine residue and was present in only one form. The amino acid composition and mobility on two-dimensional gels indicated these proteins were very similar to EL7/L12. The first 38 residues of the 'A' proteins were sequenced and compared to the equivalent protein from E. coli and the extreme halophile Halobacterium cutirubrum. The N-terminal region of the 'A' protein from both moderate halophiles showed substantial homology to EL 12 (75--80%) but no evidence of any homology to the equivalent protein from the extreme halophile. The ribosomal proteins equivalent to ES1A in E. coli were also isolated and their amino acid compositions determined.

Amino Acid Sequence

Three different but related gene clusters encoding gas vesicles in halophilic archaea.

We present an analysis of the chromosomal region comprising the gene cluster involved in gas vesicle (Vac) synthesis in Haloferax mediterranei (mc-vac-region) and Halobacterium salinarium (c-vac-region) and compare both of them to the plasmid located p-vac-region of H. salinarium. The p-vac-region of 9000 base-pairs (9 kb) is more related to mc-vac (9.4 kb) of Hf. mediterranei than it is to the c-vac-region (8.3 kb) present in the same cell. The Vac- species Hf. volcanii becomes Vac+ following transformation with a fragment containing the entire mc-vac-region. Also the p-vac-region transforms Hf. volcanii to a Vac+ phenotype, indicating that this gene cluster is sufficient for gas vesicle synthesis and does not depend on products of the c-vac-region. Each of these vac-regions contains, in addition to gvpA encoding the major gas vesicle protein, 13 open reading frames named gvpC through gvpO. Ten of these, gvpD through gvpM, are located upstream from gvpA in opposite orientation, while gvpC, gvpN and gvpO are found 3' to gvpA. The absolute requirement of gvpO for gas vesicle synthesis was demonstrated by transformation experiments. Northern analyses with RNA samples isolated during the growth cycle of Hf. mediterranei or of H. salinarium PHH4 revealed that the mc-gvpD or c-gvpD mRNAs occur similar to the respective gvpA mRNA in stationary growth phase, while gvpF-gvpM are transcribed mainly during logarithmic growth. S1-nuclease mapping was performed to determine the transcriptional start site of the gvpD mRNA. The distance between the two divergent start sites of gvpA and gvpD mRNA is 109 base-pairs in mc-vac and p-vac, while in the case of c-vac this distance is 22 base-pairs larger. The conservation of the various gvp products, characteristic features and their possible functions in gas vesicle synthesis are discussed.

Archaeal Proteins

Multi-omics association study of hexadecane degradation in haloarchaeal strain Halogranum rubrum RO2-11.

Haloarchaea with the capacity to degrade alkanes is promising to deal with petroleum pollution in hypersaline environments. However, only a limited number of haloarchaeal species are investigated, and their pathway and mechanism for alkane degradation remain unclear. In this study, Halogranum rubrum RO2-11, a haloarchaeal strain, verified the ability to degrade kerosene and hexadecane in 184 g/L NaCl, with 53% and 52% degradation rates after 9 and 4 days, respectively. Genome sequencing and gene annotation indicated that strain RO2-11 possesses a complete potential alkane-degrading pathway, of which alkane hydroxylases may include CYP450, AlmA, and LadA. Transcriptome and metabolome analyses revealed that the upregulation of related genes in TCA cycle, lysine biosynthesis, and acetylation may help improve hexadecane degradation. Additionally, an alternative degrading pathway of hexadecane based on dual-terminal β-oxidation may occur in strain RO2-11. It is likely to be the first report of alkane degradation by the genus Halogranum, which may be helpful for applications of oil-pollution bioremediation under high-salt conditions.

Alkanes

Chromophore configuration of pharaonis phoborhodopsin and its isomerization on photon absorption.

The configuration of the retinylidene chromophore in pharaonis phoborhodopsin (ppR) and its changes during the photoreaction cycle were investigated by means of a chromophore extraction method followed by HPLC analysis. The ppR has an all-trans chromophore, and unlike bacteriorhodopsin, it exhibits no dark isomerization of the chromophore. Irradiation of a ppR sample in the presence of 10 mM hydroxylamine, at which concentration a negligible amount of ppR was bleached, caused the formation of 90% 13-cis- and 10% all-trans-retinal oximes. Because the ppR sample under the continuous irradiation was a mixture containing original ppR, ppRM, and a small amount of ppRO, the above results showed that the chromophores of ppRM and ppRO are in a 13-cis form and an all-trans form, respectively. Therefore, the all-trans chromophore of ppR is isomerized to the 13-cis form on photon absorption, and it is thermally reisomerized to the all-trans form on the conversion process from ppRM to ppRO. The extracted retinal oximes from ppR and ppRO were mainly the 15-syn form, while that from ppRM was mainly the 15-anti form. This fact indicated that the attack of hydroxylamine on the chromophore is stereoselective owing to the unique structure of the chromophore binding site near the Schiff base region of the chromophore.

Archaeal Proteins

Sequence heterogeneity between the two genes encoding 16S rRNA from the halophilic archaebacterium Haloarcula marismortui.

The halophilic archaebacterium, Haloarcula marismortui, contains two nonadjacent ribosomal RNA operons, designated rrnA and rrnB, in its genome. The 16S rRNA genes within these operons are 1472 nucleotides in length and differ by nucleotide substitutions at 74 positions. The substitutions are not uniformly distributed but rather are localized within three domains of 16S rRNA; more than two-thirds of the differences occur within the domain bounded by nucleotides 508 and 823. This domain is known to be important for P site binding of aminoacylated tRNA and for 30-50S subunit association. Using S1 nuclease protection, it has been shown that the 16S rRNAs transcribed from both operons are equally represented in the functional 70S ribosome population. Comparison of these two H. marismortui sequences to the 16S gene sequences from related halophilic genera suggests that (i) in diverging genera, mutational differences in 16S gene sequences are not clustered but rather are more generally distributed throughout the length of the 16S sequence, and (ii) the rrnB sequence, particularly within the 508-823 domain, is more different from the out group sequences than is the rrnA sequence. Several possible explanations for the evolutionary origin and maintenance of this sequence heterogeneity within 16S rRNA of H. marismortui are discussed.

Base Sequence

Variable rRNA gene copies in extreme halobacteria.

Using PFG electrophoresis techniques, we have examined the organization of rRNA gene in halobacterium species. The results show that the organization of rRNA genes among closely related halobacteria is quite heterogeneous. This contrasts with the high degree of conservation of rRNA sequence (1). The possible mechanism of such rRNA gene amplification and its evolutionary implications are discussed.

DNA, Bacterial

Genomic organization of the halophilic archaeon Haloferax mediterranei: physical map of the chromosome.

Pulsed field gel electrophoresis (PFG) has been used to study the genomic organization of the halophilic archaeon Haloferax mediterranei. Analysis of the different genomic elements as well as the restriction patterns obtained with several endonucleases revealed that this microorganism has a circular chromosome of 2.9 Mb and, at least, three extrachromosomal elements of 490, 320 and 130 kb respectively. The complete physical map of the chromosome for the endonucleases PacI and BamHI has been constructed, and several BcII, BgIII and DraI restriction fragments have been aligned on these maps. The localization of heterologous and homologous genes on the physical map, including those for rRNA, lay the ground work for the construction of a genetic map.

Chromosomes, Bacterial

Reduction of nitrosubstituted aromatic compounds by the halophilic anaerobic eubacteria Haloanaerobium praevalens and Sporohalobacter marismortui.

The moderately halophilic, obligately anaerobic eubacteria Haloanaerobium praevalens DSM 2228 and Sporohalobacter marismortui ATCC 35420 are able to reduce a variety of nitrosubstituted aromatic compounds at a high rate to the corresponding amines. Compounds degraded included nitrobenzene, o-nitrophenol, m-nitrophenol, p-nitrophenol, nitroanilines, 2,4-dinitrophenol, and 2,4-dinitroaniline. Most of these compounds, when added at concentrations of 50 to 100 mg/liter, were completely transformed within 24 h, but at the highest concentrations growth rates were somewhat lowered. Growth of H. praevalens in the presence of 14C-labeled p-nitrophenol showed that the compound was not incorporated by the cells or degraded to acid-volatile compounds.

Anaerobiosis

The halophilic archaeon Halogranum roseipondis sp. nov. is susceptible to a virus carrying an exceptionally high number of viral tRNA genes.

UNLABELLED: Archaea constitute a diverse group of organisms, many of which inhabit extreme environments, such as haloarchaea that dominate hypersaline ecosystems, like solar salterns. Sampling of solar salterns and other hypersaline environments has resulted in numerous haloarchaeal isolates, including 3 classified and 27 uncharacterized Halogranum species. However, no complete genome has so far been reported for any member of this genus. Here, we present the first comprehensive study of Halogranum sp. SS5-1 isolated from a solar saltern in Samut Sakhon, Thailand. Hgn. SS5-1 is a pleomorphic, aerobic heterotroph that thrives in high salinity and moderate temperature and is capable of hydrolyzing starch. Its genome consists of a 3.6 Mbp chromosome and seven additional plasmids. Based on our phylogenetic analyses, which establish Hgn. SS5-1 as a distinct species, we propose that it will be classified as the novel species Halogranum roseipondis sp. nov. SS5-1T. Additionally, we report that Hgn. roseipondis sp. nov. SS5-1T is infected by Hagravirus capitaneum (HGTV-1), the only virus known to infect a Halogranum host. HGTV-1 exhibits a unique head-tailed morphology and encodes the largest archaeal virus double-stranded DNA genome known to date, including 34 tRNA-encoding genes. Codon usage analysis of the viral genome suggests partial alignment with host preferences, yet the abundance of viral tRNA genes hints at broader roles, potentially including roles in translation and host regulation. This study establishes Hgn. roseipondis and HGTV-1 as a novel virus-host system, opening avenues to explore infection dynamics and the roles of virus-encoded tRNA in archaea. IMPORTANCE: Archaea that thrive in high-salinity environments are key players in geochemical cycles and important contributors to ecosystem productivity. Despite their ecological significance and importance for the development of novel methodologies in synthetic biology, haloarchaea remain poorly studied. Further exploration of haloarchaea is required to obtain valuable information on the evolution of cellular complexity and the molecular mechanisms that allow cells to thrive in harsh environmental conditions. Here, we present the characterization of a novel archaeon, Halogranum roseipondis sp. SS5-1T, alongside the infection cycle of its associated virus, Hagravirus capitaneum. This tailed myovirus carries an extraordinary set of 34 viral tRNA genes, a feature that opens intriguing questions about virus-host interactions and translational control. Our findings lay the groundwork for future investigations into the expression and function of viral tRNAs in an archaeal model system, thereby opening a new frontier for studying archaeal translation and virus-driven modulation of host cellular processes.

Halobacteriaceae