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J Barbé

Publications and source records attributed to J Barbé.

At least 19 recordsLinked to original sources

Nucleotide sequence of the methoxyneurosporene dehydrogenase gene from Rhodobacter sphaeroides: comparison with other bacterial carotenoid dehydrogenases.

The nucleotide sequence of the 1794-bp fragment containing the crtD gene from Rhodobacter sphaeroides 2.4.1 encoding for methoxyneurosporene dehydrogenase has been determined. A 63% sequence identity was found when compared with the nucleotide sequence of the crtD gene from Rhodobacter capsulatus. A putative regulatory palindromic motif present in the crtD gene from R. capsulatus also exists in this gene from R. sphaeroides. The translated open reading frame of the crtD gene of R. sphaeroides has identified a polypeptide of 495 amino acids which shares a 56% sequence identity with the same CrtD protein of R. capsulatus. The N- and C-termini of these CrtD proteins present a high degree of similarity with the N- and C-termini of other carotenoid dehydrogenases including those encoded by crtI genes. This is in good agreement with the previously hypothesized homology between CrtI and CrtD proteins.

Amino Acid Sequence

Nucleotide sequence analysis and comparison of the lexA genes from Salmonella typhimurium, Erwinia carotovora, Pseudomonas aeruginosa and Pseudomonas putida.

The complete nucleotide sequences of the lexA genes from Salmonella typhimurium, Erwinia carotovora, Pseudomonas aeruginosa and Pseudomonas putida were determined; the DNA sequences of the lexA genes from these bacteria were 86%, 76%, 61% and 59% similar, respectively, to the Escherichia coli K12 gene. The predicted amino acid sequences of the S. typhimurium, E. carotovora and P. putida LexA proteins are 202 residues long whereas that of P. aeruginosa is 204. Two putative LexA repressor binding sites were localized upstream of each of the heterologous genes, the distance between them being 5 bp in S. typhimurium and E. carotovora, as in the lexA gene of E. coli, and 3 bp in P. putida and P. aeruginosa. The first lexA site present in the lexA operator of all five bacteria is very well conserved. However, the second lexA box is considerably more variable. The Ala-84--Gly-85 bond, at which the LexA repressor of E. coli is cleaved during the induction of the SOS response, is also found in the LexA proteins of S. typhimurium and E. carotovora. Likewise, the amino acids Ser-119 and Lys-156 are present in all of these three LexA repressors. These residues also exist in the LexA proteins of P. putida and P. aeruginosa, but they are displaced by 4 and 6 residues, respectively. Furthermore, the structure and sequence of the DNA-binding domain of the LexA repressor of E. coli are highly conserved in the S. typhimurium, E. carotovora, P. aeruginosa and P. putida LexA proteins.

Amino Acid Sequence

Spontaneous and reversible high-frequency frameshifts originating a phase transition in the carotenoid biosynthesis pathway of the phototrophic bacterium Rhodobacter sphaeroides 2.4.1.

The synthesis of carotenoids in strain 2.4.1 of the phototrophic bacterium Rhodobacter sphaeroides is spontaneously turned on and off at a high frequency (10(-5) per cell per generation) giving rise alternatively to red (wild type) and green (mutant) clones. The crtD gene is not functional in green mutants as a consequence of the spontaneous addition of a guanosine in a stretch of seven guanosines located in the 5'-terminal coding region of this gene originating a frameshift. All spontaneous wild-type revertants isolated from green mutants had recovered the crtD gene function by loss of one of these reiterated guanosines. The transition Crt(+)----Crt(-)----Crt+, is strain-dependent, since Crt+ clones were not detected in ethyl methane sulphonate (EMS)-induced CrtD- mutants of two other strains of R. sphaeroides (WS22 and RS630) which harbour a recombinant plasmid containing the crtD gene from a spontaneous CrtD- mutant of strain 2.4.1 of R. sphaeroides.

Amino Acid Sequence

The role of the excision and error-prone repair systems in mutagenesis by fluorinated quinolones in Salmonella typhimurium.

Patterns of reversion produced by ciprofloxacin, enoxacin and ofloxacin in Salmonella typhimurium strains carrying the hisG428 ochre mutation have been studied. These fluorinated quinolones produce a significant increase in reversion of this mutation, even when it is located on the chromosome. Nevertheless, reversion is higher when the hisG428 mutation is on the multicopy plasmid pAQ1 than when it is on the chromosome. Reversion of hisG428 induced by fluorinated quinolones is abolished both in a uvrB genetic background and in the absence of the plasmid pKM101. Therefore, mutagenesis produced by fluorinated quinolones in the Salmonella mutagenicity assay is significantly affected by both the excision repair and the error-prone repair systems. Furthermore, fluorinated quinolones are also detected as moderate mutagens with the base substitution hisG46 mutation when both repair systems are functional in the tester strain.

Ciprofloxacin

SOS system induction in Escherichia coli cells with distinct levels of ribonucleotide reductase activity.

The UV-mediated induction of recA and sfiA genes in Escherichia coli cells with distinct levels of dATP has been studied. Low levels of dATP were obtained by using either a temperature-sensitive ribonucleotide (RDP) reductase-deficient (nrdA) mutant or a wild-type strain treated with hydroxyurea. High pools of dATP were achieved by using a plasmid overproducing RDP reductase. The results obtained show that expression of the recA and sfiA genes was inhibited neither in the UV-irradiated nrdA mutant at 42 degrees C nor in the wild-type strain in the presence of hydroxyurea. Likewise, the increase of the dATP pool did not enhance recA and sfiA gene expression after UV irradiation. All these data suggest that the basal level of dATP is not a limiting factor in the process of induction of the SOS system in Escherichia coli.

Adenosine Triphosphate

Relationship between the functional regions of the RecA protein and ATP hydrolysis in UV-irradiated Escherichia coli cells.

The time course of the intracellular ATP concentration in several UV-irradiated RecA protease constitutive (Cptc) mutants of E. coli has been studied. All Cptc mutants harboring a mutation in region 3 of the RecA protein (including amino acid residues 298-301) increased ATP after UV damage but without any subsequent decrease. Nevertheless, these mutants induced the SOS response after UV irradiation. Likewise, truncated RecA proteins lacking region 3 are also unable to carry out massive ATP hydrolysis in UV-irradiated cells. On the other hand, mutants in region 1 (including amino acids 25-39) or 2 (amino acids 157-184) of the RecA protein showed an increase in ATP concentration during the first 20 min following UV irradiation, which dropped afterwards to the basal level. All these data indicate that region 3 of the RecA protein must be involved in the ATP hydrolysis process. Furthermore, a relationship between the quantity of the UV-mediated ATP produced and the strength of the different RecA Cptc mutants has also been found. Accordingly, both lexA71::Tn5 and null lexA mutants of E. coli only show a cellular ATP increase after UV irradiation when containing a multicopy plasmid carrying either a wild-type lexA or a lexA (Ind-) gene.

Adenosine Triphosphate

Expression of nrdA and nrdB genes of Escherichia coli is decreased under anaerobiosis.

By using plasmid nrdA-lacZ, nrdAB-lacZ, and nrdB-lacZ gene fusions, the expression of nrdA and nrdB genes of Escherichia coli under anaerobiosis has been studied. The results obtained show that cells of E. coli growing under either fermentative or nitrate respiring conditions present a lower basal level of both nrdA and nrdB genes transcription from the nrdPA promoter. On the other hand, transcription of the nrdB gene from the internal nrdPB promoter was not affected by the absence of oxygen. Moreover, the DNA damage-mediated inducing factor of these nrd genes was the same in both aerobic and anaerobic cultures.

Aerobiosis

Expression of the recA gene of Escherichia coli in several species of gram-negative bacteria.

A broad host range plasmid containing an operon fusion between the recA and lacZ genes of Escherichia coli was introduced into various aerobic and facultative gram-negative bacteria-30 species belonging to 20 different genera - to study the expression of the recA gene after DNA damage. These included species of the families Enterobacteriaceae, Pseudomonadaceae. Rhizobiaceae, Vibrionaceae, Neisseriaceae, Rhodospirillaceae and Azotobacteraceae. Results obtained show that all bacteria tested, except Xanthomonas campestris and those of the genus Rhodobacter, are able to repress and induce the recA gene of E. coli in the absence and in the presence of DNA damage, respectively. All these data indicate that the SOS system is present in bacterial species of several families and that the LexA-binding site must be very conserved in them.

DNA Damage

One-step cloning system for isolation of bacterial lexA-like genes.

A system to isolate lexA-like genes of bacteria directly was developed. It is based upon the fact that the presence of a lexA(Def) mutation is lethal to SulA+ cells of Escherichia coli. This system is composed of a SulA- LexA(Def) HsdR- strain and a lexA-conditional killer vector (plasmid pUA165) carrying the wild-type sulA gene of E. coli and a polylinker in which foreign DNA may be inserted. By using this method, the lexA-like genes of Salmonella typhimurium, Erwinia carotovora, Pseudomonas aeruginosa, and P. putida were cloned. We also found that the LexA repressor of S. typhimurium presented the highest affinity for the SOS boxes of E. coli in vivo, whereas the LexA protein of P. aeruginosa had the lowest. Likewise, all of these LexA repressors were cleaved by the activated RecA protein of E. coli after DNA damage. Furthermore, under high-stringency conditions, the lexA gene of E. coli hybridized with the lexA genes of S. typhimurium and E. carotovora but not with those of P. aeruginosa and P. putida.

Bacterial Proteins

Induction of the alkA gene of Escherichia coli in gram-negative bacteria.

A broad-host-range plasmid containing a fusion of the alkA and lacZ genes of Escherichia coli was introduced into various aerobic and facultative gram-negative bacteria--33 species belonging to 19 genera--to study the induction of expression of the alkA gene by alkylating agents. The bacteria included species of the families Enterobacteriaceae, Pseudomonadaceae, Rhizobiaceae, Vibrionaceae, Neisseriaceae, Rhodospirillaceae, and Azotobacteraceae. Results obtained show that all bacteria tested, except Aeromonas hydrophila, Agrobacterium tumefaciens, Hafnia alvei, Rhizobium meliloti, Salmonella enteritidis, Xanthomonas campestris, and those of the genus Rhodobacter, are able to induce the alkA gene of E. coli in the presence of N-methyl-N'-nitro-N-nitrosoguanidine. All these data indicate that the adaptive response to alkylating agents is present in bacterial species of several families and that the Ada box sequence must be widely conserved.

Alkylating Agents

Cyclic AMP stimulates transcription of the structural gene of the outer-membrane protein OmpA of Escherichia coli.

To analyze the effect of cyclic AMP on the expression of the ompA gene of Escherichia coli, encoding the outer-membrane protein OmpA, a fusion between this gene and the lacZ gene was constructed in vitro by using a promoter-probe plasmid. The results obtained indicated that the presence of glucose in the culture medium decreased the transcription of the ompA gene. Likewise, cya and crp mutants exhibited lower levels of ompA gene expression than the wild-type strain. Furthermore, the addition of cyclic AMP increased the expression of the ompA gene in both cya and wild-type strains but not in a crp mutant. All these data show that the cyclic AMP receptor protein-cyclic AMP complex positively modulates ompA transcription in E. coli K-12.

Bacterial Outer Membrane Proteins

Measurement of in vivo expression of nrdA and nrdB genes of Escherichia coli by using lacZ gene fusions.

By using a promoter probe plasmid we investigated expression of the linked nrdA and nrdB genes coding for the two different subunits of the ribonucleoside diphosphate reductase enzyme of Escherichia coli. For this reason, nrdA-lacZ, nrdAB-lacZ and nrdB-lacZ fusions were constructed. Results obtained indicate that the nrdB gene has a promoter from which it may be transcribed independently of the nrdA gene. Furthermore, the nrdB gene may also be transcribed from the nrdA promoter. The expression of the nrdB gene is about 14-fold higher from the nrdA promoter than from its own promoter. The induction of both nrdA and nrdB genes by DNA-damaging agents in the wild-type strain as well as in several SOS mutants was also studied; nrdA gene expression was increased by these treatments in RecA+, RecA-, and LexAInd- strains, although in both RecA- and LexAInd- mutants the nrdA gene expression was considerably lower than that in RecA+ cells. nrdB gene expression was stimulated by DNA damage only when its transcription was from the nrdA promoter, but there was no effect when nrdB was transcribed from its own promoter. In addition, the basal level of nrdA-lacZ and nrdAB-lacZ fusions was reduced in strains containing either RecA- and LexAInd- mutations or a multicopy plasmid carrying the lexA+ gene, whereas the presence of a LexA51Def mutation increased the constitutive expression of both fusions. On the contrary, the basal level of the nrdB-lacZ fusion remained constant in all these strains. Together these results indicate that induction of the SOS response enhances expression of the nrd genes from the nrdA promoter.

Base Sequence

Induction of SOS genes in Escherichia coli and mutagenesis in Salmonella typhimurium by fluoroquinolones.

The induction of several SOS genes of Escherichia coli by fluoroquinolones has been studied. Three different SOS gene fusions (recA::lacZ, umuC::lacZ and sulA::lacZ) have been introduced into the E.coli MC1061 strain to study the induction of these SOS genes in the same genetic background. Data on the basal level of expression of these fusions, as well as their induction by mitomycin C and N-methyl-N'-nitro-N-nitrosoguanidine are presented. Using these strains, we have found that, like nalidixic acid, ofloxacin, enoxacin and ciprofloxacin are strong inducers of the SOS genes tested, umuC gene expression being the highest. Furthermore, fluoroquinolones produced a significant increase in the reversion of the base substitution hisG428 mutation in the TA102 Salmonella tester strain, while no effect was found in strains TA98, TA100, TA1537 and TA1535. These data indicate that the error-prone repair pathway can participate in mutagenesis induced by fluoroquinolones and also that the damage produced by these chemicals may be similar to that produced by nalidixic acid.

DNA Repair

Distribution of insertion sequence IS200 in Salmonella and Shigella.

Two DNA probes for the detection of insertion sequence IS200 by either Southern blotting or colony hybridization were constructed. One of the probes is a 300 bp EcoRI-HindIII fragment of IS200 cloned onto pBluescript KS(+); the other is a tail-to-tail dimer of the same fragment cloned onto pUC19. A survey of the presence of IS200 among enteric bacteria revealed that more than 90% of the pathogenic or food-poisoning isolates of Salmonella spp. examined contained one or more copies of insertion sequence IS200, with the exception of the subgenus I serovar S. agona in which IS200 is not found. Although insertion sequence IS200 was first considered a Salmonella-specific element, it also exists in many isolates of Shigella sonnei and Shigella flexneri, but not in Shigella dysenteriae.

Base Sequence

[Comparative study with digoxigenin and biotin markers for the DNA probe identification of genes coding for type TEM beta-lactamases].

We have tested two non-isotopic labels: digoxigenin--11-dUTP and biotin-7-dATP for the detection of TEM-1 beta-lactamase gene with a TEM-1 probe by DNA:DNA hybridisation (using spot technique). The use of radioactive labels is inconvenient and not available to all the clinical bacteriological laboratories. The strains tested were: 16 on file (14 carriers of different types of beta-lactamase) and 19 clinical isolated strains. Previously, the plasmid beta-lactamase of these strains had been identified by analytical isoelectric focusing. Using the probe labeled with digoxigenin-11-dUTP, the correlation between results obtained by DNA:DNA hybridisation and those by analytical isoelectric focusing was excellent, with no false positives; with the biotin--7-dATP labeled probe, reading was difficult and some false positives were observed.

Biotin