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Biomedical subjects

S R Kushner

Publications and source records attributed to S R Kushner.

At least 19 recordsLinked to original sources

Role of the heat shock response in stability of mRNA in Escherichia coli K-12.

The heat shock response in Escherichia coli involves extensive induction of the heat shock proteins, with the concomitant suppression of the synthesis of the non-heat shock proteins. While the induction of the heat shock proteins has been shown to occur primarily at the transcriptional level, the suppression of non-heat shock proteins is poorly understood. We have investigated the possibility that an increased decay of non-heat shock mRNAs is a means of decreasing the synthesis of non-heat shock proteins during the heat shock response. Heat shock response-defective strains were compared with wild-type controls by several criteria to evaluate both mRNA stability and the induction of enzymes known to be involved in mRNA turnover. Our results indicate that increased mRNA decay is not a mechanism used to regulate the synthesis of non-heat shock proteins.

Bacterial Proteins

Analysis of the altered mRNA stability (ams) gene from Escherichia coli. Nucleotide sequence, transcriptional analysis, and homology of its product to MRP3, a mitochondrial ribosomal protein from Neurospora crassa.

The product of the altered mRNA stability (ams) gene of Escherichia coli is involved in decay of mRNA. The complete nucleotide sequence of a 4-kilobase BamHI restriction fragment containing the ams coding sequence was determined. Transcription of the ams gene was analyzed by high resolution S1 mapping. A promoter was found with a homology score of 58% 361 nucleotides upstream from the start codon of ams. The ams structural gene consists of an open reading frame of 2,445 nucleotides. The protein predicted from this open reading frame has a molecular mass of 91,327 Da, which is significantly smaller than that determined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis analysis. Confirmation of the ams coding sequence was obtained by comparing the predicted amino acid sequence with that derived by amino-terminal analysis of gel-purified Ams protein. The predicted protein sequence of the ams gene was screened against translations of the GenBank DNA sequence data base. A homology of 18% over a region of 315 amino acids of the carboxyl terminus of the Ams product was found to MRP3, a mitochondrial ribosomal protein from Neurospora crassa. A smaller region of homology (29% in 86 residues) was found to the human U1 small nuclear ribonucleoparticle 70,000-Da protein.

Amino Acid Sequence

The Ams (altered mRNA stability) protein and ribonuclease E are encoded by the same structural gene of Escherichia coli.

The in vitro and in vivo analysis of the ribonuclease E-deficient (rne-) and the altered mRNA stability protein-deficient (ams-) strains of Escherichia coli has demonstrated that they carry mutations in the same structural gene. Strains encoding either thermolabile RNase E (rne-3071) or Ams protein (ams-1) are defective in both rRNA processing and mRNA turnover. Immediately after a shift to the nonpermissive temperature, the chemical decay rate of bulk mRNA is slowed 2- to 3-fold, and within 70 min, precursors to 5S rRNA begin to accumulate. In addition, all of the phenotypes associated with either the rne-3071 or the ams-1 alleles were complemented by a recombinant plasmid carrying ams+. When taken together with previous genetic studies, these results suggest that the role of ribonuclease E in mRNA turnover involves endonucleolytic cleavages at the proposed ACAG(A/U)AUUUG consensus sequence.

Bacterial Proteins

The role of the 'gearbox' in the transcription of essential genes.

Regulation of transcription occurs at different levels, one being in the presence of sequences specifically recognized by different forms of RNA polymerase, i.e. the promoters. Three different kinds of promoter are defined according, among other things, to their dependence on the growth rate of the cell: the 'house-keeper' promoter of many metabolic genes, the stringent promoter found at several rRNA and ribosomal protein genes, and the 'gearbox' at genes whose products are required at higher relative amounts at lower growth rates. The identified gearbox promoters of Escherichia coli share specific homologies in the -10, -35 and upstream regions. Although there may be different types of gearbox promoters, the -10 sequence of one of these promoters has been found to be essential for functioning as a gearbox. This suggests the existence of specific sigma factors for its transcription. RpoS (KatF) is a likely candidate for being one of these sigma factors. Computer simulation allows us to predict that such sigma factors should, in turn, be expressed following a gearbox mode, which would then imply the existence of self-regulated loops contributing to the expression of some genes of bacterial division.

Base Sequence

Construction and analysis of deletions in the structural gene (uvrD) for DNA helicase II of Escherichia coli.

DNA helicase II, the product of the uvrD gene, has been implicated in DNA repair, replication, and recombination. Because the phenotypes of individual uvrD alleles vary significantly, we constructed deletion-insertion mutations in the uvrD gene to determine the phenotype of cells lacking DNA helicase II. Deletion mutants completely lacking the protein, as well as one which contains a truncated protein retaining the ATP-binding site, remained viable. However, they were sensitive to UV light and exhibited elevated levels of homologous recombination and spontaneous mutagenesis. In addition, mutations mapping in or near rep which allow construction of rep uvrD double mutants at a high frequency were isolated.

Adenosine Triphosphatases

Extracellular release of protease III (ptr) by Escherichia coli K12.

Escherichia coli strains carrying the protease III structural gene (ptr) on a plasmid secreted the protein into the growth medium. Plasmid-encoded beta-lactamase and chloramphenicol acetyl transferase, which served as periplasmic and cytoplasmic markers during cell fractionation, were not released into the growth medium. There appeared to be some strain dependence on the proficiency of the secretion system. Protease III was not detectably processed upon export through the outer cell membrane.

Blotting, Western

Construction of versatile low-copy-number vectors for cloning, sequencing and gene expression in Escherichia coli.

Using the polymerase chain reaction and standard recombinant DNA techniques, a series of new multipurpose low-copy-number (lcn) vectors, pWSK29, pWKS30, pWKS129 and pWKS130, have been constructed. Plasmids pWSK29 and pWKS30 carry the ampicillin-resistance marker (ApR), 20 unique cloning sites flanked by T7 and T3 RNA polymerase promoters, the lacZ alpha gene and the bacteriophage f1 origin of replication (ori) for production of single-stranded (ss) DNA in the presence of a helper phage. Plasmids pWSK129 and pWKS130 carry the kanamycin-resistance marker (KmR) and have 16 unique cloning sites flanked by T7 and T3 RNA polymerase promoters positioned within the lacZ alpha gene. Plasmids pWSK129 and pWKS130 also contain the f1 ori for the generation of ss DNA in the presence of a helper phage. All of the plasmids have an lcn of six to eight per cell. Each vector can be used for: (i) complementation analysis, (ii) generating unidirectional deletions with exonuclease III/S1 nuclease, (iii) DNA sequencing, (iv) high-level gene expression using T7 RNA polymerase, and (v) run-off transcription. They are very useful for analyzing genes encoding proteins which are toxic in Escherichia coli in high copy number.

Ampicillin Resistance

Biochemical and physical characterization of exonuclease V from Escherichia coli. Comparison of the catalytic activities of the RecBC and RecBCD enzymes.

Biochemical evidence is presented that confirms exonuclease V of Escherichia coli consists of three distinct subunits encoded by the recB, recC, and recD genes. The recD gene encodes a Mr 60,000 polypeptide and physically maps 3' to the recB structural gene. The role of the recD subunit in exonuclease V function has been examined by comparing the catalytic activities of the purified RecBCD enzyme with the RecBC enzyme. The RecBC enzyme retains significant levels of DNA-dependent ATPase activity and DNA helicase activity. Endonucleolytic activity on single-stranded covalently closed DNA becomes ATP-dependent. Exonucleolytic activity on either single- and double-stranded DNA was not detected. Taken together with the phenotypic properties of recD null mutants, it appears that the exonucleolytic activities of the RecBCD enzyme are not required for genetic recombination and the repair of either UV-induced photoproducts or mitomycin C-generated DNA cross-links, but are essential for the repair of methyl methanesulfonate-induced methylation.

Adenosine Triphosphatases

Isolation and characterization of a new temperature-sensitive polynucleotide phosphorylase mutation in Escherichia coli K-12.

Polynucleotide phosphorylase (PNPase) has been studied in detail since its discovery in 1955 [1]. In an attempt to determine what role, if any, it has in mRNA decay in Escherichia coli, we have isolated and characterized a temperature-sensitive mutation, pnp-200, in the pnp gene. In vitro phosphorolysis, polymerization and exchange activities of the partially purified Pnp-200 enzyme are all reduced to 30-40% of wild-type activity at 50 degrees C compared to 32 degrees C. The pnp-200 mutation alone does not affect cell growth or mRNA stability. A triple mutant strain containing pnp-200 in combination with other temperature-sensitive mutations in genes known to affect mRNA metabolism (rnb-500 and ams-1) is conditionally lethal and shows increased mRNA stability after shift to the non-permissive temperature.

Escherichia coli

Induction of a growth-phase-dependent promoter triggers transcription of bolA, an Escherichia coli morphogene.

The bolA gene, which is involved in the morphogenetic pathways of Escherichia coli, was sequenced and two potential promoters were identified. Expression from promoter P1, proximal to the bolA structural gene is specifically induced during the transition to the stationary phase of growth. This promoter contains an unusual--10 region (CGGCTAGTA), which defines a new class of E. coli promoters necessary for the dramatic increase in the rate of synthesis of a large set of proteins during the cessation of logarithmic growth. This conclusion was confirmed by identifying two additional E. coli promoters and one plasmid promoter, which also were induced during the transition to the stationary phase of growth. Analysis of proteins produced during the exponential and stationary phases of growth in a bolA null mutant suggest a possible role for the BolA protein in the induction of the expression of penicillin-binding protein 6 (PBP6) in the transition to the stationary phase. Supporting this hypothesis is the presence of a putative DNA-binding domain within the bolA coding sequence.

Amino Acid Sequence

Identification and genetic mapping of the structural gene for an essential Escherichia coli membrane protein.

Attempts to isolate conditionally lethal recB and recC mutations of Escherichia coli K-12 by P1 localized mutagenesis led to the identification of the structural gene for an essential membrane protein. Located on a 1.5-kilobase-pair DNA fragment which physically mapped immediately 5' to the thyA gene, the product of the umpA (unidentified membrane protein) gene is a 25,000 Mr membrane-associated polypeptide. These results provide an explanation for why several research groups have been unable to obtain chromosomal deletions of the entire thyA gene. A possible interaction between the umpA and thyA genes is also discussed.

Escherichia coli

Cloning of the altered mRNA stability (ams) gene of Escherichia coli K-12.

A temperature-sensitive mutation in the ams gene of Escherichia coli causes an increase in the chemical half-life of pulse-labeled RNA at the nonpermissive temperature. Using lambda clones containing DNA fragments from the 23- to 24-min region on the E. coli chromosome, we have isolated a 5.8-kilobase DNA fragment which, when present in a low-copy-number plasmid, complements the conditional lethality and increased mRNA stability associated with the ams-1 mutation. The approximate initiation site and the direction of transcription of the ams gene were determined from the size of truncated polypeptides produced by Tn1000 insertions and Bal 31 deletions. Overexpression of the ams locus by using a T7 RNA polymerase-promoter system permitted the identification of an ams-encoded polypeptide of 110 kilodaltons.

Blotting, Southern

New method for generating deletions and gene replacements in Escherichia coli.

We describe a method for generating gene replacements and deletions in Escherichia coli. The technique is simple and rapid and can be applied to most genes, even those that are essential. What makes this method unique and particularly effective is the use of a temperature-sensitive pSC101 replicon to facilitate the gene replacement. The method proceeds by homologous recombination between a gene on the chromosome and homologous sequences carried on a plasmid temperature sensitive for DNA replication. Thus, after transformation of the plasmid into an appropriate host, it is possible to select for integration of the plasmid into the chromosome at 44 degrees C. Subsequent growth of these cointegrates at 30 degrees C leads to a second recombination event, resulting in their resolution. Depending on where the second recombination event takes place, the chromosome will either have undergone a gene replacement or retain the original copy of the gene. The procedure can also be used to effect the transfer of an allele from a plasmid to the chromosome or to rescue a chromosomal allele onto a plasmid. Since the resolved plasmid can be maintained by selection, this technique can be used to generate deletions of essential genes.

Chromosome Deletion

Transcript mapping using [35S]DNA probes, trichloroacetate solvent and dideoxy sequencing ladders: a rapid method for identification of transcriptional start points.

A simple method for RNA transcript mapping has been developed that combines the use of 35S-labeled M13 DNA probes and the presence of high concentrations of sodium trichloroacetate in the hybridization buffer. These hybridization conditions permit the use of M13 probes without purification from the template. The dideoxy sequencing ladders used for sizing the protected DNA fragments are obtained from the same M13 templates utilized to synthesize the DNA probes. The method was tested by analyzing the transcripts controlled by lac, ptr and trxA promoters. Comparison of the results with previously published data obtained with the conventional S1 nuclease mapping technique indicated that the present method is just as precise and at least 50 times more sensitive. Clones constructed for sequencing a gene of interest can be used directly to identify transcriptional start points.

Base Sequence

CLONING: a microcomputer program for cloning simulations.

A comprehensive computational tool is presented that performs cloning simulations using IBM PC/XT/AT or compatible microcomputers. The CLONING program contains a specific data base for restriction sites, gene markers, fragment sources and reference comments. It draws complete linear or circular maps either on the screen or employing conventional dot-matrix printers. The design of new recombinant molecules is a totally interactive process.

Cloning, Molecular

Instructions for the CLONING program.

These instructions for CLONING were developed to assist the user in understanding the operation of the program [Aldea and Kushner, Gene 65 (1988) 111-116]. The program provides a computational tool that performs cloning simulations using IBM PC/XT/AT or compatible microcomputers. The design of new recombinant molecules is a totally interactive process.

Cloning, Molecular

Generation of a detailed physical and genetic map of the ilv-metE-udp region of the Escherichia coli chromosome.

The entire ilv-metE-udp region of the Escherichia coli chromosome has been cloned in two steps using the lambda replacement vector EMBL4. A detailed restriction map for approximately 70 X 10(3) bases of DNA has been generated. The gpp and udp structural genes have been identified, the cya and metE genes have been physically located, and the direction of recQ gene transcription has been determined. By examining a variety of plasmid subclones, 44 polypeptides have been detected using maxicell and minicell analysis, accounting for 70% of the maximum coding capacity of the entire region. On the basis of the observed gene density in the ilv-metE-udp region, a total number of 3000 genes is predicted for the entire E. coli chromosome. In addition, anomalies in cotransduction frequencies that have been observed in this region have been interpreted by employing a new formula that incorporates the effects of different transducing fragment representations and recombination probabilities.

Autoradiography

Stabilization of discrete mRNA breakdown products in ams pnp rnb multiple mutants of Escherichia coli K-12.

The degradation of mRNA in Escherichia coli is thought to occur through a series of endonucleolytic and exonucleolytic steps. By constructing a series of multiple mutants containing the pnp-7 (polynucleotide phosphorylase), rnb-500 (RNase II), and ams-1 (altered message stability) alleles, it was possible to study general mRNA turnover as well as the degradation of specific mRNAs. Of most interest was the ams-1 pnp-7 rnb-500 triple mutant in which the half-life of total pulse-labeled RNA increased three- to fourfold at the nonpermissive temperature. RNA-DNA hybridization analysis of several specific mRNAs such as trxA (thioredoxin), ssb (single-stranded-DNA-binding protein), uvrD (DNA helicase II), cat (chloramphenicol acetyltransferase), nusA (N utilization substance), and pnp (polynucleotide phosphorylase) demonstrated two- to fourfold increases in their chemical half-lives. A new method for high-resolution Northern (RNA) analysis showed that the trxA and cat mRNAs are degraded into discrete fragments which are significantly stabilized only in the triple mutant. A model for mRNA turnover is discussed.

Blotting, Northern