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Highly cooperative DNA binding by the coliphage HK022 repressor.

The CI repressor protein from the temperate lambdoid phage HK022 was purified to near homogeneity and used in DNase I footprinting analyses to identify six binding sites in this phage. All these sites contained homologous 15 bp inverted repeats. Three of these 15 bp inverted repeats were located between the cI and cro (OR1 to OR3), and the other three were 3' to the cI gene (OL1 to OL3). Two of these sites were identified as operator sites for the repressor by DNA sequence analyses of virulent phage mutants. Almost all these mutations identified lay within the 15 bp inverted repeats comprising OR1 and OR2, and almost all were in the most highly conserved positions in the operators. The majority of virulent mutants contained mutations in both OR1 and OR2. Intrinsic affinities for individual operators were measured by DNase I footprinting analyses using DNA fragments which contained a single wild-type operator adjacent to two mutant operators. Comparison of these values with the affinity observed with these sites in the wild-type operator indicated that HK022 CI repressor bound cooperativity to OR1 and OR2 with a cooperativity parameter, omega, of almost 2000. Cooperative binding occurred in an alternative pairwise fashion, as previously seen with lambda CI repressor. In addition to cooperative binding between two adjacent operators, the repressor also increased the affinity for adjacent non-specific DNA sites, resulting in a periodic pattern of binding termed "phasing". This phasing pattern extended beyond regions predicted for pair-wise interaction, but was significantly decreased on a template with two adjacent operators, suggesting that pairwise cooperativity interfered with phasing.

Bacteriophage lambda↗

Determinants of receptor specificity of coliphages of the T4 family. A chaperone alters the host range.

E. coli phages of the T4 family (T4, TuIa, TuIb) recognize their cellular receptors with a C-terminal region of protein 37. This protein, common to all three phages, is present as a dimer located at the distal part of the long tail fibers and possesses a C-terminal domain consisting of 40 to 70 highly conserved C-terminal residues, followed by a variable region of 50 to 80 residues which is again followed by a highly conserved area. Protein 38, not being a component of the mature virion, is required for dimerization of protein 37; this represents a non-covalent association of a structural protein. Seven host range mutants of TuIa or TuIb were analyzed which were able to use proteinaceous receptors other than those recognized by their parents. All had suffered amino acid substitutions within the variable region. It is concluded that in all probability it is this region which interacts directly with the cellular receptors. Conditional mutants of T4 are known which, when propagated at the non-permissive temperature (42 degrees C), yield phage of normal morphology but these are more or less unable to adsorb to cells. The causative amino acid substitutions were found both downstream and upstream from the variable area. Distortion of it in the mutants could suggest a "snap-back" conformation of the tail fiber; the conserved C-terminal region may fold back and expose the variable region as a loop at the tip of the fiber. One of the phage mutants (L93), when grown at the permissive temperature, had lost the ability to use the OmpC porin (a receptor for T4) as a receptor. A secondary mutant, able to do so, was isolated. An additional mutation, leading to one amino acid substitution, had occurred in gene 38. This mutant gene acted in trans and caused a much enhanced temperature-sensitivity of infectivity without conferring temperature-sensitivity per se, i.e. the mutant protein 38 apparently altered the conformation of the receptor-recognizing area of the dimer of protein 37. A gene from phage lambda, about 40% identical to gene 38 of T4, complements gene 38 amber mutants. The corresponding protein also restored the ability of L93 to recognize OmpC but did not cause any such temperature-sensitivity. Hence, protein 38, classifying as a chaperone, appears to act instructively in conveying steric information to the target polypeptide.

Adsorption↗

A complete plasmid-based complementation system for RNA coliphage Q beta: three proteins of bacteriophages Q beta (group III) and SP (group IV) can be interchanged.

Our laboratory has established a bacteriophage Q beta cDNA-containing plasmid system in which virtually all coding defects present within the 4217 nucleotide Q beta genome can be complemented in trans. In this system, Q beta minus strand RNAs are constitutively transcribed from plasmid cDNA by Escherichia coli RNA polymerase. Replication of these minus strands results in the synthesis of Q beta plus RNA, thereby triggering an infectious cycle in which Q beta phase particles are generated. Genetically engineered Q beta genome mutations that result in defective viral proteins can be complemented in trans by the products of one or more Q beta helper plasmids that express either: (1) Q beta maturation protein, which can complement defects in the Q beta maturation cistron (nucleotides 61 to 1320); (2) Q beta readthrough protein, which can complement defects in the readthrough cistron (nucleotides 1344 to 2330); or (3) Q beta replicase, which can complement defects in the replicase cistron (nucleotides 2352 to 4118). Each plasmid component of this system contains a unique origin of replication and carries a different antibiotic gene, thereby enabling all combinations of these plasmids to coexist in the same host. We have further developed a second series of helper plasmids that generate the corresponding viral proteins of the related group IV RNA phage SP. Each of these SP helper proteins can complement respective defects within the Q beta genome with efficiencies similar to those observed for the Q beta helper proteins. It is now possible to supply functional Q beta or SP proteins in trans to examine Q beta genomes that contain protein coding defects for their ability to synthesize Q beta proteins, replicate Q beta RNA, assemble virions, and/or lyse the host cell.

Allolevivirus↗

Disassembly of the coliphage lambda replication complex due to heat shock induction of the groE operon.

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 lambda O present in the replication complex (RC) is protected from proteolysis. In amino acid-starved E. coli relA cells, a temperature shift from 30 to 43 degrees did not affect RC integrity, as judged from the unchanged level of stable lambda O observed; however, the same temperature shift in a complete medium resulted in the decay of this lambda O fraction, which suggested disassembly of the RC. Examination of this phenomenon revealed that for lambda RC disassembly, heat shock induction of the groE operon, coding for molecular chaperones of the Hsp60 class, is indispensable. Heat shock induction of the groE operon present on a multicopy plasmid inhibited the growth of infecting phage.

Bacterial Proteins↗

Alterations in the p'R promoter of coliphage lambda modify both its activity and interaction with the integration host factor (IHF).

A limited number of deletion/insertions and a point mutation in the -35 region of the p'R promoter of phage lambda were examined and found to influence both transcription and its repression by the integration host factor (IHF). Positive effects on transcription (in the absence of IHF) are small (up to 1.4-fold) and are caused by a deletion-substitution upstream of the -35/ihf site. Up to three base changes in the -35 promoter element seem to be tolerated, with only a small negative effect on transcription. In some cases, effective transcription requires supercoiling of such mutant template. Since an ihf sequence overlaps the -35 region of p'R, IHF represses transcription. Repression is correlated with IHF binding and consequent DNA bending, as assessed by gel retardation experiments. Nine p'R mutants were tested for their IHF binding and repression; the results confirm the consensus sequence, 5'-W2WWWWN7WWWWCARNWN2TTR derived from the hydroxyl radical footprinting, where the bold letters indicate the IHF-protected bases and W is A or T, R is A or G and N represents A, T, G or C. Perhaps surprisingly, some mutations just upstream or downstream of this ihf sequence also affect IHF binding, as observed not only for the pR'/ihf but also for the att H' site of lambda. Supercoiling in some cases permits the IHF-mediated repression to be overcome, probably by increasing the RNA polymerase binding and/or decreasing the interaction with IHF. All our data are consistent with a model which assumes that IHF initially binds to one or two ihf contact points depending on preexisting DNA topology, bends DNA, and completes the remaining contacts while finally adjusting the DNA conformation to establish the best fit within the minor groove of the double helix. Effective IHF repression of transcription would thus depend on several factors, including: (1) the sequence, and (2) the initial conformation of the ihf site, together with (3) the capacity of IHF to compete with RNA polymerase for the overlapping binding sites.

Bacterial Proteins↗

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↗

An analysis of the role of host factors in transcription antitermination in vitro by the Q protein of coliphage lambda.

We used two different approaches to study the requirement for Escherichia coli Nus factors for the activity of bacteriophage lambda late antiterminator Q. Using an in vitro coupled transcription-translation assay, based on Q-dependent synthesis of galactokinase from a pR'-tR'-galK template, we showed that mutations in the host nusB and nusE genes do not affect Q activity. A mutation in nusA (nusA1) only partially affects Q action at all temperatures tested. Defective Q function in the nusA1 mutant extract could be restored by the addition of pure NusA but not by excess Q. In a pure transcription system, measurement of the run-off transcript produced by Q-mediated suppression of tR' revealed that NusA is greatly stimulatory to Q activity, whereas NusB and S10, in the presence or absence of NusA, have no effect. Unidentified E. coli factor(s) present in an S30 extract efficiently suppress the natural pausing by RNA polymerase at +15, +16 of pR' without affecting Q activity. These results show that NusA is the only host protein that directly participates in Q function.

Bacterial Proteins↗

Efficient RecABC-dependent, homologous recombination between coliphage lambda and plasmids requires a phage ninR region gene.

A phage lambda gene that gives a 100-fold increase in recombinant frequencies for RecABC pathway-mediated, phage-plasmid homologous recombination (Shen and Huang 1986) maps to ninG (orf 204) of lambda. We call this gene rap, for recombination adept with plasmid. A similar determinant exists in Charon 4A and maps in phi 80-derived sequences, between nin5 and the Rz homology with lambda. The absence of the Rap+ phenotype from certain lambda vectors explains the inefficiency of screening the resulting phage libraries using phage-plasmid homologous recombination. The mapping of rap permits the construction of lambda vectors more suitable for this screening technique.

Bacteriophage lambda↗

Transcription of a region downstream from lambda ori is required for replication of plasmids derived from coliphage lambda.

DNA replication of lambda phage depends on transcriptional activation at or around the lambda ori region by RNA polymerase. To elucidate the function of the transcriptional activation, we constructed several plasmids carrying lambda ori and lacP, whose relative locations and directions were different from each other, and studied replication activity of these recombinant plasmids. Transcription in a region immediately downstream from lambda ori, but not in the lambda ori region, was found to be essential for plasmid replication. Transcription proceeding over a certain minimal length was required and only rightward-directed transcription was effective for the activation.

Bacteriophage lambda↗

Escherichia coli dnaA initiation function is required for replication of plasmids derived from coliphage lambda.

The dnaA gene function, indispensable for the initiation of Escherichia coli replication from oriC is not essential for the growth of phage lambda. The in-vitro replication of plasmids derived from phage lambda does not seem to require DnaA protein either. However, we present evidence that in vivo the normal replication of lambda plasmids is dnaA-dependent. After inactivating the dnaA gene function, half of the plasmid molecules may enter a single round of replication. Rifampicin sensitivity of this abortive, as well as normal, replication indicates involvement of RNA polymerase. The rifampicin resistance of the normal replication of lambda plasmids in E. coli carrying the dnaAts46 or dnaAts5, but not the dnaAts204 allele at 30 degrees C implies the interaction of DnaA protein and RNA polymerase in this process. We propose that DnaA protein co-operates with RNA polymerase in the initiation of replication at ori lambda. The dispensability of DnaA in the growth of phage lambda and in lambda plasmid replication in vitro is discussed.

Bacterial Proteins↗