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Temperature-mediated regulation and downstream inducible selection for controlling gene expression from the bacteriophage lambda pL promoter.

We have examined in detail the effects of various induction temperatures on the expression of a heterologous fusion gene controlled by the bacteriophage lambda PL promoter in a heat-inducible Escherichia coli expression system which utilizes the CIts857 repressor. Experiments performed over a temperature range spanning 29-42 degrees C indicate that, under our conditions, temperatures as low as 29 degrees C may be required to fully repress the CI857-controlled transcription from PL, and that the highest protein yields are obtained after induction at 36 degrees C for 6 h. We cloned the cat reporter gene downstream from a heterologous gene controlled by PL and found that cat expression at a low induction temperature permits the monitoring of productive transcription through the heterologous gene and thus aids in selecting transformants that are capable of producing the heterologous protein in E. coli.

Bacteriophage lambda↗

Characterization of the bacteriophage lambda excisionase (Xis) protein: the C-terminus is required for Xis-integrase cooperativity but not for DNA binding.

We have performed a mutational analysis of the xis gene of bacteriophage lambda. The Xis protein is 72 amino acids in length and required for excisive recombination. Twenty-six mutants of Xis were isolated that were impaired or deficient in lambda excision. Mutant proteins that contained amino acid substitutions in the N-terminal 49 amino acids of Xis were defective in excisive recombination and were unable to bind DNA. In contrast, one mutant protein containing a leucine to proline substitution at position 60 and two truncated proteins containing either the N-terminal 53 or 64 amino acids continued to bind lambda DNA, interact cooperatively with FIS and promote excision. However, these three mutants were unable to bind DNA cooperatively with Int. Cooperativity between wild-type Xis and Int required the presence of FIS, but not the Int core-type binding sites. This study shows that Xis has at least two functional domains and also demonstrates the importance of the cooperativity in DNA binding of FIS, Xis and Int in lambda excision.

Amino Acid Sequence↗

Q-mediated late gene transcription of bacteriophage lambda: RNA start point and RNase III processing sites in vivo.

The location of the RNA start point of in vivo Q-activated late gene RNA of bacteriophage lambda has been determined to be identical to the start point of in vitro 6 S RNA. The 6 S RNA is made early in infection and is efficiently antiterminated by Q. Two RNase III cut sites are located within Q-dependent RNA sequences, 209 and 270 bp from the beginning of the late transcript, and lie on the stem of an inverted repeat which has features in common with previously described RNase III processing sites. This is the third example of RNase III cut sites immediately downstream of transcription termination points in lambda, the others being antiterminated N gene mRNA and int gene mRNA.

Bacteriophage lambda↗

Nucleotides regulate the conformational state of the small terminase subunit from bacteriophage lambda: implications for the assembly of a viral genome-packaging motor.

Terminase enzymes are responsible for "packaging" of viral DNA into a preformed procapsid. Bacteriophage lambda terminase is composed of two subunits, gpA and gpNu1, in a gpA(1).gpNu1(2) holoenzyme complex. The larger gpA subunit is responsible for preparation of viral DNA for packaging, and is central to the packaging motor complex. The smaller gpNu1 subunit is required for site-specific assembly of the packaging motor on viral DNA. Terminase assembly at the packaging initiation site is regulated by ATP binding and hydrolysis at the gpNu1 subunit. Characterization of the catalytic and structural interactions between the DNA and nucleotide binding sites of gpNu1 is thus central to our understanding of the packaging motor at the molecular level. The high-resolution structure of the DNA binding domain of gpNu1 (gpNu1-DBD) was recently determined in our lab [de Beer, T., et al. (2002) Mol. Cell 9, 981-991]. The structure reveals the presence of a winged-helix-turn-helix DNA binding motif, but the location of the ATPase catalytic site in gpNu1 remains unknown. In this work, nucleotide binding to the gpNu1-DBD was probed using acrylamide fluorescence quenching and fluorescence-monitored ligand binding studies. The data indicate that the minimal DBD dimer binds both ATP and ADP at two equivalent but highly cooperative binding sites. The data further suggest that ATP and ADP induce distinct conformations of the dimer but do not affect DNA binding affinity. The implications of these results with respect to the assembly and function of a terminase DNA-packaging motor are discussed.

Acrylamide↗

Analysis of a mutation affecting the specificity domain for prohead binding of the bacteriophage lambda terminase.

Genetic studies have identified a specificity domain for prohead binding in the C-terminal 32 amino acids of gpA, the large subunit of bacteriophage lambda terminase (S. Frackman, D. A. Siegele, and M. Feiss, J. Mol. Biol. 180:283-300, 1984). In the present work, an amber mutation, Aam42, in the fifth-to-last codon of the A gene was found to be lethal in nonsuppressing hosts. The mutation, expected to generate gpA lacking the last five amino acids, caused the production of a terminase that cut cos efficiently both in vivo and in vitro but was defective in DNA packaging. lambda Aam42 lysates contained unused proheads, consistent with a defect in prohead binding. Aam42 terminase was more strongly dependent than wild-type terminase on gpFI, the catalyst of prohead binding. Like wild-type terminase, Aam42 terminase did not cut cos in vivo when prohead assembly was blocked by a mutation in one of the genes encoding the prohead.

Bacteriophage lambda↗

Is the bacteriophage lambda lysozyme an evolutionary link or a hybrid between the C and V-type lysozymes? Homology analysis and detection of the catalytic amino acid residues.

The relationship between the bacteriophage lambda lysozyme (lambda L) and the C and V-type lysozymes has been investigated by sequence alignment, secondary structure prediction and pattern recognition methods. The alignment of the amino terminal part of lambda L with that of V-type lysozymes suggests that Glu19 is a residue essential for catalysis. Its mutation to Gln leads to a completely inactive enzyme. In the alignment of the sequence of lambda L with those of the C-type lysozymes a strongly homologous fragment of about 30 amino acid residues is detected. Taking into consideration this observation and the published structural alignments between C and V-type lysozymes, a repetition of the beta-sheet motif in lambda L is proposed. The multiple alignment draws the attention to a possible catalytic role for Asp34 that would be positioned in the middle of the second strand of the beta-sheet as in the C-type lysozymes. This role is confirmed by mutagenesis. The implications of these observations in terms of the evolutionary relationship between lambda L and the other lysozymes is discussed.

Amino Acid Sequence↗

[Structure of the recombination zone during abnormal excision of the transducing bacteriophage lambda plac9].

Investigating molecular mechanism of illegitimate recombinations in prokaryote we study transducing bacteriophages of the lambda lac series. We have carried out physical mapping of bacteriophage lambda plac9 DNA and, by comparing the obtained results with the data on the structure of lambda DNA and lac operon of E. coli, located the phage-bacterial junction corresponding to the lambda-lac9 abnormal excision and elucidated the nucleotide sequence around the junction. It led to the primary structure of phage and bacterial segments in the lysogenic bacterium which took part in the recombinational act leading to the abnormal excision and lambda lac9 formation. Structural homology of the partners in the lambda plac9 excision proved to be lower than in case of the earlier studied lambda plac5 and lambda plac10 whose excision proceeded regioselectively. Various aspects of the crossover area, including the crossover point's probable position and enzymic systems participating in the abnormal excision, are discussed.

Bacteriophage lambda↗

[The Z-form of bacteriophage lambda DNA, modified in situ].

Using the methods of chemical modification, restriction analysis and immune-electron microscopy it has been shown that the definite regions of the bacteriophage lambda DNA contain unpaired bases in situ. The distribution map of such sites along the genome has been constructed. The correlation of the in situ modification and the reaction with anti-Z-DNA antibodies is shown for the 44972 bp site of bacteriophage DNA. The possibility of the existence of Z-form DNA in situ is discussed.

Bacteriophage lambda↗

What makes the bacteriophage lambda Red system useful for genetic engineering: molecular mechanism and biological function.

Recent studies have generated interest in the use of the homologous recombination system of bacteriophage lambda for genetic engineering. The system, called Red, consists primarily of three proteins: lambda exonuclease, which processively digests the 5'-ended strand of a dsDNA end; beta protein, which binds to ssDNA and promotes strand annealing; and gamma protein, which binds to the bacterial RecBCD enzyme and inhibits its activities. These proteins induce a 'hyper-rec' state in Escherichia coli and other bacteria, in which recombination events between DNA species with as little as 40 bp of shared sequence occur at high frequency. Red-mediated recombination in the hyper-rec bacterium proceeds via a number of different pathways, and with the involvement of different sets of bacterial proteins, depending in part on the nature of the recombining DNA species. The role of high-frequency double-strand break repair/recombination in the life cycle of the lambdoid phages is discussed.

Bacteriophage lambda↗

A bacteriophage lambda DNA purification procedure suitable for the analysis of DNA from either large or multiple small lysates.

A method for the efficient preparation of high quality bacteriophage lambda DNA from cleared lysates is described. Advantages of the method include high DNA yields (typically around 0.8 micrograms of DNA/1 ml of cleared lysate), speed of processing (approximately 2 h from lysate to DNA), economy, and the absence of any requirement for phenol or chloroform extractions. The technique involves the concentration of phage particles by standard polyethylene glycol precipitation followed by enzymatic treatment to remove contaminating RNA and DNA. Phage particles are then lysed with sodium dodecyl sulfate (SDS) at elevated pH and temperature. Contaminating protein/SDS complexes are rendered insoluble by the addition of potassium acetate and removed by centrifugation. The quality of the resultant DNA is comparable to that prepared by cesium chloride banding for all standard molecular biological purposes providing that spermidine is included in all restriction endonucleases digestions.

Acetates↗

The in vitro endonuclease activity of gene product A, the large subunit of the bacteriophage lambda terminase, and its relationship to the endonuclease activity of the holoenzyme.

The reaction requirements and kinetic properties of the in vitro endonuclease activity of the bacteriophage lambda terminase and its large subunit, gene product (gp) A, have been analyzed. Optimal cleavage reaction activity for both proteins requires Mg2+, a pH between 8.5 and 9.0, and is enhanced by ATP or ATP analogs. Under these conditions both terminase and gpA generate aberrant nicks in and around cosN. Optimal nicking specificity of terminase is observed under conditions of 50-100 mM salt, 5 mM spermidine, 1.5 mM ATP, and a pH between 7.0 and 7.5. Specific activity of terminase is greatly reduced under these conditions, and gpA is completely inactive at all protein concentrations tested. Under optimal reaction conditions, gpA endonuclease activity differs from that of the holoenzyme in that it can only be detected at high concentrations, is strongly protein concentration-dependent, and can not be stimulated by the Escherichia coli protein integration host factor. Addition of purified gpNu1 partially, but not completely, minimized these differences, suggesting that the role of gpNu1 in the holoenzyme is to modulate the basal endonuclease of gpA.

Bacteriophage lambda↗

High level expression of porcine growth hormone in Escherichia coli from an expression vector containing bacteriophage lambda PL and N gene untranslated region.

An Escherichia coli expression vector, pG408N containing a PL promoter and the upstream untranslated region of the N gene of bacteriophage lambda has been constructed. We have designed a PvuII site immediately behind the untranslated region. A DNA fragment starting with an initiation codon ATG could be inserted into this site for expression. This vector also contains 7 additional cloning sites downstream from the PvuII site. A gene could be cloned into one of these sites and the 5' sequence of this gene could be modified with synthetic oligonucleotides and ligated to the PvuII for the purpose of increasing gene expression. We have also cloned the lambda cl gene into a p15A plasmid. Cotransformation of this plasmid with the expression vector allows the cloning vector pG408N to be used in any E. coli strain. Using this system, we were able to express porcine growth hormone to approximately 35% of total proteins in E. coli DH5 alpha.

Animals↗

Direction of bacteriophage lambda DNA replication in a thymine requiring Escherichia coli K-12 strain. Effect of thymidine concentration.

The direction of replication was established for the first round of bacteriophage lambda DNA replication in thymine requiring E. coli K-12 cells exposed to different concentrations of thymidine. It was found that a dramatic decrease in the proportion of bidirectionally replicating molecules followed a decrease in the concentration of thymidine. Moreover, the rightward mode of replication appears to be exclusively favored in unidirectionally replicating molecules found at low concentrations of thymidine.

Bacteriophage lambda↗

Site-specific recombination in bacteriophage lambda: structural analyses of reactive DNA sequences.

Site-specific integrative recombination in bacteriophage lambda involves unequal partners. The minimal phage att site is composed of approximately 240 base pairs and has four distinct Int binding sites that differ in size and response to heparin challenge. There appear to be two size classes of Int binding sites, approximately 30-35 base pairs and 15 base pairs. The sites at the common core and in the P' arm are of the former class. Two sites in the P arm are of the latter class. Thus far, three of the four sites have been shown to be necessary for att site function. In contrast, the minimal sequence required for a phage att site partner (such as the bacterial att site) may not be much larger than the 15 base pair common core. We have suggested a model in which integrative recombination involves two unequal partners; accordingly the phage att site is referred to as the "donor" and the bacterial att site, or its analogue, is referred to as the "recipient."

Bacteriophages↗

Structure of the bacteriophage lambda cohesive end site: location of the sites of terminase binding (cosB) and nicking (cosN).

The extents of the sites for nicking (cosN) and binding (cosB) of bacteriophage lambda DNA by terminase have been determined by studying cos cleavage and terminase binding in vitro. The cosN site is located in the segment from -22 to +24 bp (numbered from the center of the cohesive end sequence in the circular lambda genome). The cosB site is located in the segment from +51 to +120 (the +120 boundary determined by Miwa and Matsubara, 1983). Additional sequences are necessary for packaging into infectious phage particles, including regions to the left (Rz gene side) of cosN, and between cosN and cosB. Small deletions (7 and 11 bp) between cosN and cosB abolish packaging in vivo without affecting cos binding and cleavage in vitro, whereas a large deletion (26 bp) abolishes packaging in vivo and cleavage in vitro.

Bacteriophage lambda↗

E.coli cell-cycle regulation by bacteriophage lambda.

We re-examined the old but surprising claim of Kourilsky and Knapp that transient expression of genes located downstream of the p(L) promoter of bacteriophage lambda can induce cell-cycle synchrony in a population of Escherichia coli cells. Although we were unable to reproduce a lasting synchrony, a cessation of division, followed by one or two fairly synchronous cell divisions was observed. This line up of the cell cycle was found to be due to two genetically separable events: a temporary block of cell division and, at the same time, a block to the initiation of new rounds of DNA replication. These blocks then release after about one mass doubling so that chromosome replication and cell division occur during a short time interval in all the cells in the population. The cell division block is a result of the transient expression of the lambda kil gene. The block to initiation of DNA replication requires a region that we term bin (blocks initiation) immediately upstream of the xis gene. The region consists of ea22 and ea8.5 and two small open reading frames (ORFs) that flank them. Deletion-substitution mutagenesis suggests that all four ORFs may be required for the initiation block. The ability of the phage to modify two aspects of the host cell cycle presumably reflects a stratagem that provides the phage with an advantage for lysogeny or lytic growth.

Bacterial Proteins↗

A map of the restriction targets in yeast 2 micron plasmid DNA cloned on bacteriophage lambda.

The 2 micron circular DNA from S. cerevisiae has been cloned on bacteriophage lambda. The two forms of circular DNA which exist in equilibrium due to recombination between inverted repeat sequences were separated as stable clones, and a map of targets for restriction endonucleases EcoRI, HindIII and HpaI was constructed. The circular DNAs isolated from a particular oligomycin resistant strain and its parent oligomycin snesitive strain were compared by restriction endonuclease analysis, and no difference was detected. The potential uses of cloned 2 micron DNA in determining the possible biological role of these plasmids are considered.

Coliphages↗