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The overproduction of DNA terminase of coliphage lambda.

An artificial operon containing the genes coding for the two subunits of lambda DNA terminase, Nul and A, has been constructed. Derivatives of plasmid pBR322 served as the cloning vehicles. The transcription is driven by the pL promoter of phage lambda, and translation of the terminase genes was made efficient by the replacement of the wild-type ribosome-binding sites for those of lambda genes cII and/or D. The operon also carries the oL operator, and this enables regulation of its expression by a thermosensitive repressor. The synthesis of genes Nul and A products is extremely efficient upon derepression. Within 40 min after induction of the operon, the two subunits comprise about 20% of the total cellular protein mass. Crude extracts prepared from these overproducing strains are at least 100 times more active than extracts prepared from induced lambda lysogens in both promotion of lambda DNA packaging and cosmid cleaving. The ability to produce highly concentrated terminase would enormously facilitate the study of its structure and mechanism of action. These extracts are also extremely useful in techniques such as lambda DNA packaging, cosmid mapping and cosmid linearization to improve efficiency of integration into mouse eggs.

Bacteriophage lambda↗

Coliphage lambda to terminator lowers the stability of messenger RNA in Escherichia coli hosts.

The effects of the transcription terminators to and tfd on the overall high-level expression of a human interferon-beta gene (IFN-beta) in Escherichia coli hosts were compared. Deletion mapping shows that mRNA lability is caused by sequences at or near the lambda terminator to stem-loop structure. Extensive RNA secondary structure in this region indicates a potential RNase III cleavage/binding site. In RNase III- E. coli hosts, IFN-beta synthesis is indeed considerably enhanced. The bacteriophage tfd terminator does not confer this mRNA labilization phenomenon. In all cases, RNA level and stability correlate with the level of IFN-beta synthesized in the cell. In the system described, ongoing translation stabilizes mRNA only moderately.

Bacteriophage lambda↗

Antisense RNA does not significantly affect expression of the galK gene of Escherichia coli or the N gene of coliphage lambda.

The effect of antisense RNA on the expression of genes galK and N was studied in vivo. These two genes were either present in the Escherichia coli chromosome, as single copies, or were cloned on plasmid vectors. Antisense RNA was supplied from multicopy vectors where the entire galK or N gene, or only their N-proximal portions, were cloned in the antisense orientation downstream from the strong PL, PR or lacZp promoters. In all of the experiments there was no significant inhibition of the galK or N expression by up to a 50-fold excess of the specific antisense RNAs, for both the in cis and in trans experimental designs. The excess of the antisense RNA was calculated as based on respective copy numbers, but was not experimentally measured. The apparent five-fold regulatory effect observed in one of the experiments was found to be artifactually caused by unexpected creation of a terminator in one of our constructs. To avoid such artifacts, all our constructs were equipped with the nut-N antitermination system. We conclude that the reported antimessenger-mediated inhibition of gene expression is not a general phenomenon, but must require some special features which are not present in the galK and N systems.

Bacteriophage lambda↗

Expression vector with two-step control by the cI-pR-Q-p'R-qut-t'R module of coliphage lambda.

A plasmid expression vector (pCEQ3), using temperature-regulated transcription from the p'R promoter of bacteriophage lambda, has been constructed. The vector is derived from pBR327 in which the EcoRI-ClaI fragment of plasmid DNA is replaced with a 2.2-kb DNA module cI857-pR-Q-p'R-qut-t'R, consisting of two regions of the lambda genome. The first region contains the repressor gene cI857 and promoter pR; the second one contains gene Q and the late promoter p'R. When the repressor protein, product of the cI857 gene, becomes temperature-inactivated, it allows the promoter pR to initiate the transcription of the Q gene. The product of the Q gene, in turn, acts as a positive regulator of transcription from promoter p'R. The promoter activity of pR is fully repressed at a low temperature (30 degrees C) and transcription from p'R is terminated in the absence of Q gene product, but the shift of temperature up to 37 degrees C is sufficient to make the transcription from the p'R promoter highly active. Foreign genes can be inserted into the single EcoRI site downstream from the p'R promoter. The resultant constructions express extremely high levels of the cloned gene product in Escherichia coli.

Bacteriophage lambda↗

Physical and biological consequences of interactions between integration host factor (IHF) and coliphage lambda late p'R promoter and its mutants.

The integration host factor (IHF) binds to a site (ihf) that overlaps the -35 region of the phage lambda late rightward promoter (p'R). This interaction represses p'R-promoted transcription, both in vivo and in vitro. In vivo repression was observed when a plasmid carrying both p'R and the galK reporter gene was transfected into IHF+ or IHF- hosts. In vitro repression of transcription by IHF was observed only with linear, but not with supercoiled wild-type p'R templates. When binding to ihf, IHF imposes a strong bend on the DNA and protects this site from cleavage by neocarzinostatin, pancreatic DNase I, and hydroxyl radicals, as assessed by footprinting experiments. Both the functional and nonfunctional p'R mutants, in which the upstream part of the -35 region was replaced by an EcoRI linker, show modified behavior toward IHF. Some are more sensitive to IHF-mediated repression, even in the supercoiled form, while others have lost their affinity for IHF. We conclude that IHF binding depends not only on the consensus ihf sequence, but also on a suitable combination of the sequences of both ihf and neighboring regions, together with the DNA conformation, which includes both natural and imposed bends in DNA and the degree of supercoiling. Based on most of the present data, it is difficult to predict the relationship between the ihf sequence and IHF interaction, since two very different sequences (less than 50% homology) show strong IHF binding, whereas very similar sequences (80-87% homology) show a very different behavior. However, the hydroxylradical footprinting data show that three A + T-rich sequences are protected by IHF: the central sequence, which overlaps the -35 region of p'R, and two flanking sequences removed by one helix turn. All three sequences are located on the same face of the helix, and the amino acid side chains of IHF seem to occupy the narrow minor groove. A novel consensus sequence is proposed.

Bacterial Proteins↗

Regulation of coliphage T3 and T7 RNA polymerases by the lac repressor-operator system.

The single-polypeptide RNA polymerases that are encoded by bacteriophage T7 and its relatives form the basis of highly specific and efficient transcription systems. Here, we describe the regulation of transcription from phage promoters by the lac repressor-operator system of Escherichia coli. A synthetic oligodeoxyribonucleotide that contains the core sequence of the lac operator (lacO) was cloned at various distances downstream from the transcription start point (tsp) of the T3 and T7 promoters. The ability of lac repressor to prevent transcription from the phage promoters in vitro was dependent on the position of the operator. Efficient repression was observed when the center of the operator was placed between +14 and +27 (+1 being the tsp), whereas the repressor had little effect when bound to operators centered at +64. For in vivo studies, the chloramphenicol acetyltransferase (CAT)-encoding reporter gene was placed under the control of various promoter-operator constructs, and introduced into bacterial cells containing the genes for the lac repressor and T3 or T7 RNA polymerase. As with in vitro studies, high levels of repression (greater than 4000-fold) of T3 and T7 RNA polymerase activity were achieved, and repression was reversed by the inducer isopropyl-beta-D-thiogalactopyranoside. When the T3 promoter-lacO constructs are used to regulate the expression of a target gene in combination with an inducible RNA polymerase gene under control of the lacUV5 promoter, the doubly regulated system provides extremely tight levels of repression, yet allows high levels of expression after induction. In such a system, we observed a greater than 10(5)-fold increase in CAT activity within 30 min after induction. This system should prove useful in cloning and expressing genes that are potentially toxic to the host cells.

Base Sequence↗

Isolation and characterization of DNA fragments containing the dihydrofolate-reductase gene of coliphage T4.

DNA of a mutant of the bacteriophage T4, which contains cytosine instead of glucosylated hydroxymethylcytosine, was shown to direct the synthesis of enzymatically active dihydrofolate reductase in a coupled in vitro transcription-translation system. The DNA-directed synthesis of the enzyme was used to localize the dihydrofolate-reductase gene frd on a 2300 bp long restriction-nuclease-generated DNA fragment. Fine structure mapping showed that the gene is encoded on a segment of less than 1850 bp but more than 700 bp length. The enzyme, which is synthesized in vitro from the DNA fragment, has a molecular weight of 18 500 to 19 500. A restriction map was constructed which extends about 10 kb to both sides of the reductase gene and which covers the T4 genome between the genes 55 and 63. The two genes which flank the frd gene, genes 32 and td (thymidylate synthetase), were mapped in detail. A correlation between the physical and genetic maps was established.

Chromosome Mapping↗

Chromosome rearrangements induced by recombinant coliphage lambda placMu.

Operon fusions to lacZ, commonly used to study bacterial gene expression in vivo, are normally constructed using phage derivatives such as lambda placMu53 or Mud-1. These derivatives contain a part of trp operon, and we have found that, when integrated into the chromosome, recombination can occur at high frequency between this trp DNA and the chromosomal trp operon leading to chromosomal inversions which fuse lacZ to the trp promoter. Large segments of the chromosome can be inverted by such rearrangements and their occurrence can seriously complicate the isolation of regulatory mutations and other studies unless appropriate precautions are taken. This phenomenon provides a simple means of isolating inversions of defined chromosomal segments and determining the direction of transcription of some lacZ operon fusions.

Bacteriophage lambda↗

Transcriptional activation of the origin of coliphage lambda DNA replication is regulated by the host DnaA initiator function.

The initiator of phage lambda DNA replication, the lambda O protein, is considered to be an analogue of the initiator of DNA replication (DnaA) of its host, Escherichia coli. Both specifically recognize their origins of replication, ori lambda and oriC, respectively, and organize the assembly of specific replication complexes. However, DnaA has an additional activation function, acting on oriC-proximal DnaA-boxes, and regulating transcription initiated at promoters in and around oriC. Here, we demonstrate that lambda plasmid replication can be synchronized by a temperature shift-down that caused renaturation of the previously denatured DnaAts protein. Moreover, we show that elimination of the activating DnaA function affects transcriptional activation at ori lambda. DnaA may act by binding to DnaA-boxes, situated around the lambda pR promoter; there are no such sequences in ori lambda. Our results being to explain in molecular terms why lambda plasmid replication is DnaA-dependent [Kur et al., J. Mol. Biol. 198 (1987) 203-210] and why the initiation of phage lambda DNA replication is blocked (in E. coli devoid of prophage Rac) after inactivation of DnaA [Wegrzyn et al., Genetics (1995) in press].

Bacterial Proteins↗

Coliphage N4 N-acetylmuramidase defines a new family of murein hydrolases.

Escherichia coli phage N4 infection leads to delayed host cell lysis, 3000 particles per infected bacterium and a small plaque phenotype. We show that bacteriophage N4 encodes a murein hydrolase (gp61) that is essential for N4 plaque-forming ability. gp61 has a high level of sequence similarity to hypothetical proteobacterial proteins, and Vibrio harveyi phage VHML ORF 19. Nano-electrospray ionization (nESI) quadrupole ion trap (QIT) mass spectrometry (MS) analysis of muropeptides from purified gp61 digestion of E. coli peptidoglycan indicates that gp61 is an N-acetylmuramidase. The EGGY motif present near the N terminus of gp61 and its homologs contains the glutamic acid residue essential for enzymatic activity. These results provide evidence that N4 gp61 and its homologs define a new family of N-acetylmuramidases (pfam05838.4, DUF847, COG3926). In contrast to its homologs, gp61 contains an N-terminal signal sequence. When expressed at levels present during phage infection, gp61 localizes primarily to the cell inner membrane; in contrast, over-expression of recombinant N4 gp61 is sufficient for rapid cell lysis. Overproduction of the recombinant Salmonella typhimurium (STM0016) homolog is sufficient for cell lysis only when fused to the gp61 N-terminal signal sequence. The results of subcellular localization and of mutagenesis of the gp61 N-terminal signal sequence indicate that gp61 must be released from the inner membrane to be catalytically active.

Amino Acid Motifs↗

Role for DNA homology in site-specific recombination. The isolation and characterization of a site affinity mutant of coliphage lambda.

Site-affinity (or saf) mutations change the specificity of prophage insertion. We have isolated a saf mutation of the bacteriophage lambda attachment site by inserting the phage chromosome into and then excising it from a secondary host attachment site. This causes reciprocal exchange of two seven base-pair segments (the overlap regions) that lie within the cores of the two sites. Since the two overlap regions differ from each other in nucleotide sequence, the recombinant sites are mutants. We have determined the effect of overlap region homology on recombination. We found that homology promotes integrative and excisive recombination. This suggests that the two overlap regions interact directly during recombination. The pattern of segregation of the saf mutation during site-specific recombination shows that it lies to the right of the point of genetic exchange about 95% of the time. This is a surprising result because lambda integrative recombination normally occurs by two staggered, reciprocal single-strand exchanges, one at each edge of the overlap region (Mizuuchi et al., 1981). Since saf lies within the overlap region, we might have expected that the point of genetic exchange would occur to the left of saf as often as to the right. We offer two models to account for this. (1) The mutation alters the location of one of the single-strand exchange points. (2) Efficient and strand-specific processing of mismatched base-pairs changes the expected segregation pattern.

Attachment Sites, Microbiological↗

A bacterial virulence determinant encoded by lysogenic coliphage lambda.

Although phage lambda represents a well studied biological systems, it has certain features that remain obscure. Among these is the function of the roughly one third of the phage genome dispensable for growth in the laboratory, yet retained despite undoubted pressure to economize. Here we report that these 'accessory' sequences contain two genes which are expressed during lysogeny, and encode host-cell envelope proteins. One of these is lom, the product of which is found in the bacterial outer membrane, and is homologous to virulence proteins of two other enterobacterial genera. The other gene, previously unidentified, we designate bor. Expression of bor significantly increases the survival of the Escherichia coli host cell in animal serum. This property is a well known bacterial virulence determinant--indeed, bor and its adjacent sequences are highly homologous to the iss serum resistance locus of the plasmid ColV2-K94, which confers virulence in animals. These results show that the lambda prophage is more transcriptionally active than has long been assumed, and suggest that lysogeny may generally have a role in bacterial survival in animal hosts, and perhaps in pathogenesis.

Alkaline Phosphatase↗

Endonuclease II of coliphage T4: a recombinase disguised as a restriction endonuclease?

EndoII shares with restriction endonucleases the property of cleaving foreign DNA while leaving the endonuclease-encoding genome intact, ensuring the survival of one DNA species in the cell. In addition, in vivo EndoII cleaves a specific DNA sequence and cleavage is context dependent. These context effects extend over at least 1000 bp, largely limiting cleavage to once within this distance. Like homing endonucleases, in vivo EndoII recognizes a long, asymmetric and degenerate consensus sequence which has two distinct parts. Recognition of one part of the consensus sequence involves base-specific bonds, and recognition of the other involves sequence-dependent helical structure. EndoII fulfills an obvious short-term survival role in ensuring the dominance of phage DNA in an infected cell, but may also have a long-term evolutionary role, producing gene-size fragments of foreign DNA to be enrolled in the phage genetic repertoire.

Bacteriophage T4↗

Functional and genetic analysis of regulatory regions of coliphage H-19B: location of shiga-like toxin and lysis genes suggest a role for phage functions in toxin release.

Analysis of the DNA sequence of a 17 kb region of the coli lambdoid phage H-19B genome located the genes encoding shiga-like toxin I (Stx-I) downstream of the gene encoding the analogue of the phage lambda Q transcription activator with its site of action, qut at the associated pR' late promoter, and upstream of the analogues of lambda genes encoding lysis functions. Functional studies, including measurement of the effect of H-19B Q action on levels of Stx expressed from an H-19B prophage, show that the H-19B Q acts as a transcription activator with its associated pR'(qut) by promoting readthrough of transcription terminators. Another toxin-producing phage, 933W, has the identical Q gene and pR'(qut) upstream of the stx-II genes. The H-19B Q also activates Stx-II expression from a 933W prophage. An ORF in H-19B corresponding to the holin lysis genes of other lambdoid phages differs by having only one instead of the usual two closely spaced translation initiation signals that are thought to contribute to the time of lysis. These observations suggest that stx-I expression can be enhanced by transcription from pR' as well as a model for toxin release through cell lysis mediated by action of phage-encoded lysis functions. Functional studies show that open reading frames (ORFs) and sites in H-19B that resemble components of the N transcription antitermination systems controlling early operons of other lambdoid phages similarly promote antitermination. However, this N-like system differs significantly from those of other lambdoid phages.

Amino Acid Sequence↗

Folding of coliphage T4 short tail fiber in vitro. Analysing the role of a bacteriophage-encoded chaperone.

The morphogenesis of the Escherichia coli bacteriophage T4 depends on the presence of helper proteins which are not components of the mature virion. Two bacteriophage-encoded proteins, p57 and p38, are required for the assembly of the bacteriophage T4 tail fibers. In the absence of p57, two polypeptides of the long fiber (p34 and p37) and that of the short tail fiber (p12) fail to trimerize. Instead they form water-insoluble aggregates. Co-expression of the genes 12 and 57 in vivo caused the formation of only trimeric, water-soluble p12. The function of g57 cannot be replaced by overexpression of the host proteins GroEL/ES or parvulin. The mechanism of action of this helper protein has remained unknown, mainly because it has not been possible to determine its activity in vitro. Purified p12, denatured in 7 M urea, trimerized spontaneously in a slow reaction (half-time approximately 6 h) and with low yield. Upon renaturation, p12 forms native SDS-resistant trimers as indicated by spectroscopic and hydrodynamic measurements. Addition of p57 increased the rate of folding threefold and nearly doubled the yield. These experiments demonstrate that p57 acts as a molecular chaperone during folding of T4 tail fibers.

Bacteriophage T4↗