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G Wegrzyn

Publications and source records attributed to G Wegrzyn.

At least 55 records · Page 3Linked to original sources

DnaA-mediated regulation of phage lambda-derived replicons in the absence of pR and Cro function.

Bacteriophage lambda-derived replicons can replicate in Escherichia coli cells as plasmids. In the control of replication of these plasmids, an important role was ascribed to the lambda Cro repressor autoregulatory loop. However, the oR/pR-cro-tR-cII' region could be replaced by the ptetA promoter under the control of the TetR repressor, producing plasmid pTClambda. Here, we demonstrate that stable maintenance of pTClambda depends on the host DnaA function because deletion of one of DnaA-binding sequences present in pTClambda resulted in a decrease in the plasmid (pTClambda) copy number and poor maintenance of pTClambda in E. coli. Moreover, in contrast to the replication of the wild-type lambda plasmid, previously found to be positively regulated by DnaA (acting on a relaxed DnaA box situated immediately downstream of the pR promoter), the replication of pTC plasmids (devoid of pR) was found to be negatively regulated by DnaA. Contrary to wild-type lambda plasmids, in cells harboring lambda cro[temperature-sensitive (ts)] or pTClambda (but not pTClambda) plasmid, the lambda replication complex was heat shock resistant; this complex, however, disassembled after inactivation of DnaA function. This disassembly was blocked by DNA gyrase inhibitors. According to our model outlined previously, we propose that the heat shock resistance of the replication complex of lambdacro- plasmids depends on the interaction of the DNA-bound DnaA protein with the DNA-bound lambda replication complex. The replication complex-DnaA-lambda DNA structure may be directly related to the role of DnaA as the Cro-replacing negative regulator of lambdacro- plasmid replication.

Bacterial Proteins↗

Rapid degradation of polyadenylated oop RNA.

The oop RNA is a short (77 nucleotides (nt)) transcript encoded by bacteriophage lambda which acts as an antisense RNA for lambda cII gene expression. Recently we demonstrated that oop RNA is specifically polyadenylated at its 3' end by poly(A) polymerase I (PAP I), the pcnB gene product. Here we demonstrate that the half life of oop RNA is 3 times longer in the pcnB mutant relative to the pcnB+ host, indicating that polyadenylation of this transcript causes its accelerated degradation. Although it was proposed that polyadenylation of RNAs in bacteria leads to their enhanced degradation, in most cases stabilization of these molecules was observed only when other mutations (pnp, rnb and rne) were present in the pcnB- strain. Therefore it seems that oop RNA may serve as a very useful model in further studies on molecular mechanisms of RNA polyadenylation and degradation in bacteria. Analysis of oop RNA and its degradation product isolated from Escherichia coli cells suggests that both polyadenylated and non-modified oop transcripts can act as antisense RNA.

Bacterial Proteins↗

Replication of lambda plasmid DNA in the Escherichia coli cell cycle.

The Cro repressor autoregulatory loop has long been considered the main regulatory process in controlling lambda plasmid replication initiation in Escherichia coli. However, we found recently that lambda plasmids can be maintained at a constant copy number in the absence of Cro function. Here we demonstrate that shortly after inactivation of the Cro repressor, the synthesis of lambda plasmid DNA increases significantly but is then stabilized at a level similar to that observed in the presence of the Cro function. We found that replication initiation of lambda plasmids carrying a functional cro gene proceeds randomly in the host cell cycle, but in the absence of Cro function the replication initiation of lambda plasmid DNA appears to be cell cycle dependent. The host DnaA protein appears to be at least one of the factors involved in the cell-cycle-specific control of lambda cro- plasmid replication. Therefore, it seems that the lambda cro- plasmid may serve as an amazingly simple model for studies on the regulation of DNA replication in the cell cycle.

Bacterial Proteins↗

Random inheritance of the replication complex by one of two daughter lambda plasmid copies after a replication round in Escherichia coli.

There are two pathways for replication of plasmids derived from bacteriophage lambda (so-called lambda plasmids) in Escherichia coli. One pathway is based on the assembly of the new replication complex at ori lambda, and the second requires activity of the replication complex inherited by one of two daughter plasmid copies after each replication round. Although these two replication pathways proceed at the same time in the host cell, we previously found conditions for specific elimination of the pathway based on the assembly of the new replication complex; thus, replication is restricted to that carried out by the heritable replication complex. These conditions are (i) the relaxed response to amino acid starvation and (ii) temperature upshift of the culture of cells harboring the lambda crotsPts1 plasmid. Here we asked whether the replication complex is inherited randomly by one of two daughter plasmid copies or whether the inheritance is preferred by one particular copy, that containing the parental DNA r strand or that bearing the l strand. We performed density shift experiments which allowed us to separate plasmid DNA molecules replicated by the heritable replication complex from those devoid of the replication complex and therefore not able to replicate. Then, [3H]thymidine-labelled plasmid DNA strands were separated and hybridized to membrane-bound ssDNA containing a fragment of either the r or l strand of lambda DNA. We found roughly equal efficiency of hybridization to both r and l strands in all experimental systems used. Therefore, we conclude that the lambda replication complex is randomly inherited by one of two daughter plasmid copies rather than preferentially inherited by either the copy carrying the parental r strand or that containing the l strand.

Bacteriophage lambda↗

Polyadenylation of oop RNA in the regulation of bacteriophage lambda development.

We have shown that Escherichia coli pcnB mutants are lysogenized by bacteriophage lambda with lower efficiency as compared to the pcnB+ strains. Our genetic analysis revealed that expression of the lambda cII gene is decreased in the pcnB mutants. However, using various lacZ fusions we demonstrated that neither activities of pL and pR promoters nor transcription termination at tR1 were significantly impaired in the pcnB- host. On the other hand, we found that oop RNA, an antisense RNA for cII expression, is involved in this regulation. Primer protection experiments revealed that oop RNA was polyadenylated and that this polyadenylation was impaired in the pcnB mutant. We found that the oop RNA was more abundant in the pcnB mutant than in the pcnB+ strain. Furthermore, we showed that activity of the pO promoter was not stimulated in the pcnB mutant. Such findings indicated that degradation of oop RNA in the pcnB strain was slower because of inefficient polyadenylation, which could lead to more effective inhibition of cII expression by the antisense oop RNA, resulting in less efficient lysogenization of the host. The oop RNA was found previously to play a role in phage lambda development only under conditions of overproduction of this transcript. Here we demonstrate for the first time, the physiological function of oop RNA in lambda development, confirming that this short transcript plays an important role in the negative regulation of cII gene expression during lambda infection. Moreover, polyadenylation of oop RNA is one of very few known examples of specific RNA polyadenylation by PAP I in prokaryotic cells and its role in gene expression regulation.

Bacterial Proteins↗

DnaA-stimulated transcriptional activation of orilambda: Escherichia coli RNA polymerase beta subunit as a transcriptional activator contact site.

We present evidence that Escherichia coli RNA polymerase beta subunit may be a transcriptional activator contact site. Stimulation of the activity of the pR promoter by DnaA protein is necessary for replication of plasmids derived from bacteriophage lambda. We found that DnaA activates the pR promoter in vitro. Particular mutations in the rpoB gene were able to suppress negative effects that certain dnaA mutations had on the replication of lambda plasmids; this suppression was allele-specific. When a potential DnaA-binding sequence located several base pairs downstream of the pR promoter was scrambled by in vitro mutagenesis, the pR promoter was no longer activated by DnaA both in vivo and in vitro. Therefore, we conclude that DnaA may contact the beta subunit of RNA polymerase during activation of the pR promoter. A new classification of prokaryotic transcriptional activators is proposed.

Bacterial Proteins↗

Replication regulation of ColE1-like plasmids in amino acid-starved Escherichia coli.

Differential replication of various ColE1-type plasmids in stringent (relA+) and relaxed (relA-) strains of Escherichia coli starved for particular amino acids was reported previously. A role for the plasmid-encoded Rom protein in the stringent control of ColE1 replication has also been demonstrated. Here we have studied the efficiency of replication of five ColE1-type plasmids in E. coli relA+ and relA- strains starved for five amino acids to find the differential replication of each plasmid in cells starved for each amino acid. The efficiency of replication was found to be in positive correlation with the homology between nucleotide sequences of particular loops of RNA I or RNA II and anticodon loops of tRNA molecules corresponding to the kind of the amino acid deprived. Efficient plasmid DNA replication was observed under conditions for which we predicted (on the basis of theoretical calculations) relatively strong interactions between tRNA molecules, expected to occur in high concentrations in an uncharged from, and RNA I or RNA II. When the theoretical possibility of the tRNA-RNA I or tRNA-RNA II interactions was very small, the observed plasmid DNA replication was negligible. Replication of ColE1-like plasmids during the stringent response was observed only in the absence of a functional rom gene. We observed plasmid replication in the amino acid-starved pcnB relA double mutant. We propose a model for regulation of ColE1 replication in the amino acid-starved E. coli cells based on interactions between uncharged tRNA molecules and RNA I or RNA II. During starvation for different amino acids, different kinds of uncharged tRNA molecules appear in cells (they are much more abundant, however, in relA- mutants than in relA+ hosts) leading to various efficiencies of replication initiation. The Rom protein may modulate the effect of tRNA(s) by enhancing RNAI-RNA II, but not tRNA-RNA I and tRNA-RNA II, interactions.

Amino Acids↗

Replication and maintenance of lambda plasmids devoid of the Cro repressor autoregulatory loop in Escherichia coli.

Plasmids derived from bacteriophage lambda are known as lambda plasmids. These plasmids contain the ori lambda region and lambda replication genes O and P. Typical lambda plasmids also contain the cro gene, the product of which is a repressor of the pR promoter when present at relatively high concentrations. These genes stably maintain the plasmid in Escherichia coli at copy numbers of 20 to 50 per cell. According to a generally accepted model, stable maintenance of lambda plasmids is possible due to the Cro repressor autoregulatory loop (the cro gene is under control of pR). Here we demonstrate that lambda plasmids devoid of the Cro autoregulatory loop can also be stably maintained in E. coli strains. We present data for two such plasmids: pTC lambda 1 in which the pR-cro region has been replaced by the ptetA promoter and the tetR gene (coding for the TetR repressor), and a standard lambda plasmid with inactivated cro gene (lambda cro-null plasmid). Thus, the presence of the Cro repressor autoregulatory loop does not appear to be essential to the maintenance of lambda plasmids in vivo.

Bacteriophage lambda↗

Guanosine tetraphosphate (ppGpp)-mediated inhibition of the activity of the bacteriophage lambda pR promoter in Escherichia coli.

It was previously demonstrated that the activity of bacteriophage lambda promoter pR is decreased in wild-type Escherichia coli cells starved for amino acids (during the stringent response). Since pR activity is necessary for the transcriptional activation of ori lambda, this leads to inhibition of the replication of plasmids derived from phage lambda. These results led to the proposal that the pR promoter susceptible to control by the stringent response. However, subsequent studies demonstrated that this promoter is activated by the host dnaA gene product and since the dnaA promoter was reported to be controlled by the stringent response, it is possible that the inhibition of pR activity in amino acid-starved cells is indirect, and results from the impairment of DnaA-mediated transcriptional activation. Here we present evidence that pR is negatively regulated by ppGpp, even when DnaA protein is provided in excess as well as in cells devoid of DnaA function. We have checked that the level of ppGpp is increased during prolonged (up to 4 h) starvation for isoleucine in relA+ cells but not in the relA- mutant. At the same time we observed inhibition of lambda plasmid replication during the stringent, but not relaxed, response, even when DnaA was overproduced. Finally, we found that the activity of a pR-lacZ fusion is inhibited after gratuitously induced overproduction of ppGpp in unstarved cells, irrespective of the status of the dnaA gene product. We conclude that the activity of the pR promoter is inhibited directly by ppGpp.

Bacterial Proteins↗

Regulation of replication of lambda phage and lambda plasmid DNAs at low temperature.

It was previously demonstrated that while lysogenic development of bacteriophage lambda in Escherichia coli proceeds normally at low temperature (20-25 degrees C), lytic development is blocked under these conditions owing to the increased stability of the phage CII protein. This effect was proposed to be responsible for the increased stimulation of the pE promoter, which interferes with expression of the replication genes, leading to inhibition of phage DNA synthesis. Here we demonstrate that the burst size of phage lambda cIb2, which is incapable of lysogenic development, increases gradually over the temperature range from 20 to 37 degrees C, while no phage progeny are observed at 20 degrees C. Contrary to previous reports, it is possible to demonstrate that pE promoter activation by CII may be more efficient at lower temperature. Using density-shift experiments, we found that phage DNA replication is completely blocked at 20 degrees C. Phage growth was also inhibited in cells overexpressing cII, which confirms that CII is responsible for inhibition of phage DNA replication. Unexpectedly, we found that replication of plasmids derived from bacteriophage lambda is neither inhibited at 20 degrees C nor in cells overexpressing cII. We propose a model to explanation the differences in replication observed between lambda phage and lambda plasmid DNA at low temperature.

Bacteriophage lambda↗

Interaction of the Escherichia coli DnaA protein with bacteriophage lambda DNA.

Interaction of the Escherichia coli DnaA (replication initiator) protein with restriction fragments of phage lambda DNA demonstrated differential binding of DnaA along the whole lambda DNA. Interaction of DnaA with the lambda replication region (from the promoter pR to the origin of replication, orilambda) demonstrated a strong binding of DnaA to the region around the p(o) promoter where synthesis of a short antisense oop RNA is initiated. The four sequences protected by DnaA (two 9mers and two 5mers) are not related even to a relaxed DnaA box. The pattern of protection of these four sequences and the location of three DNase I hypersensitive sites in the lambda DNA r strand, together with results of mobility shift assays and electron microscopy studies, may indicate an interaction involving DnaA monomers bound to different DNA positions on one side of the helix and the formation of higher-order nucleoprotein structures. Therefore, it is tempting to suggest that DnaA, in addition to its activity in regulation of replication and transcription, could be considered as a factor which structures certain chromosomal regions.

Bacterial Proteins↗

Molecular mechanism of heat shock-provoked disassembly of the coliphage lambda replication complex.

We have found previously that, in contrast to the free O initiator protein of lambda phage or plasmid rapidly degraded by the Escherichia coli ClpP/ClpX protease, the lambdaO present in the replication complex (RC) is protected from proteolysis. However, in cells growing in a complete medium, a temperature shift from 30 to 43 degrees C resulted in the decay of the lambdaO fraction, which indicated disassembly of RC. This process occurred due to heat shock induction of the groE operon, coding for molecular chaperones of the Hsp60 system. Here we demonstrate that an increase in the cellular concentration of GroEL and GroES proteins is not in itself sufficient to cause RC disassembly. Another requirement is a DNA gyrase-mediated negative resupercoiling of lambda plasmid DNA, which counteracts DNA relaxation and starts to dominate 10 min after the temperature upshift. We presume that RC dissociates from lambda DNA during the negative resupercoiling, becoming susceptible to the subsequent action of GroELS and ClpP/ClpX proteins. In contrast to lambda cro+, in lambda cro- plasmid-harboring cells, the RC reveals heat shock resistance. After temperature upshift of the lambda crots plasmid-harboring cells, a Cro repressor-independent control of lambda DNA replication and heat shock resistance of RC are established before the period of DNA gyrase-mediated negative supercoiling. We suggest that the tight binding of RC to lambda DNA is due to interaction of RC with other DNA-bound proteins, and is related to the molecular basis of the lambda cro- plasmid replication control.

ATPases Associated with Diverse Cellular Activitie↗

A method for isolation of plasmid DNA replication intermediates from unsynchronized bacterial cultures for electron microscopy analysis.

Electron microscopy is a powerful technique for analysis of DNA replication intermediates. However, isolation of replicating DNA molecules from living cells is tricky and difficult, especially in the case of small DNA molecules (such as bacterial plasmids) whose initiation of replication is not easily synchronized. Here a relatively simple and rapid method for efficient isolation of replicating plasmid molecules from unsynchronized Escherichia coli cultures is described. The efficiency of this procedure is high enough for electron microscopy analysis of plasmid replication intermediates appearing in living cells in normal growth conditions. Under optimal conditions, using standard procedures of isolation of plasmid DNA, it is possible to achieve a content of only as few as 0.02 percent of replication intermediates in a plasmid DNA sample. The described method allowed us to enrich up to 100-fold the fraction of replication intermediates suitable for microscopic analysis among all plasmid molecules.

Cell Cycle↗

Biochemical and genetic analysis of lambdaW, the newly isolated lambdoid phage.

Otherwise isogenic Escherichia coli CP78 (relA+) and CP79 (relA-) strains are commonly used in studies on the stringent control, the bacterial response to amino acid starvation. We found that these strains are lysogenic for a phage which is spontaneously induced with a low frequency, producing virions able to infect other E. coli strains. Genetic studies, restriction analysis of the phage DNA genome, and electron microscopy revealed that this phage is very similar to, but not identical with, bacteriophage lambda. We called the newly isolated phage lambdaW, and found that most of CP78/CP79 ancestor strains are lysogenic for this phage.

Bacteriophage lambda↗

The Escherichia coli RNA polymerase alpha subunit and transcriptional activation by bacteriophage lambda CII protein.

Bacteriophage lambda is not able to lysogenise the Escherichia coli rpoA341 mutant. This mutation causes a single amino acid substitution Lys271Glu in the C-terminal domain of the RNA polymerase alpha subunit (alphaCTD). Our previous studies indicated that the impaired lysogenisation of the rpoA341 host is due to a defect in transcriptional activation by the phage CII protein and suggested a role for alphaCTD in this process. Here we used a series of truncation and point mutants in the rpoA gene placed on a plasmid to investigate the process of transcriptional activation by the cII gene product. Our results indicate that amino-acid residues 265, 268 and 271 in the a subunit may play an important role in the CII-mediated activation of the pE promoter (most probably residue 271) or may be involved in putative interactions between alphaCTD and an UP-like element near pE (most probably residues 265 and 268). Measurement of the activity of pE-lacZ, pI-lacZ and p(aQ)-lacZ fusions in the rpoA+ and rpoA341 hosts demonstrated that the mechanism of activation of these CII-dependent promoters may be in each case different.

Artificial Gene Fusion↗

Amplification of pSC101 replicons in Escherichia coli during amino acid limitation.

Amino acid starvation of Escherichia coli relA mutants was previously proposed as a method for efficient amplification of plasmids bearing origin of replication derived from ColE1-type plasmids and bacteriophage lambda. Here we demonstrate that plasmids derived from pSC101 replicon can be amplified in E. col relA+ and relA- strains during amino acid limitation but not during amino acid starvation. The amplification efficiency is dependent on temperature (37 degrees C was found to be the optimal temperature). Under optimal conditions, up to 13-fold amplification of a pSC101-derived plasmid may be achieved.

Amino Acids↗

Replication and amplification of lambda plasmids in Escherichia coli during amino acid starvation and limitation.

It was demonstrated previously that replication of plasmids derived from bacteriophage lambda (so-called lambda plasmids) is inhibited in wild-type Escherichia coli cells starved for isoleucine and arginine whereas it proceeds under the same conditions in relA mutants. Since replication of other replicons during the stringent or relaxed response depends on the nature of the deprived amino acid, we investigated replication of lambda plasmids in E. coli relA+ and relA- strains starved for different amino acids. We found that replication of lambda plasmids is generally inhibited during the stringent, but not relaxed, response. Differences between cells starved for different amino acids, although reproducible, were not dramatic. Amino acid starvation was previously proposed as a method for amplification of lambda plasmid DNA in vivo. We found that during amino acid limitation lambda plasmids replicate more extensively in the relA mutants than during amino acid starvation. The efficiency of plasmid DNA amplification was found to be dependent on the kind of limited amino acid; in relA- bacteria limited for leucine we observed about 10-fold plasmid amplification. Some lambda plasmid replication was also found under these conditions in the relA+ host. The mechanism of the stringent control of lambda plasmid DNA replication has already been proposed. Here the possible mechanism of the regulation of lambda plasmid replication during amino acid limitation is presented.

Amino Acids↗

Impaired lysogenisation of the Escherichia coli rpoA341 mutant by bacteriophage lambda is due to the inability of CII to act as a transcriptional activator.

The C-terminus of the alpha subunit of Escherichia coli RNA polymerase is known to function in transcriptional activation at certain promoters. This region was previously shown to be necessary for full activation of the pE promoter by the phage lambda CII protein in vitro. In this work we investigated the inability of phage lambda to follow the lysogenic pathway in cells carrying the point mutation rpoA341 (a change of lysine 271 to glutamic acid). We found that neither overexpression of the cII gene nor stabilisation of the CII protein by the can1 mutation or by cIII gene overexpression was able to suppress the block in lysogenisation. In contrast, the lambda cin1 phage, which carries a CII-independent promoter for the expression of the cI gene, was able to efficiently lysogenise the rpoA341 mutant strain. Furthermore, the rpoA341 mutation prevented the activation of pE-lacZ and pI-lacZ transcriptional fusions by CII. Therefore we conclude that transcriptional activation by the cII gene product is abolished by the rpoA341 mutation, most probably due to impaired interaction between the CII activator and mutant RNA polymerase. The inability of RNA polymerase to respond to CII results in the impairment of lysogenisation of the rpoA341 mutant by phage lambda.

Bacteriophage lambda↗