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[Mechanisms of efflux of a substrate accumulated by the lactose permease of Escherichia coli: theoretical and experimental study].

At the steady-state of accumulation of intracellular lactose by the beta-galactoside permease of Escherichia coli, the rate of efflux of the substrate is equal to its rate of influx. An original experimental method and a mathematical processing of the experimental data are proposed to evaluate the relative involvements of the permease-mediated pathway and of the diffusion component in this efflux. The method consists of inducing the lac operon of the bacteria, and then of removing the inducer and allowing the cells to grow further. The permease content and the membrane surface of diffusion are thus varying independently in such a "de-induction" experiment, along which lactose uptake has been monitored at different times. The analysis of the experimental data show that, under conditions of maximal induction, over 95% of the efflux passes through the energized permease. The relevant parameters of the efflux of lactose have been computed and their values allow the prediction of most classical observations, as well as the prediction, never checked, that under physiological conditions, the higher the external substrate concentration, the higher the permease-mediated efflux, according to a saturation kinetics.

Biological Transport↗

Expression of the Escherichia coli lacZ gene on a plasmid vector in a cyanobacterium.

A biphasic plasmid vector was used to introduce the Escherichia coli K-12 lac operon into the unicellular cyanobacterium Agmenellum quadruplicatum PR-6. The PR-6 transformants expressed beta-galactosidase at nearly as high a level as did Escherichia coli transformants. In order to accomplish this, it was necessary to obtain PR-6 mutants that could be transformed by plasmids with unmodified recognition sites for the endogenous PR-6 restriction endonuclease Aqu I. These mutants were generated by a variation of the ectopic mutagenesis techniques that have been used in other naturally transforming bacteria. The ability to assay the expression of lacZ in PR-6 paves the way for the construction of gene fusions with various PR-6 promoters and quantitation of their expression under specific in vivo conditions.

Cyanobacteria↗

Anaerobic and leucine-dependent expression of a peptide transport gene in Salmonella typhimurium.

Using Mu d1-mediated lac operon fusions, we studied the transcriptional regulation of the genes encoding two peptide transport systems, the oligopeptide permease and the tripeptide permease. The four opp genes were found to be constitutively expressed, whereas the genes encoding the tripeptide permease are under a complex set of regulatory controls. Two loci, tppA and tppB, are required for tripeptide permease function. Locus tppA is shown to be a positive regulator of tppB expression. In addition, tppB expression is specifically induced by exogeneous leucine or by anaerobiosis. Anaerobic induction of tppB is independent of the fnr gene product which is required for the anaerobic expression of several respiratory enzymes. Thus, there must be at least two distinct pathways for the anaerobic regulation of gene expression.

Anaerobiosis↗

Antisense PNA effects in Escherichia coli are limited by the outer-membrane LPS layer.

Antisense peptide nucleic acids (PNAs) can inhibit Escherichia coli gene expression and cell growth through sequence-specific RNA binding, and this opens possibilities for novel anti-infective agents and tools for microbial functional genomics. However, the cellular effects of PNAs are limited relative to effects in cell extracts, presumably because of cell barrier components such as the outer-membrane lipopolysaccharide (LPS) layer or drug efflux pumps, both of which function to exclude antibiotics and other foreign molecules. To evaluate the importance of such cellular factors on PNA effects, the authors developed a positive assay for antisense inhibition by targeting the lac operon repressor and compared PNA susceptibilities in mutant and wild-type E. coli by assessing lacZ induction. Strains with defective LPS (AS19 and D22) were more permeable to the antibiotic nitrocefin and more susceptible to PNA than the wild-type. Also, PNA potency was improved in wild-type cells grown in the presence of certain cell-wall-permeabilizing agents. In contrast, the activities of the Acr and Emr drug efflux pumps were not found to affect PNA susceptibility. The results show that the LPS layer is a major barrier against cell entry, but PNAs that can enter E. coli are likely to remain active inside cells.

Bacterial Proteins↗

Transgalactosylation activity of ebg beta-galactosidase synthesizes allolactose from lactose.

ebg enzyme, the second beta-galactosidase of Escherichia coli, does not normally convert lactose into an inducer of the lac operon. We previously reported the existence of a mutant ebg enzyme that does make such an inducer in vivo (Rolseth et al., J. Bacteriol. 142:1036-1039, 1980). Here I report that the mutant enzyme makes inducer from lactose in vitro and that the inducer is allolactose. Allolactose is made from lactose by direct transgalactosylation at a rate that is 8 to 10% of the rate of lactose hydrolysis. Galactose is also transferred to glucose free in solution, but the resulting indirect transgalactosylation products are not allolactose or lactose. The ability to efficiently synthesize allolactose is a general property of class IV mutant ebg enzymes, whereas other classes of ebg mutant enzymes are unable to synthesize allolactose efficiently. The evolutionary implications of this new function are discussed.

Enzyme Induction↗

Lac repressor-operator interaction: DNA length dependence.

The interaction of the E. coli lac operon repressor with its operator DNA has been directly examined as a function of the length of operator-containing DNA. The apparent bimolecular association rate constants were calculated as ka = (kd/KD), where the dissociation equilibrium constant, KD and the dissociation rate constant, kd, were measured by nitrocellulose filter adsorption assays. The values obtained for the overall association rate constants are compared with theoretical association rate curves for specific mechanisms. Association of the repressor with short operator containing DNA fragments (less than 70 base pairs) occurs at rates expected of three-dimensional diffusion. Our data also imply that at longer DNA lengths a combination of three-dimensional diffusion with one-dimensional sliding along with hopping and/or intersegment transfer must be involved to facilitate the repressor operator association.

Base Composition↗

Isolation and characterization of pyrimidine mutants of Salmonella typhimurium altered in expression of pyrC, pyrD, and pyrE.

Parental strains of Salmonella typhimurium having a specific pyr gene (pyrC, pyrD, or pyrE) fused to the structural genes of the lac operon through the specialized transducing phage Mu dl (ApRlac) were used to construct thermostable derivatives for purposes of conducting a genetic and biochemical characterization of the individual pyr genes. The direction of transcription of each pyr gene in relation to the current linkage map was defined with both pyrC and pyrE being transcribed counterclockwise and pyrD exhibiting clockwise transcription. Mutants displaying increased pyr gene expression were isolated employing a genetic strategy which is of general applicability. Among the mutants, only one isolate was found to possess a mutation which was unlinked to the specific pyr gene under study; the other isolates harbored linked mutations which were inferred to be cis-acting. Additional studies demonstrated that in conditions of severe pyrimidine limitation, further derepression could still occur in the mutant strains.

Alleles↗

[Regulation of beta-galactosidase synthesis in Escherichia coli by exogenous cyclic 3',5'-adenosine monophosphate].

The effect of cyclic 3',5'-adenosine monophosphate (cAMP) on the rate of beta-galactosidase biosynthesis was studied in the cells of Escherichia coli M-17 growing in MPB and mineral media with glucose and maltose, i.e. under the conditions of various catabolite repression, as well as upon lac-operon induction by isopropyl-beta-D-galactopyranoside (IPGP). The stimulating action of exogenous cAMP was found only in a medium with salts and glucose. The induction by IPGP was highest during the growth in a medium with glucose and maltose. When the medium contained IPGP, cAMP accelerated the enzyme synthesis in all media, but only at the early growth phases, while cAMP eliminated the effect of IPGP at the stationary phase of growth. The regulation of beta-galactosidase biosynthesis by cAMP demonstrated for the first time that this effect depended on the physiological state of E. coli: the expression of catabolite-sensitive E. coli genes was subject to both positive and negative regulation in one and the same inducible system. The effect exerted by cAMP depended on the nature of a carbon source in the growth medium.

Cyclic AMP↗

Discontinuous synthesis of lac messenger ribonucleic acid in a mutant of Escherichia coli with a new lac promoter.

A mutant of Escherichia coli with a new promoter for the lac operon exhibits dramatic discontinuities in the synthesis of lac messenger ribonucleic acid after induction. These discontinuities immediately precede similar discontinuities in the synthesis of beta-galactosidase. The discontinuous synthesis of beta-galactosidase persists after addition of rifampin.

Enzyme Induction↗

[Tuning of expression level of the genes of interest located in the bacterial chromosome].

The new method of construction of the set of E. coli clones, differing in the promoter strength upstream the gene of interest, has been developed and tested using native E. coli MG 1655 lacZ gene as the reporter. This method includes the construction of the promoter-carrying DNA fragment obtained by PCR with consensus P(tac) as a template and the primers that lead to randomization of 4 central nucleotides in the promoter "-35"-region, linking the obtained fragments with the selective marker (Cm(R)) followed by Red-driven integration of the resulted DNA fragments directly in E. coli MG1655 chromosome instead the native lacI-gene and promoter/operator region of lac-operon. Due to direct determination of LacZ-activity in the independently obtained clones-integrants, we have found 14 new promoters (from 44 = 256 possible variants) that differ in their strength up to 100 fold (LacZ-activity in the corresponding strains smoothly varies from 10(2) for the weakest tested promoter up to 10(4) Miller U detected for the initial P(tac)). Sequencing of obtained promoters revealed that randomization of three positions in the "-35"-region is sufficient to obtain representative promoter library that would decrease the total number of potential promoter variants from 256 up to 64. It seems probable that exploiting of the developed method leading to one-step construction the library of clones with varied expression of gene/operon of interest could be useful tool in the modem metabolic engineering for optimization of genes expression.

Chromosomes, Bacterial↗

CEDIA, a new homogeneous immunoassay system.

Genetic engineering of beta-galactosidase (EC 3.2.1.23) has led to the development of a new homogeneous assay system, CEDIA. The Z gene of the lac operon of Escherichia coli encodes a large enzymatically inactive polypeptide that spontaneously aggregates and folds to form active beta-galactosidase. Using recombinant DNA techniques, we have been able to engineer beta-galactosidase protein into a large polypeptide (an enzyme acceptor, EA) and a small polypeptide (an enzyme donor, ED). The EAs and EDs are both enzymatically inactive, but spontaneously associate to form enzymatically active tetramers. In the assay, hapten or analyte is attached to an ED, and an analyte-specific antibody is used to inhibit the spontaneous assembly of active enzyme. Analyte in a patient's serum competes with the analyte in the analyte-ED conjugate for antibody, modulating the amount of beta-galactosidase formed. The signal generated by enzyme substrates is directly proportional to the analyte concentrations in the patient's serum. We describe quick (5-15 min) colorimetric tests for digoxin, requiring no serum pretreatments or predilutions and suitable for use with centrifugal and random-access analyzers.

Amino Acid Sequence↗

Chromosomal supercoiling in Escherichia coli.

The Escherichia coli chromosome is compacted into 40-50 negatively supercoiled domains. It has been proposed that these domains differ in superhelical density. Here, we present evidence that this is probably not the case. A modified Tn10 transposable element was inserted at a number of locations around the E. coli chromosome. This element, mTn10-plac-lacZ+, contains the lac operon promoter, plac, whose activity increases with increasing superhelical density, fused to a lacZ+ reporter gene. Although mTn10-plac-lacZ+ fusion expression varies as much as approximately threefold at different insertion sites, the relative levels of expression from these elements are unaffected by replacing plac with the gyrA promoter, pgyrA, which has a reciprocal response to changes in superhelical density. Importantly, topoisomerase mutations and coumermycin, which inhibits DNA gyrase activity, alter mTn10-plac-lacZ+ and mTn10-pgyrA-lacZ+ fusion expression in expected ways, showing that the elements remain responsive to supercoiling and that topoisomerase activity is required for maintaining superhelical density. Fusion expression is not affected by anaerobic growth or osmotic shock, two physiological conditions thought to alter supercoiling. The approximately threefold difference in mTn10-plac-lacZ+ and mTn10-pgyrA-lacZ+ fusion expression observed at different sites may be explained by regional differences in chromosomal copy number that arise from bidirectional replication. Together, these results strongly suggest that the E. coli chromosomal domains do not differ in functional superhelical density.

Anaerobiosis↗

Isolation and nucleotide sequencing of lactose carrier mutants that transport maltose.

The wild-type lactose carrier of Escherichia coli has a poor ability to transport the disaccharide maltose. However, it is possible to select lactose carrier mutants that have an enhanced ability to transport maltose by growing E. coli cells on maltose minimal plates in the presence of isopropyl thiogalactoside (an inducer of the lac operon). We have utilized this approach to isolate 18 independent lactose permease mutants that transport maltose. The relevant DNA sequences have been determined, and all of the mutations were found to be single base pair changes either at triplet 177 or at triplet 236. The nucleotide changes replace alanine-177 with valine or threonine, or tyrosine-236 with phenylalanine, asparagine, serine, or histidine. Transport experiments indicate that all of the mutants have faster maltose transport compared with the wild-type strain. Position 177 mutants retain the ability to transport galactosides, such as lactose and melibiose, at rates similar to the rate of the wild-type strain. In contrast, the position 236 mutants are markedly defective in the ability to transport galactosides. With regard to secondary structure, alanine-177 and tyrosine-236 are located on adjacent hydrophobic segments of the lactose carrier that are predicted to span the membrane. Thus, the results of this study indicate that the substrate recognition site of the lactose carrier is located within the plane of the lipid bilayer. In addition, a tertiary structure model is proposed that suggests how certain transmembrane segments might be localized relative to one another.

Base Sequence↗

Investigating autocatalytic gene expression systems through mechanistic modeling.

A structured model of gene expression, which incorporates the stochastic behavior of cellular processes, was developed to examine the "all-or-none" phenomenon observed in autocatalytic systems (e.g. the lac operon). Autocatalytic expression systems typically have the genes encoding the inducer transport proteins controlled by internal inducer levels, so that transport of the inducer increases production of the transport protein. The model was able to predict the unique behaviors of autocatalytic expression systems that have been experimentally observed and provided valuable insight into the role of population heterogeneity in these systems. The simulations substantiate the importance of stochastic processes on induction of gene expression in autocatalytic systems. The simulation results show that the all-or-none phenomenon is governed largely by random cellular events, and that population-averaged variations in gene expression are due to changes in the frequency of full gene induction in individual cells rather than to uniform variations in gene expression across the entire population. In addition, the model shows how concentrations of inducer too low to induce expression in uninduced cells can maintain induction in pre-induced cultures. A comparison of induction behaviors from an autocatalytic system and a system having constitutive synthesis of the transport protein showed that transport protein levels must be decoupled from inducer control to achieve homogeneous expression of a gene of interest in all cells of a culture.

Biological Transport↗

Rec dependence of mu transposition from P22-transduced fragments.

Derivatives of bacteriophage Mu carrying a lac operon and a selectable drug resistance element (Mu d phages) are frequently used tools of bacterial genetics. Mu d prophages used in this way can be treated as transposons, in that the inserted material can be transduced from one strain to another by general transducing phages, such as P1 and P22. When a Mu d prophage is transduced into a new recipient by P1 or P22, the Mu d element can transpose from the transduced fragment into the bacterial chromosome. Transposition of the Mu d element from a P22-transduced fragment shows several striking differences from transposition of a Mu d genome injected by a Mu virion. First, the frequency of transposition from a transduced fragment is greatly enhanced by a P22 helper genome. Second, transposition requires the host recA, B, and C functions. Transposition of Mu following injection by a Mu virion is rec independent. While the basis of these observations is not understood, we suggest that the Mu X protein, a 65-kilodalton protein injected by a Mu virion and required for Mu transposition, may not be packaged by P22. We suggest that the effects seen reflect the behavior of a Mu genome in the absence of the X protein.

Bacteriophage mu↗

Cellular proteins homologous to the viral yes gene product.

We raised antibodies in rabbits against the amino-terminal portion of the viral yes protein produced in bacteria with the use of an expression vector based on the lac operon. The anti-yes serum thus obtained precipitated P90gag-yes from Yamaguchi 73 virus-transformed chicken embryo fibroblasts, and this immunoprecipitation was blocked by the purified antigen. The anti-yes serum did not recognize viral src, fps, or fgr proteins. Affinity-purified anti-yes immunoglobulin G (IgG) precipitated two proteins of 59 and 62 kilodaltons from lysates of normal chicken embryo fibroblasts. Two-dimensional tryptic peptide mapping showed that these proteins are closely related to P90gag-yes and that they are different from pp60c-src. Similar to P90gag-yes, the 59- and 62-kilodalton proteins were phosphorylated exclusively on tyrosine in an in vitro kinase reaction, whereas in vivo they were phosphorylated on serine and, to a lesser extent, on tyrosine as well. Expression of the 59- and 62-kilodalton proteins, determined by the immune complex kinase assay, was relatively high in brain, retina, kidney, and liver. The presence in normal chicken embryo fibroblasts and in chicken kidney of two transcripts, 3.7 and 3.9 kilobases in length, that hybridize with a yes-specific DNA probe, as well as the two proteins recognized by anti-yes IgG, suggests either differential splicing of cellular yes gene transcripts or the existence of another yes-related gene.

Animals↗

[Structure of a recombination site in the transducing bacteriophage lambda plac5 DNA].

A recombination site in the transducing bacteriophage lambda plac5 DNA has been structurally elucidated. Comparison of primary structures of E. coli lac-operon (distal end of lacZ gene, Z-Y spacer, and proximal end of lacY gene) described earlier with corresponding segments of bacteriophages lambda CI857 and lambda plac 5-2 DNAs sequenced in this paper showed that the bacterial DNA insert ends immediately after Z-Y spacer, just before the initiating triplet ATG of lacY gene. It thus follows that in contrast to the earlier conception, the insert does not seem to include any part of lacY gene. The recombination sites in both phage and bacterial DNA contain structurally homological segments about 20 b. p. long (crossover region), with two extra basepairs in the bacterial DNA (AT in the sense-strand). We suppose that the very dinucleotide plays a substantial role in initiation of recombinational event: causing formation of a nonperfect heteroduplex structure, it determines the T-A internucleotide bond to be endonucleolytically cut (crossover point) followed by exonucleolytic elimination of the extra links (AT) and reciprocal strand exchange. The second recombination site in lambda plac5 DNA has been localized by us within lacI gene as being close to the HindII site (nucleotides 854 to 859 of the gene). The structures of the two regions of site-specific recombination may shed light upon mechanisms of the phage abnormal excision leading to formation of transducing phages.

Bacteriophage lambda↗

Association of RNA polymerase having increased Km for ATP and UTP with hyperexpression of the pyrB and pyrE genes of Salmonella typhimurium.

We investigated the transcription kinetics of RNA polymerase from an rpoBC mutant of Salmonella typhimurium which showed highly elevated, constitutive expression of the pyrB and pyrE genes as well as an increased cellular pool of UTP. When bacterial cultures containing an F' lac+ episome were induced for lac operon expression, the first active molecules of beta-galactosidase were formed with a delay of 73 +/- 3 s in rpo+ cells. The corresponding time was 104 to 125 s for cells carrying the rpoBC allele, indicating that this mutation causes a reduced RNA chain growth rate. In vitro the purified mutant RNA polymerase elongated transcripts of both T7 DNA and synthetic templates more slowly than the parental enzyme at a given concentration of nucleoside triphosphates. This defect was found to result from four- to sixfold-higher Km values for the saturation of the elongation site by ATP and UTP. The saturation kinetics of the RNA chain initiation step also seemed to be affected. The maximal elongation rate and Km for GTP and CTP were less influenced by the rpoBC mutation. Open complex formation at the promoters of T7 DNA and termination of the 7,100-nucleotide transcript showed no significant difference between the parental and mutant enzymes. Together with the phenotype of the rpoBC mutant, these results indicate that expression of pyrB and pyrE is regulated by the mRNA chain growth rate, which is controlled by the cellular UTP pool. The rate of gene expression is high when the saturation of RNA polymerase with UTP is low and vice versa.

Adenosine Triphosphate↗