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Sequence diversity and genomic organization of vomeronasal receptor genes in the mouse.

The vomeronasal system of mice is thought to be specialized in the detection of pheromones. Two multigene families have been identified that encode proteins with seven putative transmembrane domains and that are expressed selectively in subsets of neurons of the vomeronasal organ. The products of these vomeronasal receptor (Vr) genes are regarded as candidate pheromone receptors. Little is known about their genomic organization and sequence diversity, and only five sequences of mouse V1r coding regions are publicly available. Here, we have begun to characterize systematically the V1r repertoire in the mouse. We isolated 107 bacterial artificial chromosomes (BACs) containing V1r genes from a 129 mouse library. Hybridization experiments indicate that at least 107 V1r-like sequences reside on these BACs. We assembled most of the BACs into six contigs, of which one major contig and one minor contig were characterized in detail. The major contig is 630-860 kb long, encompasses a cluster of 21-48 V1r genes, and contains marker D6Mit227. Sequencing of the coding regions was facilitated by the absence of introns. We determined the sequence of the coding region of 25 possibly functional V1r genes and seven pseudogenes. The functional V1rs can be arranged into three groups; V1rs of one group are novel and substantially divergent from the other V1rs. The genomic and sequence information described here should be useful in defining the biological function of these receptors.

Animals↗

Induction of SIV capsid-specific CTL and mucosal sIgA in mice immunized with a recombinant S. typhimurium aroA mutant.

We have developed a new expression system based on the E. coli groEL promoter. The suicide vector constructed (called APC vector) allows simultaneous attenuation of a Salmonella strain by disruption of the coding sequence for aroA and stable integration of a gene into the bacterial chromosome. High-level expression of antigen is achieved after Salmonella is taken up by macrophages, a major antigen processing cell of the host. The chloramphenicol acetyltransferase (CAT) and the simian immunodeficiency virus capsid (p27gag) genes were cloned downstream of the groEL promoter and expressed within S. typhimurium. By measuring CAT activity, we showed that the groEL promoter was up-regulated during infection of the J774 macrophage line. The immune response to SIV capsid was assessed in Balb/c mice given one oral dose of vaccine. A local mucosal secretory IgA response against SIV capsid was detected but no systemic antibody response to the same antigen. A systemic CTL response was detected as early as 28 days to as late as 70 days post-immunization. CTL activity was MHC restricted (H-2d) and was mediated by CD3+, CD8+, CD4- T-lymphocytes. These results indicate that with only one oral dose of recombinant Salmonella using the APC vector, a systemic CTL response and a mucosal secretory response against the SIV capsid antigen are elicited in a mouse model.

Animals↗

Two elements of the rat prolactin 5' flanking region are required for its regulation by estrogen and glucocorticoids.

The 5'-flanking region of the rat prolactin gene contains two DNase I-hypersensitive (HS) sites. We used gene transfer experiments to determine the nucleotide (nt) sequences within and around these two HS sites that may contain the information necessary for regulation of prolactin gene expression by estrogens and glucocorticoids. A chimeric gene construct (pPRL.CAT) was prepared by covalently linking the sequence of the rat prolactin gene to the bacterial chloramphenicol acetyltransferase-coding gene, cat. Rat GH3 cells were transfected with pPRL.CAT and six mutants that possess deletions within and around the two HS sites. Incubation of such transfectants with estrogen or dexamethasone indicated the existence of two functionally important elements within the 5'-flanking region of the rat prolactin gene. The element required for estrogen up-regulation of the prolactin gene is located between nt residues -1530 through -1950. The glucocorticoid down-regulatory element is located between nt -200 and +75.

Animals↗

Intranasal administration of an Escherichia coli-expressed codon-optimized rotavirus VP6 protein induces protection in mice.

We are developing rotavirus vaccines based on the VP6 protein of the human G1P[8] [corrected] [J. Virol. 73 (1999) 7574] CJN strain of rotavirus. One prototype candidate consisting of MBP::VP6::His6, a chimeric protein of maltose-binding protein, VP6 and hexahistidine, was expressed mainly as truncated polypeptides in Escherichia coli BL21(DE3) cells. A possible reason for this extensive truncation is the high frequencies of rare bacterial codons within the rotavirus VP6 gene. Expression of truncated recombinant VP6 was found to be reduced, and expression of complete VP6 protein was simultaneously increased, when the protein was expressed in Rosetta(DE3)pLacI E. coli cells that contain increased amounts of transfer RNAs for a selection of rare codons. The same observation was made when a synthetic codon-optimized CJN-VP6 gene was expressed in E. coli BL21 or Rosetta cells. To increase protein recovery, recombinant E. coli cells were treated with 8M urea. Denatured, full-length MBP::VP6::His6 protein was then purified and used for intranasal vaccination of BALB/c mice (2 doses administered with E. coli heat-labile toxin LT(R192G) as adjuvant). Following oral challenge with the G3P[16] [corrected] [J. Virol. 76 (2002) 560] EDIM strain of murine rotavirus, protection levels against fecal rotavirus shedding were comparable (P>0.05) between groups of mice immunized with denatured codon-optimized or native (not codon-optimized) immunogen with values ranging from 87 to 99%. These protection levels were also comparable to those found after immunization with non-denatured CJN VP6. Thus, expression of complete rotavirus VP6 protein was greatly enhanced by codon optimization, and the protection elicited was not affected by denaturation of recombinant VP6.

Administration, Intranasal↗

Human growth hormone receptor: cloning and expression of the full-length complementary DNA after site-directed inactivation of a cryptic bacterial promoter.

Growth hormone receptor is a cytokine-type receptor which is required for normal somatic growth and for numerous metabolic processes. Its complementary DNA (cDNA) has been isolated in various species leading to intensive studies to elucidate the mechanism of action of the growth hormone. However, serious difficulties have been reported in cloning in Escherichia coli, an intact full-length human cDNA. In this study, the cDNA is shown to contain a cryptic bacterial promoter driving inappropriate expression of a part of human growth hormone (hGH) receptor which is toxic for E. coli growth. Identification of this promoter and its inactivation by changing only one nucleotide led us to obtain stable bacterial clones containing a high copy number of full-length coding sequences. This molecular clone was used in a baculovirus/insect cell system to produce large amounts of glycosylated recombinant receptor. Binding studies with 125I-labelled hGH revealed an affinity constant of 2.8 x 10(9) M(-1), similar to that reported for the native liver receptor. This report described a general method of cloning which could be applied to similar unclonable cDNA fragments.

Animals↗

Bisulfite induces tandem double CC-->TT mutations in double-stranded DNA. 2. Kinetics of cytosine deamination.

Deamination of cytosine to uracil in double-stranded DNA (ds DNA) by sodium bisulfite has been monitored with a sensitive genetic assay. In this system, reversion of a mutant in the lacZ alpha gene coding sequence of bacteriophage M13mp2 C141 was detected by employing an ung- bacterial strain defective in the enzyme uracil glycosylase. Within the 4-base target, it is possible to measure the rates of induction of C-->T, C-->A, C-->G, and CC-->TT mutations in DNA that has been incubated at physiological temperature and pH and then transfected into ung+ and ung- E. coli cells, respectively, for amplification and detection of the mutation. For concentrations of bisulfite from 1 to 50 mM, the reversion frequency in ung- cells increased linearly with time of incubation. The most interesting features of the bisulfite reaction were as follow: (1) Mutations were reduced 5-fold in ung+ cells, indicating ung is involved in repair of bisulfite-treated transforming DNA. (2) Sequencing of 157 revertants revealed that C-->T and tandem CC-->TT transition mutations comprised 100% of the mutations scored. (3) A unique finding was that, at the highest concentrations and longest incubation times, almost every mutant obtained in ds DNA exposed to bisulfite was found to be a CC-->TT tandem double mutation. (4) The high frequency of tandem double mutants is inconsistent with two random, independent mutational events and, coupled with the observed ung dependence, lends support to the concept of catalytic deamination, wherein bisulfite induces deamination in contiguous cytosines by a concerted mechanism.(ABSTRACT TRUNCATED AT 250 WORDS)

Bacteriophage M13↗

Natural selection promotes divergence of transferrin among salmonid species.

Transferrin is an iron-binding protein that plays an important role in iron metabolism and resistance to bacterial infection in a variety of organisms. A comparison of transferrin coding sequences from four salmonid species shows that the rate of evolution at nonsynonymous sites is significantly higher than the rate at synonymous sites, suggesting that positive natural selection for new alleles has played an important role in the evolution of transferrin in some salmon species. We hypothesize that the selective agent driving rapid divergence is interactions between host transferrin and the iron-scavenging proteins of pathogenic bacteria.

Alleles↗

Carcinogen-mediated co-activation of two independent genes in Chinese hamster cells.

Following carcinogen treatment, elevated expression levels of dihydrofolate reductase (dhfr) were measured by labeling cells with fluorescent methotrexate which binds to this enzyme. Fractionation of carcinogen-treated, Simian virus 40 (SV40)-transformed Chinese hamster embryo cells (C060) into subpopulations differing in their levels of dhfr expression revealed co-expression, at enhanced levels, of dhfr and SV40 T antigen in the same cells. The increased expression of dhfr was amplification independent, while the T antigen coding sequences were amplified. The co-expression of dhfr and the bacterial chloramphenicol acetyltransferase gene linked to the early SV40 regulatory region was measured in CHO cells stably transformed by pSV2CAT-SVgpt (CC24). Both these sequences were expressed at higher levels in treated cells and the elevated expression levels were observed in the same subpopulation of cells, although no increase in their gene copy number was detected. The concomitant activation of enhanced expression of two independent genes in the same cells suggests that cellular factors governing gene expression are activated in the carcinogen-treated cells. The implications of these findings to cellular control mechanisms and to the carcinogenic process are discussed.

Animals↗

The yeast HPR1 gene has a functional role in transcriptional elongation that uncovers a novel source of genome instability.

The yeast HPR1 gene plays an important role in genome stability, as indicated by the observation that hpr1 mutants have high frequencies of DNA repeat recombination and chromosome loss. Here we report that HPR1 is required for transcriptional elongation. Transcription driven from constitutive and regulated yeast promoters cannot elongate through the bacterial lacZ coding region in hpr1Delta cells, but progresses efficiently through other sequences such as yeast PHO5. We show that HPR1 is not required for transcription activation and that the previously reported effects of hpr1Delta on the activation of different promoters is a consequence of the incapacity of hpr1Delta cells to elongate transcription through lacZ, used as reporter. Transcriptional defects are also observed in yeast DNA sequences of hpr1Delta cells in the presence of the transcription elongation inhibitor 6-azauracil. In all cases, the blockage of transcription elongation in hpr1Delta is associated with both the high frequency of deletions and the increase in plasmid instability that we report here. Therefore, in addition to the identification of a new element involved in transcriptional elongation, our work provides evidence for a new source of genomic instability.

Chromosome Deletion↗

Analysis of the rolC promoter region involved in somatic embryogenesis-related activation in carrot cell cultures.

In cell cultures of carrot (Daucus carota L.), somatic embryogenesis can be induced by transferring cells from a medium containing 2,4-dichlorophenoxyacetic acid (2,4-D) to one devoid of 2,4-D. Previous analysis of transgenic carrot cells containing the 5' non-coding sequence of the Ri plasmid rolC and a structural gene for bacterial beta-glucuronidase (uidA) has shown that the chimeric gene is actively expressed after induction of somatic embryogenesis. In this study, we demonstrate that activation of the rolC promoter is dependent on the process of embryo development but not on the duration of the cell culture in 2,4-D-free medium. We also analyzed the cis region of the rolC promoter that is responsible for somatic embryogenesis-related activation (SERA), namely relatively low beta-glucuronidase (GUS) activity in calli and proembryogenic masses (PEM) and high GUS activity in heart- and torpedo-stage embryos. When the -255-bp region of the rolC gene was used, SERA was retained. Internal deletions within this -255-bp region did not alter SERA by the rolC promoter. Furthermore, when a rolC promoter fragment (-848 to -94 bp) was fused to the cauliflower mosaic virus (CaMV) 35S core region (-90 to +6 bp), it conferred relatively low GUS activity in calli and PEM but high GUS activity in heart and torpedo embryos. When -848 to -255-bp or -255- to -94-bp fragments of the rolC promoter were fused to the same CaMV 35S core region, GUS activity patterns were not related to somatic embryogenesis. These results suggest that the combination of several regulatory regions in the rolC promoter may be required for SERA in carrot cell cultures.

Base Sequence↗

A novel calmodulin-binding protein functions as a negative regulator of osmotic stress tolerance in Arabidopsis thaliana seedlings.

A clone for a novel Arabidopsisthaliana calmodulin (CaM)-binding protein of 25 kDa (AtCaMBP25) has been isolated by using a radiolabelled CaM probe to screen a cDNA expression library derived from A. thaliana cell suspension cultures challenged with osmotic stress. The deduced amino acid sequence of AtCaMBP25 contains putative nuclear localization sequences and shares significant degree of similarity with hypothetical plant proteins only. Fusion of the AtCaMBP25 coding sequence to reporter genes targets the hybrid protein to the nucleus. Bacterially expressed AtCaMBP25 binds, in a calcium-dependent manner, to a canonical CaM but not to a less conserved isoform of the calcium sensor. AtCaMBP25 is encoded by a single-copy gene, whose expression is induced in Arabidopsis seedlings exposed to dehydration, low temperature or high salinity. Transgenic plants overexpressing AtCaMBP25 exhibits an increased sensitivity to both ionic (NaCl) and non-ionic (mannitol) osmotic stress during seed germination and seedling growth. By contrast, transgenic lines expressing antisense AtCaMBP25 are significantly more tolerant to mannitol and NaCl stresses than the wild type. Thus, the AtCaMBP25 gene functions as a negative effector of osmotic stress tolerance and likely participates in stress signal transduction pathways.

Adaptation, Physiological↗

Plant glutamine synthetase complements a glnA mutation in Escherichia coli.

A glutamine synthetase gene from alfalfa (Medicago sativa) has been expressed in Escherichia coli after fusion of bacterial transcription and translation signals to a complete alfalfa glutamine synthetase coding sequence. Synthesis of the alfalfa glutamine synthetase enzyme in Escherichia coli was demonstrated by functional genetic complementation of a glutamine synthetase-deficient mutant and by immunoblotting analysis. These results should facilitate protein engineering and structure-function analysis of the plant enzyme.

Base Sequence↗

Genetic characterization of general transcription factors TFIIF and TFIIB of Homo sapiens sapiens.

Analysis of loci GTF2F1 and GTF2B, encoding Rap 74 (a subunit of TFIIF) and TFIIB, respectively, showed that they are present in a single copy in the human genome and are localized at 19p13.3 and 1p22, respectively. By using as probe a cDNA for Rap 30 (the other subunit of TFIIF), we localized the GTF2F2 locus to 13q14; the same probe also detected a cross-hybridizing sequence at 4q31 whose functional importance remains to be elucidated. These data and those previously published by our group demonstrate that genes coding for class II general transcription factors with reported sequence similarity to bacterial sigma proteins are scattered in different regions of the human genome, with no evidence of clustering. This dispersion and the identification of homologs of both TBP and TFIIB in Archaea suggest an early evolutionary origin of the general transcription apparatus of contemporary eukaryotes.

Animals↗

'Two-component' ethylene signaling in Arabidopsis.

The Arabidopsis ETR1 gene codes for an ethylene hormone receptor that has striking sequence similarity with bacterial two-component regulators. This finding predicts that the ETR1 receptor transduces the ethylene signal through the phosphotransfer mechanisms established for a number of the bacterial regulators. To test this hypothesis, we have performed in vitro assays for ETR1 autokinase activity as well as for transfer of phosphate to the ETR1 receiver. So far, we have not detected either of these activities. Another question we are focusing on is the identity of protein substrates of the ETR1 receptor. Using the yeast two-hybrid system, we have obtained several clones to be subsequently characterized as potential interactors with ETR1.

Arabidopsis↗

Phosphatidylinositol-specific phospholipase C of Bacillus cereus: cloning, sequencing, and relationship to other phospholipases.

The phosphatidylinositol (PI)-specific phospholipase C (PLC) of Bacillus cereus was cloned into Escherichia coli by using monoclonal antibody probes raised against the purified protein. The enzyme is specific for hydrolysis of the membrane lipid PI and PI-glycan-containing membrane anchors, which are important structural components of one class of membrane proteins. The protein expressed in E. coli comigrated with B. cereus PI-PLC in sodium dodecyl sulfate-polyacrylamide gel electrophoresis, as detected by immunoblotting, and conferred PI-PLC activity on the host. This enzyme activity was inhibited by PI-PLC-specific monoclonal antibodies. The nucleotide sequence of the PI-PLC gene suggests that this secreted bacterial protein is synthesized as a larger precursor with a 31-amino-acid N-terminal extension to the mature enzyme of 298 amino acids. From analysis of coding and flanking sequences of the gene, we conclude that the PI-PLC gene does not reside next to the gene cluster of the other two secreted phospholipases C on the bacterial chromosome. The deduced amino acid sequence of the B. cereus PI-PLC contains a stretch of significant similarity to the glycosylphosphatidylinositol-specific PLC of Trypanosoma brucei. The conserved peptide is proposed to play a role in the function of these enzymes.

Amino Acid Sequence↗

[Structural organization and mechanisms of mobility of the gene cassette coding for resistance to antibiotics and bacterial virulence factors].

The review is focussed on two types of gene cassettes which are significant in bacterial variability. The first type are cassettes with antibiotic resistance genes; these are the smallest mobile genetic elements including a gene (most commonly an antibiotic resistance gene) and a short sequence acting as a recombination site. Sometimes these cassettes contain genes not responsible for antibiotic resistance but their functions are not yet known. The second type contains large clusters of genes coding for bacterial virulence factors. They were termed "pathogenicity islands" due to their difference in the percentage of G-C pairs in comparison with bacterial chromosomes, in which they are contained. The structural organization and mechanisms of mobility of various types of gene cassettes are discussed.

Bacteria↗

Cloning and characterization of hOGG1, a human homolog of the OGG1 gene of Saccharomyces cerevisiae.

The OGG1 gene of Saccharomyces cerevisiae encodes a DNA glycosylase activity that is a functional analog of the Fpg protein from Escherichia coli and excises 7,8-dihydro-8-oxoguanine (8-oxoG) from damaged DNA. The repair of this ubiquitous kind of oxidative damage is essential to prevent mutations both in bacteria and in yeast. A human cDNA clone carrying an ORF displaying homology to the yeast protein was identified. The predicted protein has 345 amino acids and a molecular mass of 39 kDa. This protein shares a 38% sequence identity with the yeast Ogg1 protein, adding this novel human gene product to the growing family of enzymes that the repair of oxidatively damaged bases and are related to the E. coli endonuclease III. Northern blot analysis indicates that this gene, localized to chromosome 3p25, is ubiquitously expressed in human tissues. The cloned coding sequence was expressed in an E. coli strain that carried a disrupted fpg gene, the bacterial functional analog of OGG1. Cell-free extracts from these cultures displayed a specific lyase activity on duplex DNA that carried an 8-oxoG/C base pair. The products of the reaction are consistent with an enzymatic activity like the one displayed by the yeast Ogg1. Analysis of the substrate specificity reveals a very strong preference for DNA fragments harboring 8-oxoG/C base pairs. The pattern of specificity correlates well with the one found for the yeast enzyme. Moreover, when the human coding sequence was expressed in a yeast strain mutant in OGG1 it was able to complement the spontaneous mutator phenotype. These results make this novel gene (hOGG1) a strong candidate for the human homolog of the yeast OGG1 and suggest an important role of its product in the protection of the genome from the mutagenic effects of the oxidatively damaged purines.

Amino Acid Sequence↗

Assessment of whole genome amplification-induced bias through high-throughput, massively parallel whole genome sequencing.

BACKGROUND: Whole genome amplification is an increasingly common technique through which minute amounts of DNA can be multiplied to generate quantities suitable for genetic testing and analysis. Questions of amplification-induced error and template bias generated by these methods have previously been addressed through either small scale (SNPs) or large scale (CGH array, FISH) methodologies. Here we utilized whole genome sequencing to assess amplification-induced bias in both coding and non-coding regions of two bacterial genomes. Halobacterium species NRC-1 DNA and Campylobacter jejuni were amplified by several common, commercially available protocols: multiple displacement amplification, primer extension pre-amplification and degenerate oligonucleotide primed PCR. The amplification-induced bias of each method was assessed by sequencing both genomes in their entirety using the 454 Sequencing System technology and comparing the results with those obtained from unamplified controls. RESULTS: All amplification methodologies induced statistically significant bias relative to the unamplified control. For the Halobacterium species NRC-1 genome, assessed at 100 base resolution, the D-statistics from GenomiPhi-amplified material were 119 times greater than those from unamplified material, 164.0 times greater for Repli-G, 165.0 times greater for PEP-PCR and 252.0 times greater than the unamplified controls for DOP-PCR. For Campylobacter jejuni, also analyzed at 100 base resolution, the D-statistics from GenomiPhi-amplified material were 15 times greater than those from unamplified material, 19.8 times greater for Repli-G, 61.8 times greater for PEP-PCR and 220.5 times greater than the unamplified controls for DOP-PCR. CONCLUSION: Of the amplification methodologies examined in this paper, the multiple displacement amplification products generated the least bias, and produced significantly higher yields of amplified DNA.

Bias↗