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Clustered arginine residues of bacteriophage lambda N protein are essential to antitermination of transcription, but their locale cannot compensate for boxB loop defects.

The N protein coded by bacteriophage lambda plays an essential role in the completion of lambda transcription by recognizing the boxB sequence in nascent transcripts and then aggregating with Escherichia coli RNA polymerase and four other E. coli proteins into an unstoppable transcription complex. In order to explore the functionality of N protein and the specific recognition between N and boxB, 14 amino acid positions near the amino-terminal end of N lambda were mutated extensively. The mutant proteins were scored for N function in vivo by a two-plasmid construct that visualizes readthrough transcription as lacZ expression in colonies of E. coli. Mutation was achieved by single TAG replacements, translated through suppression into 13 different amino acids, or by scrambling at assorted three-codon sets. Of the 14 amino acid positions tested (Tables 5 and 6), six remained functional with a wide variety of substitutions, while substitution was sometimes deleterious at one Ala and two Gln positions. At each of the five Arg positions, however, maintenance of Arg occupancy proved important for N function. Despite effective screening for increased N function at boxBs with defective loops, no N mutant, simple or complex, was found to change the order of preference of wild-type N lambda for boxBs with defective loops. Thus, although multiple amino-terminal Arg positions are found to be important for N function, mutations in the region spanning the five Arg residues were not found to compensate for defects in boxB loop.

Amino Acid Sequence↗

Cloning of the J gene of bacteriophage lambda, expression and solubilization of the J protein: first in vitro studies on the interactions between J and LamB, its cell surface receptor.

Bacteriophage lambda adsorbs to its Escherichia coli K12 host by interacting with a specific cell surface receptor, the outer membrane protein LamB. Previous genetic analyses led us to define a set of residues at the surface of LamB, which belong to the lambda receptor site. Further genetic studies indicated that the C-terminal portion of J, the tail fibre protein of lambda, was directly involved in the recognition of the receptor site. The present work describe first in vitro studies on the interactions between J and LamB. The J gene of lambda was cloned into a plasmid vector under ptac promoter control and expressed in E. coli. We showed that J could be expressed at high levels (up to 28% of whole cell proteins), in an insoluble form. Anti-J antibodies, induced in rabbits immunized with insoluble J extracts, appeared to specifically neutralize lambda infection. Under defined conditions of extraction, the J protein was obtained in a soluble form. We showed that solubilized J was able to interact with LamB trimers in vitro. Implications for future studies on the interactions between LamB and J are discussed.

Animals↗

Multiply branched DNA molecules from bacteriophage lambda: putative post-replicational repair DNA intermediates.

Previous studies have shown that thymidine deprivation causes the formation of multiply branched molecules among bacteriophage lambda DNA replicative intermediates. In the present report, we present supporting evidence indicating that the induction of the SOS response is involved in this process. Moreover, close inspection of the DNA replicatives intermediates present in a recA deficient strain, shows an accumulation of gapped replicative intermediates. From these observations we postulate a model by which multiply branched DNA molecules may be intermediates or derived intermediates of a post-replicational repair pathway.

Bacteriophage lambda↗

Mutations abolishing the endonuclease activity of bacteriophage lambda terminase lie in two distinct regions of the A gene, one of which may encode a "leucine zipper" DNA-binding domain.

Bacteriophage lambda terminase is a multifunctional enzyme composed of two subunits which are the products of the phage-encoded Nu1 and A genes. The enzyme catalyzes the endonucleolytic cleavage of lambda DNA at a site known as cosN and mediates packaging of the phage DNA into empty heads. This work describes the characterization of mutations within the A gene which lead to the loss of terminase endonuclease activity without affecting the ability of the enzyme to package monomeric mature (cut) lambda DNA. The residues changed by these mutations lie in two distinct regions within the carboxy half of the A protein. One of these regions has sequence homology with a conserved region of DNA polymerases. The other region resembles the "leucine zipper" DNA binding domain (bZIP) found in eukaryotic transcription factors in that both a basic region and leucine heptad-repeat are present. This terminase domain may be involved in the recognition and/or cleavage of cosN.

Amino Acid Sequence↗

Bacteriophage lambda vehicle for the direct cloning of Escherichia coli promoter DNA sequences: feedback regulation of the rplJL-rpoBC operon.

A derivative of bacteriophage lambda, lambda 21, has been constructed and used for the cloning of Escherichia coli DNA fragments carrying promoters. Phage lambda 21 lacks the lac promoter operator and can accept DNA fragments up to 9.8 kilobases in size at a unique HindIII restriction endonuclease site adjacent to lacZ. Recombinant phage that carry promoters are readily identified by their expression of lacZ. Lysogens of these phages in strains harboring a deletion of the chromosomal lac operon are capable of growth on lactose as sole carbon source and can be used to study some of the regulatory signals that act upon the cloned promoter. In principle, lambda 21 can be used to clone any promoter DNA sequence with HindIII termini. PJ, the primary promoter for the rplJL-rpoBC operon, and P beta, a weak promoter for rpoBC, have been cloned in lambda 21. Transcription of lacZ from PJ was found to be subjected to feedback control by ribosomal protein L10 and to a lesser extent by ribosomal protein L7/L12. This suggests a possible L10-binding site near PJ that regulates transcription from that promoter. Lysogens of the phage that carries P beta responded to two regulatory signals: a rho-sensitive termination site preceding rpoBC and induction of beta-galactosidase synthesis by rifampicin. This suggests that P beta is a bona fide promoter for rpoBC.

Bacterial Proteins↗

An improved bacteriophage lambda vector: construction of model recombinants coding for kanamycin resistance.

An attenuated bacteriophage lambda has been prepared for proposed use as an EK2 vector. This phage, designated lambdagt vir Jam27 Zam718-lambdaB' can accomodate up to 11.10(6) daltons of foreign DNA inserted through Eco RI ends. The virulence mutations and nin 5 reduce the frequency of lysogen and/or plasmid formation. The mutations Jam27 and Zam718 require a suppressor in the bacterial host. The phage recombination functions contained in the EcoRIlambdaC fragment have been deleted, and only the EcoRIlambdaB fragment remains (in reverse orientation) in the center portion of the vector. In addition, this phage adsorbs to sensitive bacteria at a significantly reduced rate, conferring another block to the escape of free phage. Model recombinants have been constructed by in vitro recombination with an EcoRI fragment coding for kanamycin resistance (originally derived from R-factor R6-5). This fragment of DNA is 4.6.10(6) daltons in size, contains an inverted repeat, and also appears to contain a promoter for the kanamycin resistance gene. Using this model recombinant, the rate of transfer of kanamycin resistance to permissive and nonpermissive strains of E. coli has been measured.

Coliphages↗

Lambdap(o), a promoter for oop RNA synthesis, has a role in replication of plasmids derived from bacteriophage lambda.

Transcription initiated at the bacteriophage lambdap(o) promoter gives a short RNA, called oop RNA. Early studies led to a proposal that this transcript plays a role in the initiation of lambda DNA replication. In fact, the p(o) promoter is located in the lambda replication region and it was suggested that oop RNA may be a primer for replication proceeding leftward from orilambda. However, since in vitro experiments demonstrated that primers for lambda DNA replication are produced by the dnaG gene product (DnaG primase) and subsequent in vivo studies indicated that oop RNA is an antisense RNA for the lambda cII gene expression, the above-mentioned hypothesis has fallen into oblivion. Nevertheless, here we demonstrate that the p(o) promoter plays a role in lambda DNA replication, indeed. We found that lambda plasmids bearing a mutation that inactivates p(o) occur in Escherichia coli cells in a copy number significantly lower than wild-type lambda plasmids. Amplification of lambdap(o)(-) plasmids during the relaxed response was less efficient relative to lambdap(o)(+) plasmids suggesting less frequent initiation of replication from orilambda in the absence of transcription from p(o). This suggestion was confirmed by measurement of incorporation of [(3)H]thymidine into lambda plasmid DNA during pulse-labeling experiments. Therefore, we propose that transcription from the p(o) promoter stimulates replication initiation at orilambda as suggested a long time ago, however, contrary to that suggestion, we assume that the process of p(o)-initiated transcription per se but not the transcription product (oop RNA) might play a role at early steps of lambda DNA replication.

Bacteriophage lambda↗

Mechanisms of protection of gamma-irradiated bacteriophage lambda by proflavine.

The protective effect of proflavine on gamma-irradiated bacteriophage lambda and its isolated DNA was investigated under conditions of predominantly indirect or direct effects. In both conditions addition of small amounts of the dye during irradiation of phage or DNA was shown to enhance their biological activity. Protection against indirect effects results probably from extensive scavenging of radioinduced water radicals within the medium. On the other hand the results obtained at minus 196 degrees C, with irradiated DNA-proflavine complexes, imply the existence of a long-range transfer of the primary radiation damage of DNA towards the intercalated molecules of proflavine. A mechanism for the protective effect of proflavine against the direct effect of ionizing radiation on biologically active DNA is suggested.

Acridines↗

Bacteriophage lambda int protein recognizes two classes of sequence in the phage att site: characterization of arm-type sites.

Purified int protein from bacteriophage lambda binds to specific sites in DNA that are not part of the functional attachment sites (non-att DNA) as well as to specific sites in att DNA. Analysis of non-att sites protected from nucleases by int has permitted definition of two distinctly different consensus recognition sequences, one of which, the arm-type sequence, is characterized in this report. Both types of recognition sequence occur in attP; five copies of the arm-type consensus sequence are located distant from the crossover region in the P1, P2, and P' arm protected regions. The second type of recognition sequence occurs at the crossover region. Modification of int with N-ethylmaleimide selectively alters its interaction with arm-type sequences.

Bacteriophage lambda↗

Mutational analysis of integrase arm-type binding sites of bacteriophage lambda. Integration and excision involve distinct interactions of integrase with arm-type sites.

Integrative recombination between specific attachment (att) regions of the bacteriophage lambda genome (attP) and the Escherichia coli genome (attB) results in a prophage flanked by the hybrid recombinant sites attL and attR. Each att site contains sequences to which proteins involved in recombination bind. Using site-directed mutagenesis, we have constructed a related set of point mutations within each of the five Int "arm-type" binding sites located within attP, attL and attR. Footprint analyses of binding demonstrate that mutating the arm-type sites significantly disrupts the binding of Int. Recombination analyses of mutant att sites in vivo and in vitro demonstrate that only three wild-type arm-type sites within attP are required for efficient integrative recombination. Similar analyses demonstrate that efficient excision can occur with two other different sets of wild-type arm-type sites in attL and attR. These results demonstrate that integrative and excisive recombination may involve interactions of Int with distinct and different subsets of arm-type sites.

Attachment Sites, Microbiological↗

Bacteriophage lambda site-specific recombination proceeds with a defined order of strand exchanges.

Previous work has established that integration of the genome of bacteriophage lambda into the chromosome of its bacterial host proceeds via two independent strand exchanges, which make and then resolve a Holliday-structure intermediate. We find that a phosphorothioate substitution at the site of exchange in one strand of a recombination site depresses the yield of Holliday structures much more than a similar substitution in the other strand. Furthermore, we show that the Holliday structures that accumulate in unblocked reactions have all been made by recombination of one particular pair of strands. We conclude that there is a strong bias in the choice of strands that initiate crossing-over. Excision, the recombination reaction that excises the integrated prophage, exhibits the same bias as integration. This proves, at least at the level of strand exchange, that excision is not the simple reversal of integration. We have altered the relative orientation of parts of the phage attachment site, attP, to demonstrate that the strand-exchange bias is determined not by the local environment around the point of exchange in the core of attP but by more distant elements in its arms. This suggests that the order of the strand exchanges is dictated by an asymmetry in the way that the nucleosome-like structure that forms at attP brings the bacterial site, attB, into juxtaposition prior to strand exchange. Finally, we use the altered attP to show that homology between attP and attB is most critical when it is adjacent to the point of strand exchange.

Attachment Sites, Microbiological↗

Bacterial mutants able to partly suppress the effect of N mutations in bacteriophage lambda.

A method is described whereby bacterial mutants (sun) may be selected which are able to specifically suppress mutations in the N gene of bacteriophage lambda. The sun mutations seem to be allelic to suA mutations, which suppress the polarity of nonsense codons, since suA mutants have all of the properties of sun mutants and both are genetically linked to the ilv gene. In the light of these experiments and recent data by others, models originally suggested to explain polarity in bacterial operons, are discussed with regard to their possible relevance to the mechanism of N action.

Bacteriophage lambda↗

Weigle reactivation and mutagenesis of bacteriophage lambda in lexA(Def) mutants of E. coli K12.

The SOS response in UV-irradiated bacteria enhances the survival and mutagenesis of infecting damaged bacteriophage lambda. In a lexA(Def) strain, SOS bacterial genes are fully derepressed by an inactivating mutation in the LexA repressor gene. We tested several lexA(Def) derivative strains for their capacity to constitutively promote high survival and mutagenesis of irradiated lambda. We showed that UV irradiation of the lexA(Def) host bacteria is still necessary for optimal efficiency of both these SOS functions, which are dependent on the umuC gene product and an activated form of RecA protein.

Bacterial Proteins↗

Drastically decreased transcription from CII-activated promoters is responsible for impaired lysogenization of the Escherichia coli rpoA341 mutant by bacteriophage lambda.

It was demonstrated previously that a mutation, rpoA341, in the gene encoding the alpha subunit of Escherichia coli RNA polymerase prevents lysogenization by bacteriophage lambda. The rpoA341 allele is known to be responsible for impaired transcription of some positively regulated E. coli chromosomal operons. Here we demonstrate that the inhibition of lysogenization of the rpoA341 mutant is a result of drastically decreased transcription from positively regulated phage promoters. We were unable to detect any transcripts originating from the CII-activated pE, pI and paQ promoters (important for lysogenic development) in the phage-infected rpoA341 mutant, in contrast to an otherwise isogenic rpoA+ strain. The results are discussed in the light of other reports showing that activation of the pE promoter by CII protein in vitro is decreased only about fivefold when the native alpha subunit is replaced by truncated alpha polypeptides.

Bacteriolysis↗

Insertion of bacteriophage lambda into the deo operon of Escherichia coli K-12 and isolation of plaque-forming lambdadeo+ transducing bacteriophages.

A procedure has been devised to isolate plaque-forming lambda cI857S7 transducing bacteriophage which carry the internal promoter, P3, of the deo operon of Escherichia coli and the deoB and deoD genes, while lacking the deoP and cytP promoters of the same operon, in order to study, specifically, regulation at the P3 site. This has been accomplished by selecting for the insertion of bacteriophage lambda into the deoA gene in a strain deleted for the normal lambda attachment site (delta att lambda) and isolating from this lysogen lambda spi- and lambda EDTAr phage. Among these, lambda pdeoB+D+ phage were identified by their transducing abilities. From in vivo enzyme induction experiments performed on a delta deo strain lysogenized with such phage, they were shown to carry the P3 promoter while lacking the deoP and cytP promoters. A lambdapdeo B+D+ phage phage was used to lysogenize a deo+ delta att lambda strain, integration of lambda occurring within the region of homology, and, from a heat-induced lysate of this strain, a plaque-forming lambda+ phage carrying the complete deo operon was obtained. Phage lambda was also inserted into the deoB and deoD genes and into the tdk gene. By isolating lambdaspi- and lambdaEDTAr phage from the deo::(lambda) mutants and determining which bacterial genes they carried and whether they retained the int gene of lambda, it was found that lambda had inserted into deoD with the same orientation as lambda inserted into attlambda, whereas lambda inserted into deoA and deoB had the opposite orientation. Deletions extending from the site of lambda insertion into the bacterial chromosome were isolated by selecting for heat-resistant revertants. These confirmed the order of markers to be deo-serB-trpR-thr and also placed a locus, msp, determining sensitivity or resistance of male strains to male-specific phages, between trpR and thr. For some reason unknown, but which may be related to the orientation of the lambda prophages, short deletions rendering the bacterium Ser- Thr+ were of much lower frequency from the deoD::(lambda) lysogen than from the other two lysogens. From an examination of the residual deoD enzyme levels in deoB::(lambda) mutants, it was deduced that there may be two promoter sites within the deoB::(lambda) mutants, it was deduced that there may be two promoter sites within the deoB gene, transcription from one of these being sufficient to account for the noncoordinate nature of the induction of deoB and deoD gene products.

Chromosome Mapping↗

The effect of genome length on ejection forces in bacteriophage lambda.

A variety of viruses tightly pack their genetic material into protein capsids that are barely large enough to enclose the genome. In particular, in bacteriophages, forces as high as 60 pN are encountered during packaging and ejection, produced by DNA bending elasticity and self-interactions. The high forces are believed to be important for the ejection process, though the extent of their involvement is not yet clear. As a result, there is a need for quantitative models and experiments that reveal the nature of the forces relevant to DNA ejection. Here, we report measurements of the ejection forces for two different mutants of bacteriophage lambda, lambdab221cI26 and lambdacI60, which differ in genome length by approximately 30%. As expected for a force-driven ejection mechanism, the osmotic pressure at which DNA release is completely inhibited varies with the genome length: we find inhibition pressures of 15 atm and 25 atm, for the short and long genomes, respectively, values that are in agreement with our theoretical calculations.

Bacteriophage lambda↗

Self-association properties of the bacteriophage lambda terminase holoenzyme: implications for the DNA packaging motor.

Terminases are enzymes common to complex double-stranded DNA viruses and are required for packaging of viral DNA into a protective capsid. Bacteriophage lambda terminase holoenzyme is a hetero-oligomer composed of the A and Nu1 lambda gene products; however, the self-association properties of the holoenzyme have not been investigated systematically. Here, we report the results of sedimentation velocity, sedimentation equilibrium, and gel-filtration experiments studying the self-association properties of the holoenzyme. We find that purified, recombinant lambda terminase forms a homogeneous, heterotrimeric structure, consisting of one gpA molecule associated with two gpNu1 molecules (114.2 kDa). We further show that lambda terminase adopts a heterogeneous mixture of higher-order structures, with an average molecular mass of 528(+/-34) kDa. Both the heterotrimer and the higher-order species possess site-specific cos cleavage activity, as well as DNA packaging activity; however, the heterotrimer is dependent upon Escherichia coli integration host factor (IHF) for these activities. Furthermore, the ATPase activity of the higher-order species is approximately 1000-fold greater than that of the heterotrimer. These data suggest that IHF bending of the duplex at the cos site in viral DNA promotes the assembly of the heterotrimer into a biologically active, higher-order packaging motor. We propose that a single, higher-order hetero-oligomer of gpA and gpNu1 functions throughout lambda development.

Adenosine Triphosphatases↗