Search PubMed⌕ Search

Biomedical subjects

G Wegrzyn

Publications and source records attributed to G Wegrzyn.

90 records · Page 5Linked to original sources

Replication of coliphage lambda DNA.

A general scheme of lambda phage and plasmid DNA replication in Escherichia coli is presented, and results of in vivo experiments from the authors' laboratory are superimposed. The initiator lambda O functions in the assembly of the replication complex (RC) at ori lambda, making it a stable component of this structure. ClpP/ClpX protease-specific action on lambda O does not affect the regulation of replication; it only degrades the surplus of synthesized lambda O. The initiator lambda O becomes protected from proteolysis at a distinct step of the pathway of RC assembly. The host DnaA initiator-regulated transcriptional activation of ori lambda seems to be coupled with RC assembly at the step of chaperone-mediated rearrangement of the pre-primosome. The once-assembled RC is inherited by one of two lambda plasmid daughter copies at each round of circle-to-circle (theta) replication. The inherited, old RC-driven replication is also dependent on RNA polymerase and DnaA functions. It seems that DnaA licenses lambda plasmid DNA for only one replication round, resembling the putative eukaryotic licensing factor in this respect. The lambda O binding to ori lambda does not seem to play any role in regulation of lambda plasmid replication, and the Cro-autoregulatory loop may be deleted. The emerging picture shows lambda plasmid circles with RCs bound to their ori, awaiting a signal triggering initiation of replication. The host DnaA initiator-regulated transcriptional activation of ori lambda may be involved in signal transmission. Inactivation of DnaA function blocks initiation of lambda phage DNA replication, but the lambdoid prophage Rac compensates this defect and all parental phage DNA molecules, after one round of theta replication switch to the sigma mode and produce progeny in high yield. We suspect that DnaA-regulated transcriptional activation is involved in installation and adequate positioning of two RCs, required for bidirectional replication, but in the Rac-promoted process only one RC may be installed, leading to unidirectional replication continued in the sigma mode. In wild-type cells consumption of DnaA function by the rapidly replicating lambda phage DNA may switch replication from bidirectional theta to unidirectional theta, and later to the sigma mode; the lambda circles produced earlier may play the role of Rac, which is required only when DnaA function has been inactivated prior to phage infection.

Bacteriophage lambda↗

Inhibition of transcription starting from bacteriophage lambda pR promoter during the stringent response in Escherichia coli: implications for lambda DNA replication.

Replication of lambda plasmid DNA is halted in amino acid-starved wild type (stringent) strains whereas it proceeds in relA (relaxed) mutants. The only transcription which could be important in lambda plasmid DNA replication in amino acid-starved Escherichia coli cells is that starting from the pR promoter. Using a fusion which consists of the lacZ gene under the control of bacteriophage lambda pR promoter we found that transcription starting from this promoter was inhibited during the stringent, but not the relaxed, response in E. coli. We confirmed our conclusion by estimating the relative level of the pR transcript by RNA-DNA hybridization. We propose that decreased transcription from the pR promoter which serves as transcriptional activation of ori lambda is responsible for inhibition of lambda plasmid replication during the stringent response. The results presented in this paper, combined with our recent findings (published elsewhere), indicate that the transcriptional activation of ori lambda may be a main regulatory process controlling lambda DNA replication not only during the relaxed response but also in normal growth conditions.

Bacteriophage lambda↗

The mechanism of the stringent control of lambda plasmid DNA replication.

Lambda plasmid DNA replication is inhibited in amino acid-starved wild type Escherichia coli strains (stringent response) but not in amino acid-starved relA mutants (relaxed response). This replication is perpetuated by the replication complex containing the lambda O protein (which is protected from proteases by other elements of the complex) and inherited by one of two daughter copies after a replication round. Since a fraction of stable lambda O protein was observed in relA- and relA+ strains, and negative regulation by the lambda Cro repressor does not seem to be important in the stringent or relaxed response of lambda plasmid replication to amino acid starvation, the inhibition of lambda plasmid replication in amino acid-starved wild type strains was investigated. lambda plasmids were unable to replicate in amino acid-starved relA- bacteria treated with rifampicin. Moreover, transcription from pR, which produces mRNA for replication protein synthesis and serves as transcriptional activation of ori lambda, was significantly decreased during the stringent response as well as in non-starved cells containing increased levels of ppGpp. However, it was little or totally not affected by the relaxed response. The replacement of pR with plac (which is known to be uninhibited by ppGpp) in a lambda plasmid resulted in its DNA replication during relaxed and stringent responses as well as during overproduction of ppGpp in unstarved bacteria. We conclude that ppGpp-mediated inhibition of transcriptional activation of ori lambda is responsible for inhibition of lambda plasmid DNA replication in amino acid-starved wild type strains.(ABSTRACT TRUNCATED AT 250 WORDS)

Bacteriophage lambda↗

An additional role of transcriptional activation of ori lambda in the regulation of lambda plasmid replication in Escherichia coli.

Initiation of replication of plasmids derived from coliphage lambda in vivo is dependent on transcription at or near the replication origin, ori lambda. However, this transcriptional activation is dispensable for lambda plasmid DNA replication reconstituted in vitro from purified lambda and Escherichia coli proteins. It was proposed previously that histone-like protein HU interferes with the assembly or function of the pre-primosomal complex, and transcription at or near ori lambda abolishes HU-mediated inhibition of lambda DNA replication. We found that during lambda plasmid replication driven by the previously assembled replication complex (in amino acid-starved relA mutants), when the inhibition by HU protein should not be observed, the synthesis of lambda DNA was still dependent on transcriptional activation. Moreover, in hupA hupB double mutants the transcription is necessary for the initiation of lambda plasmid DNA replication perpetuated by the replication complex inherited by one of two daughter copies after a replication round. We conclude that transcriptional activation of ori lambda has an additional role in the initiation of lambda plasmid DNA replication beside the abolition of HU-mediated inhibition.

Bacterial Proteins↗

Regulation of replication of plasmid pBR322 in amino acid-starved Escherichia coli strains.

The stringent response causes inhibition of replication of plasmid pBR322 in amino acid-starved Escherichia coli cells whereas in relaxed mutants the replication of this plasmid proceeds for several hours. On the basis of density shift experiments and pulse-labelling experiments we showed that most of the pBR322 molecules begin replication during the relaxed response and the rate of plasmid DNA synthesis in unstarved and isoleucine-starved relA- bacteria is similar. We found that the Rom function plays a key role in the stringent control of plasmid pBR322 replication, as insertional inactivation of the rom gene causes amplification of pBR322rom- in both relA- and relA+ strains during amino acid starvation. Moreover, pUC19, which is a pBR322-derived plasmid lacking the rom gene, behaves like pBR322rom-, whereas introduction of the rom gene into the pUC19 replicon drives it into the pBR322 mode of replication in amino acid-starved bacteria. A model for the regulation of pBR322 plasmid DNA replication by Rom protein in amino acid-starved Escherichia coli strains is proposed.

Adaptation, Physiological↗

Differential replication of plasmids during stringent and relaxed response of Escherichia coli.

Stringent control of DNA replication has been demonstrated for a few replicons like oriC, pBR322, and plasmids derived from coliphage lambda. In this study we investigated the replication of other plasmids harboring a well defined origin (orip15A, oripSC101, and oriRK2 = oriV) in amino-acid-starved stringent and relaxed strains of Escherichia coli. We found differential replication of plasmids during stringent and relaxed response. Inhibition of DNA synthesis or amplification of plasmid DNA in amino acid-starved relA+ and relA- cells depends on the kind of replicon and, surprisingly, on the nature of deprived amino acid. We conclude that there are no general rules for stringent control of DNA replication and each replicon must be considered separately. There are, however, possible explanations for the differences shown between replicons in their response to stringent and relaxed conditions.

Amino Acids↗

Neither absence nor excess of lambda O initiator-digesting ClpXP protease affects lambda plasmid or phage replication in Escherichia coli.

Owing to rapid proteolysis of the coliphage lambda-coded initiator protein, lambda O, this protein is considered to carry a rate-limiting step in lambda DNA replication. The discovery of ClpXP protease responsible for lambda O protein turnover allowed an opportunity to verify this hypothesis. However, neither absence nor excess of this protease significantly affected the transformation efficiency and copy number of lambda plasmid, or the kinetics of the lambda phage growth. These results are also incompatible with the hypothesis that the stabilization of lambda O plays a role in the switch from early (circle-to-circle) to late (rolling-circle) lambda phage DNA replication. Transcriptional activation of ori lambda, probably assisted by the Escherichia coli DnaA function, remains as the possible rate-limiting step in lambda DNA replication.

ATP-Dependent Proteases↗

Involvement of the Escherichia coli RNA polymerase alpha subunit in transcriptional activation by the bacteriophage lambda CI and CII proteins.

Escherichia coli cells harbouring the rpoA341 mutation produce an RNA polymerase which transcribes inefficiently certain operons subject to positive control. Here, we demonstrate that the rpoA341 allele also prevents lysogenization of the host strain by bacteriophage lambda, a process dependent upon the action of two phage-encoded activators. This phenomenon was shown to arise from an inability to establish an integrated prophage rather than a failure to maintain the lysogenic state. The inability of the rpoA341 host to support lysogenization could be completely reversed by CII-independent expression of int and cI in trans. These results led us to propose that the inhibition of lysogenization arises from a defective interaction between the phage lambda transcriptional activator CII and the mutant RNA polymerase at the phage promoters pI and pE. Finally, we also provide genetic evidence for impaired transcription of the cI gene from the CI-activated promoter, pM in the rpoA341 background.

Bacteriophage lambda↗

Stability of coliphage lambda DNA replication initiator, the lambda O protein.

The initiator of coliphage lambda DNA replication, lambda O protein, may be detected among other 35S-labeled phage and bacterial proteins by a method based on immunoprecipitation. This method makes it possible to study lambda O proteolytic degradation in lambda plasmid-harboring or lambda phage-infected cells; it avoids ultraviolet (u.v.)-irradiation of bacteria, used for depression of host protein synthesis, prior to lambda phage infection. We confirm the rapid decay of lambda O protein (half-time of 80 s), but we demonstrate the existence of a stable lambda O fraction. In the standard five minute pulse-chase experiments, 20% of synthesized lambda O is stable. The extension of the [35S]methionine pulse, possible in lambda plasmid-harboring cells, leads to a linear increase of this fraction, as if a part of the synthesized lambda O was constantly made resistant to proteolysis. Less than 5% of lambda O protein synthesized during one minute is transformed into a stable form. We presume that the stable lambda O is identical with lambda O present in the normal replication complex and thus protected from proteases. We cannot find any stable lambda O in Escherichia coli recA+ cells that were irradiated with u.v. light prior to lambda phage infection, but their recA- counterparts behave normally, suggesting that recA function interferes in the assembly of a normal replication complex in u.v.-irradiated bacteria. The stable lambda O found in lambda plasmid-harboring, amino acid-starved relA cells is responsible for the lambda O-dependent lambda plasmid replication that occurs in this system in the absence of lambda O synthesis. The existence of stable lambda O raises doubt concerning its role as the limiting initiator protein in the control of replication. Another significance of lambda O rapid degradation is proposed.

Bacteriophage lambda↗

Inheritance of the replication complex by one of two daughter copies during lambda plasmid replication in Escherichia coli.

Direct measurement of DNA synthesis confirmed that lambda plasmid replication proceeds for several hours in an amino acid-starved relA mutant of Escherichia coli, leading to plasmid amplification; this replication is lambda cro-independent, but requires the function of lambda O initiator in the absence of its synthesis. This suggests that after the assembly of the replication complex (RC) at ori lambda the lambda O protein remains in this structure and the affinity of lambda O to ori lambda is alleviated in the assembled RC allowing its movement along the DNA. During amino acid starvation the lambda plasmid DNA synthesis per bacterial mass occurs at a constant level, as would be expected if the number of functioning RCs remained constant. This favors the idea that under these conditions the next replication round operates due to the activity of the RC inherited from the preceding round. Density shift experiments reveal indeed that, from two daughter plasmid copies synthesized after the onset of amino acid starvation only one is able to enter into the next round of replication. We infer that this is the plasmid copy that inherits the lambda O-enclosing RC from the previous replication round. Moreover, the same results of density shift experiments were obtained for plasmids synthesized before the onset of amino acid starvation. Therefore, we presume that in lambda plasmid-harboring bacteria growing in nutrient medium, every second plasmid circle bears an RC that originates from the preceding round of replication. This structure has to be assembled de novo only on the daughter plasmid copy that does not inherit the parental RC. In the absence of lambda O initiator synthesis in amino acid-starved relA cells this process cannot occur, leaving as the only replication pathway that driven by the parental RC. Our results are discussed in relation to the model of regulation of lambda plasmid replication.

Bacteriophage lambda↗

Stringent control of replication of plasmids derived from coliphage lambda.

The first events of lambda plasmid replication in vivo, which probably regulate this process, are the transcriptional activation of the origin of replication by RNA polymerase and the binding of the initiator protein, lambda O, to this nucleotide sequence. The lambda O protein is known for its rapid proteolytic degradation; hence amino acid starvation of Escherichia coli should result in inhibition of lambda plasmid replication caused by inhibition of protein synthesis. However, contrary to this prediction, we found that lambda plasmid replication, as measured by the increase in plasmid content per bacterial mass, proceeds for hours in an amino acid-starved, relaxed mutant, whereas it is inhibited in its wild-type stringent partner. lambda plasmid replication in amino acid-starved, relaxed cells reveals absolute lambda O dependence and is not inhibited by chloramphenicol at 200 micrograms/ml. This process also occurs in wild-type cells treated with chloramphenicol. We conclude that lambda plasmid replication is under stringent control, probably as a result of the action of ppGpp, the indirect product of the relA gene, on RNA polymerase. The problem of stability of the lambda O initiator protein is discussed.

Bacteriophage lambda↗

Replication of lambda plasmid in amino acid-starved strains of Escherichia coli.

We found that lambda plasmid replication, as measured by the increase in plasmid content per bacterial mass, proceeds for hours in an amino acid-starved, relaxed mutant of Escherichia coli K-12, whereas is inhibited in its wild-type stringent partner. Replication of lambda plasmid in amino acid-starved, relaxed cells reveals absolute lambda O dependence and is not inhibited by chloramphenicol at 200 micrograms/ml. The replication also occurs in wild-type cells treated with chloramphenicol. We conclude that lambda plasmid replication is under stringent control, probably as a result of the action of ppGpp, the signal for the stringent response, on RNA polymerase.

Amino Acids↗

ClpP/ClpX-mediated degradation of the bacteriophage lambda O protein and regulation of lambda phage and lambda plasmid replication.

The O protein is a replication initiator that binds to the orilambda region and promotes assembly of the bacteriophage lambda replication complex. This protein, although protected from proteases by other elements of the replication complex, in a free form is rapidly degraded in the host, Escherichia coli, by the ClpP/ClpX protease. Nevertheless, the physiological role of this rapid degradation remains unclear. Here we demonstrate that the copy number of plasmids derived from bacteriophage lambda is significantly higher in wild-type cells growing in rich media than in slowly growing bacteria. However, lambda plasmid copy number in bacteria devoid of the ClpP/ClpX protease was not dependent on the bacterial growth rate and in all minimal media tested was comparable to that observed in wildtype cells growing in a rich medium. Contrary to lambda plasmid replication, the efficiency of lytic growth of bacteriophage lambda was found to be dependent on the host growth rate in both wild-type bacteria and clpP and clpX mutants. The activities of two major lambda promoters operating during the lytic development, p(R) and p(L), were found to be slightly dependent on the host growth rate. However, when p(R) activity was significantly decreased in the dnaA mutant, production of phage progeny was completely abolished at low growth rates. These results indicate that the O protein (whose level in E. coli cells depends on the activity of ClpP/ClpX protease) is a major limiting factor in the regulation of lambda plasmid replication at low bacterial growth rates. However, this protein seems to be only one of the limiting factors in the bacteriophage lambda lytic development under poor growth conditions of host cells. Therefore, it seems that the role of the rapid ClpP/ClpX-mediated proteolysis of the O protein is to decrease the efficiency of early DNA replication of the phage in slowly growing host cells.

ATPases Associated with Diverse Cellular Activitie↗

Functional domains of DnaA proteins.

Functional domains of the initiator protein DnaA of Escherichia coli have been defined. Domain 1, amino acids 1-86, is involved in oligomerization and in interaction with DnaB. Domain 2, aa 87-134, constitutes a flexible loop. Domain 3, aa 135-373, contains the binding site for ATP or ADP, the ATPase function, a second interaction site with DnaB, and is required for local DNA unwinding. Domain 4 is required and sufficient for specific binding to DNA. We show that there are three different types of cooperative interactions during the DNA binding of DnaA proteins from E. coli, Streptomyces lividans, and Thermus thermophilus: i) binding to distant binding sites; ii) binding to closely spaced binding sites; and iii) binding to non-canonical binding sites.

Amino Acid Sequence↗