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Structure and inherent properties of the bacteriophage lambda head shell. V. Amber mutants in gene E.

A total of 940 amber mutants in gene E of bacteriophage lambda was isolated to study the structure-function relationship of the gene product, the major capsid protein. The mutants were mapped to 43 mutation sites, most of which have been located, albeit tentatively, at exact points in the known base sequence, by deletion mapping and by the specificity of mutagenesis and the patterns of suppression. The patterns of suppression were interpreted in terms of both the efficiency of insertion of amino acid residues by suppressors and the exchangeability of amino acid residues. The exchangeability seems to be related to the hydrophilicity of the residues themselves and their environment, as well as to the functional similarity between the replaced and the inserted amino acid residues. Suppression of two of the mutations resulted in the production of characteristic aberrant head-related structures, each showing a defect in a different functional site in the protein. This, together with the approximate positions of some specific missense mutations as determined in this study, revealed the distribution of the functional sites along the polypeptide chain of the gene E product.

Amino Acid Sequence↗

The in vitro ATPases of bacteriophage lambda terminase and its large subunit, gene product A. The relationship with their DNA helicase and packaging activities.

The bacteriophage lambda terminase is composed of two subunits, gpNu1 and gpA. In vitro, the holoenzyme is a site-specific endonuclease, helicase, ATPase, and can package lambda DNA into proheads. gpA possesses ATPase and helicase activities which are similar to those of the holoenzyme. Both terminase and gpA can hydrolyze a wide range of deoxyribo- and ribonucleoside triphosphates to inorganic phosphate and the corresponding diphosphate. Nucleoside diphosphates are not substrates for either protein. ATPase of both proteins is stimulated by double-stranded DNA. The ATPase of gpA is protein concentration-dependent, while that of terminase is not. Helicase activity of both proteins is not concentration-dependent, and requires a hydrolyzable triphosphate. ATP, dATP, and GTP supported helicase activity, while adenosine 5'-(beta, gamma-methylene)triphosphate, adenosine 5'-3-O-(thio)triphosphate, ADP, CTP, and UTP did not. The kinetic parameters of ATPase and helicase activities were similar for both proteins, but packaging with terminase was optimal only at a significantly higher level of ATP. Packaging was detectable at significant levels with CTP and UTP, but not with GTP. Packaging also differed from ATPase and helicase in the utilization of divalent metal cations and susceptibility to various inhibitors.

Adenosine Triphosphatases↗

A dominant mutation in the bacteriophage lambda S gene causes premature lysis and an absolute defective plating phenotype.

The S and R genes of the bacteriophage lambda are required for lysis of the host. R encodes 'endolysin', a soluble transglycosylase which accumulates in the cytoplasm during late protein synthesis. S encodes a 'holin', a small membrane protein which, at a precisely scheduled time, terminates the vegetative cycle by forming a lethal lesion in the membrane through which gpR gains access to the peptidoglycan. A missense allele of S, Ala52Gly, causes lysis to occur prematurely at about 19-20 min after induction of a lysogen, compared to 45 min for the wild type. This allele has a severe plaque-forming defect which appears to be entirely a consequence of the early lysis and resultant severe reduction in particle burst size. The early-lysis phenotype is dominant and is aggravated, in terms of an even more reduced burst size, at both 30 degrees C and 42 degrees C. The mutation maps in the middle of a putative membrane-spanning helical domain of S, near the sites of other S- mutations with recessive non-lytic phenotypes. The mutation has no effect on S-protein accumulation or on the ratio of S107 and S105 products in the membrane. The mutation appears to affect the intrinsic timing function by which the S protein controls the lysis schedule.

Alleles↗

In vitro comparison of initiation properties of bacteriophage lambda wild-type PR and x3 mutant promoters.

The in vitro initiation properties of the PR promoter of bacteriophage lambda and of a PR mutant, x3, were compared. Using the abortive initiation reaction, we measured the lags in the approach to a final steady-state rate when dinucleotide synthesis was initiated with RNA polymerase. These lags corresponded to the average times required for the formation of transcriptionally active open complexes. By measuring the lags at different RNA polymerase concentrations, we could separate open complex formation into two steps, based on a simple model in which the initial bimolecular association of free promoter and polymerase in a closed complex is followed by an isomerization to the open complex. The contribution of each step to the overall rate of open complex formation was quantitated for both promoters. We found that the x3 mutation, which is located in the -35 region of PR, resulted in a decrease in the association constant for the initial binding to the closed complex to 5% of its wild-type value and a decrease in the rate of the isomerization to 20%. The lifetimes and abortive initiation characteristics of the mutant and wild-type promoters were similar. We concluded that the main effect of the x3 mutation was to increase the average time of open complex formation and that the functional properties of the open complexes did not differ significantly between the two promoters.

Bacteriophage lambda↗

Terminase host factor: a histone-like E. coli protein which can bind to the cos region of bacteriophage lambda DNA.

Terminase Host Factor (THF), an E. coli protein capable of fulfilling the host factor requirement for in vitro bacteriophage lambda terminase activity, displays properties characteristic of the prokaryotic type II DNA-binding or "histone-like" proteins. It is a 22 K basic, heat- and acid-stable protein which binds non-specifically to various DNAs. Conditions can be established, however, where THF binds preferentially to the cohesive end site (cos) of lambda DNA forming several distinct complexes as visualized by band retardation in polyacrylamide gels. DNase I footprinting reveals that THF can protect several regions of the top strand on the right side (+) of cos but does not bind as well to the left side (-). The binding regions are separated either by unprotected or by DNase I- hypersensitive bases. Under the conditions used in these experiments, DNA which does not contain cos lambda sequences does not show this pattern of protection. Several repeated motifs in the cos lambda nucleotide sequence may represent a consensus sequence for THF interaction. THF may be similar to other "histone-like" proteins which display both non-specific and selective DNA-binding capacities.

Bacteriophage lambda↗

The lom gene of bacteriophage lambda is involved in Escherichia coli K12 adhesion to human buccal epithelial cells.

The role of the lom gene of bacteriophage lambda in adhesion of Escherichia coli to human buccal epithelial cells (HBC) was studied testing the adherence of lamda lom+ and lambda lom::TnphoA E. coli lysogens. lambda lom+ prophage increased 50% E. coli adhesion. This effect was not observed with lambda lom::TnphoA. These results suggest that the normal Lom protein participates directly in adhesion or regulates the synthesis of other protein(s), which may be involved in adhesion.

Adult↗

Role of R loops in recA-independent homologous recombination of bacteriophage lambda.

We have previously shown that the DNA-dependent RNA polymerase of Escherichia coli can promote homologous recombination of bacteriophage lambda independently of the recA function. To detect this recombination, we jointly infected the cells with a pair of lambda phages in the presence of chloramphenicol, extracted intracellular lambda DNA molecules, packaged them in vitro, and measured the number of resulting recombinant phage particles. We showed that the recombination of DNA molecules takes place in vitro after extraction of DNA from the cells. We fractionated recombinogenic forms of intracellular lambda DNA and showed that they carry RNA. These and other results suggest that the R (RNA) loop structures, generated by transcription within the cells, promote homologous recombination in vitro. We discuss possible mechanisms of this recombination and compare those with the other forms of general recombination.

Bacteriophage lambda↗

Evidence for the double-strand break repair model of bacteriophage lambda recombination.

We have obtained evidence for the repair of double-strand gaps promoted by the Red function of bacteriophage lambda. A double-strand gap was made in one of the two regions of homology in an inverted orientation on a plasmid DNA molecule. The gapped plasmid was introduced into Escherichia coli cells expressing the red alpha (exo) and red beta (bet) genes of lambda. The gap was repaired by DNA synthesis copying an intact duplex. This gap repair was sometimes accompanied by reciprocal recombination (crossing over). The gap stimulated recombination about 100-fold. Our results are compatible with previous proposals that lambda homologous recombination involves the following early steps: (i) generation of double-stranded ends by the packaging machinery or by the replication machinery; (ii) production of a single-stranded tail with a 3'-hydroxyl end by 5'----3' degradation by lambda exonuclease (red alpha gene product); (iii) pairing of the single-stranded tail with a complementary strand from a homologous duplex with the help of beta protein (red beta gene product); (iv) priming of DNA synthesis at this 3'-hydroxyl end to copy the second DNA molecule.

Bacteriophage lambda↗

Mapping missense and nonsense mutation in gene cI of bacteriophage lambda: marker effects.

Amber and missense mutations in gene cI of bacteriophage lambda were mapped by reciprocal four-factor crosses, selecting recombinants between the outside markers (N amber and O amber). Distances between cI missense mutations were additive. Several cI amber mutants recombined with other cI mutations with a higher frequency than expected from the map location. Multiple exchanges in the N-O region occurred at a frequency greater than expected by chance. This "high negative interference" was especially marked in crosses with the cI amber mutations that were strong recombiners. A new ind mutation, ind2, was found near tsU51, to the left of the previously-known ind1 mutation, which is located almost in the center of gene cI. The mutation c50 maps to the right of tsU50 and c71. Mutations c60, and ts71, which differ in phenotype, are apparently at the same site.

Chromosome Mapping↗

Transposition of R factor genes to bacteriophage lambda.

Transpositions of segments of R factor (antibiotic resistance plasmids) to bacteriophage lambda have been selected and characterized. Cells of Escherichia coli harboring R factors that determine kanamycin resistance were infected with phage lambda, and lambdakan transducing lines were obtained. Each of the three examined is unusual when compared to lambda transducing phages containing E. coli chromosomal genes: the kan insertions (a) occur at several sites, each well removed from the integration region POP', (b) are not associated with deletion of lambda phage DNA, and (c) are separable from the lambda genome during transduction or during lytic growth. Two insertions from the same R factor contain 1.5 kilobase sequences repeated in inverted order. The properties of the lambdakan phage suggest that R factors contain systems capable of mediating genetic exchange in the absence of extensive DNA homology. It is suggested that such systems of exchange may have played important roles in R factor evolution.

Chromosome Mapping↗

Determination of the endpoints of partial deletion mutants of the attachment site of bacteriophage lambda by DNA sequencing.

The deletion mutants b508 and b522 of bacteriophage lambda both end within the attachment site. The formation of such deletions is dependent upon the presence of intact integrase, and thus the deletion endpoints may be related to the normal crossover site in site-specific recombination. We have determined the DNA sequences of the attachment site regions of these deletions. Comparison of the sequences with lambda wildtype shows that both the deletions end within the central common homology region but at different positions. The consequences of these findings for current models of site-specific recombination are discussed.

Base Sequence↗

Bacteriophage lambda repressor allelic modulation of the Rex exclusion phenotype.

The sensitivity of delta red-gam delta ren mutants of bacteriophage lambda to Rex exclusion by lambda rexA+ rexB+ lysogens is modulated by the prophage cI repressor allele. We show the following: (i) lambda spi156 delta nin5 forms plaques on a cI+-rexA+-rexB+ lysogen with 10(5)-fold higher efficiency than on cI[Ts]-rexA+-rexB+ derivatives. (ii) The cI[Ts]857 allele augmentation of Rex exclusion is recessive to cI+. (iii) The cI857-mediated increase in Rex exclusion activity involves the participation of a genetic element mapping outside of cI-rexA-rexB.

Alleles↗

Bacteriophage lambda DNA fragments replicate in the Paramecium macronucleus: absence of active copy number control.

We show that bacteriophage lambda DNA fragments microinjected into the macronucleus of the ciliated protozoan Paramecium can replicate as unit-length linear molecules. These linear DNA molecules are substrates for the addition of Paramecium telomeres by an endogenous telomerase. The linear DNA pieces can exist at copy numbers much higher than that of typical endogenous macronuclear chromosomes. We show that the copy number of injected DNA many fissions after microinjection reflects that of the original input copy number, suggesting that active control of copy number does not occur. Instead, the results suggest that injected DNA is replicated once per cell division.

Animals↗

Structure of the cro repressor from bacteriophage lambda and its interaction with DNA.

The three-dimensional structure of the 66-amino acid cro repressor protein of bacteriophage lambda suggests how it binds to its operator DNA. We propose that a dimer of cro protein is bound to the B-form of DNA with the 2-fold axis of the dimer coincident with the 2-fold axis of DNA. A pair of 2-fold-related alpha-helices of the repressor, lying within successive major grooves of the DNA, seem to be a major determinant in recognition and binding. In addition, the C-terminal residues of the protein, some of which are disordered in the absence of DNA, appear to contribute to the binding.

Bacteriophage lambda↗

A comparison of the effects of single-base and triple-base changes in the integrase arm-type binding sites on the site-specific recombination of bacteriophage lambda.

Triple-base changes were made in each of the five Integrase (Int) arm-type binding sites of bacteriophage lambda. These triple changes, called ten mutants, were compared with single-base changes (hen mutants) for their effects on integrative and excisive recombination. The presence of ten or hen mutations in the P1, P'2, or P'3 sites inhibited integration, but the ten P'3 mutant was 10-fold more defective than the analogous hen mutant. The results with these mutants suggest that the P1, P'2, P'3, and possibly the P'1 sites are required for integration. In wild-type E. coli, the ten P'1 mutant reduced the frequency of excision 5-fold, whereas the hen P'1 mutant had no effect. The presence of ten mutations in the P2, P'1, or P'2 sites inhibited lambda excision in an E. coli strain deficient in the production of FIS, while hen mutations in the P2 and P'2 sites had little or no effect. The results with the ten mutants suggest that the P2, P'1, and P'2 sites are required for excision. The differences in the severity of the effects between the ten and hen mutations may be due to the inability of cooperative interactions among Int, IHF, Xis, and FIS to overcome the disruption of Int binding to sites with triple-base changes compared to sites with single-base changes.

Attachment Sites, Microbiological↗

Novel bacteriophage lambda cloning vector.

A simple method for generating phage collections representing eukaryotic genomes has been developed by using a novel bacteriophage lambda vector, lambda 1059. The phage is a BamHI substitution vector that accommodates DNA fragments 6-24 kilobases long. Production of recombinants in lambda 1059 requires deletion of the lambda red and gamma genes. The recombinants are therefore spi- and may be separated from the spi+ vector phages by plating on strains lysogenic for bacteriophage P2. Random fragments suitable for insertion into lambda 1059 are obtained by partial digestion of high molecular weight eukaryotic DNA with Sau3a. This restriction enzyme cleaves at the sequence G-A-T-C and leaves a 5'-tetranucleotide "sticky end." Because G-A-T-C extensions are also produced by BamHI cleavage, these fragments may be annealed directly to BamHI-cleaved lambda 1059. By using these methods, a set of clones covering the entire Caenorhabditis elegans genome was constructed. DNA segments which include the unc-54 myosin heavy chain gene have been isolated from this collection.

Animals↗

Endonuclease and helicase activities of bacteriophage lambda terminase: changing nearby residue 515 restores activity to the gpA K497D mutant enzyme.

Terminase, the DNA packaging enzyme of bacteriophage lambda, is a heteromultimer of gpNu1 and gpA subunits. In an earlier investigation, a lethal mutation changing gpA residue 497 from lysine to aspartic acid (K497D) was found to cause a mild change in the high-affinity ATPase that resides in gpA and a severe defect in the endonuclease activity of terminase. The K497D terminase efficiently sponsored packaging of mature lambda DNA into proheads. In the present work, K497D terminase was found to have a severe defect in the cohesive end separation, or helicase, activity. Plaque-forming pseudorevertants of lambda A K497D were found to carry mutations in A that suppressed the lethality of the A K497D mutation. The two suppressor mutations identified, A E515G and A E515K, affected residue 515, which is located near the putative P-loop of gpA. A codon substitution study of codon 515 showed that hydrophobic and basic residues suppress the K497D defect, but hydrophilic and acidic residues do not. The E515G change was demonstrated to reverse the endonuclease and helicase defects caused by the K497D change. Moreover, the gpA K497D E515G enzyme was found to have kinetic constants for the high-affinity ATPase center similar to those of the wild type enzyme, and the endonuclease activity of the K497D E515G enzyme was stimulated by ATP to an extent similar to the ATP stimulation of the endonuclease activity of the wild type enzyme.

Amino Acid Sequence↗

Revisiting the lysogenization control of bacteriophage lambda. Identification and characterization of a new host component, HflD.

Upon infection to the Escherichia coli cell, the genome of bacteriophage lambda either replicates to form new progenies (lytic growth) or integrates into the host chromosome (lysogenization). The lambda CII protein is a key determinant in the lysis-lysogeny decision. It is a short-lived transcription activator for the lambda genes essential for lysogeny establishment. In this study, we isolated a new class of hfl (high frequency lysogenization) mutants of E. coli, using a new selection for enhancement of CII-stimulated transcription. The gene affected was termed hflD, which encodes a protein of 213 amino acids. An hflD-disrupted mutant indeed showed an Hfl phenotype, indicating that HflD acts to down-regulate lysogenization. HflD is associated peripherally with the cytoplasmic membrane. Its interaction with CII was demonstrated in vitro using purified proteins as well as in vivo using the bacterial two-hybrid system. Pulse-chase examinations demonstrated that the HflD function is required for the rapid in vivo degradation of CII, although it interfered with FtsH-mediated CII proteolysis in an in vitro reaction system using detergent-solubilized components. We suggest that HflD is a factor that sequesters CII from the target promoters and recruits it to the membrane where the FtsH protease is localized.

Bacteriophage lambda↗