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R P Novick

Publications and source records attributed to R P Novick.

At least 19 recordsLinked to original sources

Specificity of origin recognition by replication initiator protein in plasmids of the pT181 family is determined by a six amino acid residue element.

We have investigated the specificity of replication origin recognition by the initiator proteins of a set of six closely related Staphylococcus aureus plasmids, the pT181 family. These plasmids replicate by an asymmetric rolling-circle mechanism using plasmid-coded initiators that nick the replication origins and form a phosphotyrosine bond at the 5' nick terminus. Five of the plasmids are in different incompatibility groups and their initiator proteins do not cross-complement the cloned origins of any but their own plasmid. One pair is weakly incompatible and their initiator proteins and origins do cross-complement for replication in vivo. This pattern of cross-reactivity led to the prediction that the determinant of specificity would correspond to a homologously positioned set of six residues in the C-terminal domain of the protein, some 80 residues away from the active site tyrosine, that are divergent for all of the compatible plasmids and identical for the incompatible pair. Site-directed mutagenesis was used to exchange these six residues among three pairs of plasmids and these exchanges brought about the predicted switching of origin recognition specificity. Single substitution within this six residue set reduced or eliminated the activity of the protein but did not alter the origin recognition specificity. These six and flanking residues cannot form an amphipathic alpha-helix nor do they conform to the classical helix-turn-helix or other known DNA binding motifs. A novel type of interaction is suggested in which the protein binds to its recognition site, bends and melts the DNA, and causes or enhances the extrusion of an adjacent cruciform containing the nick site. This configuration would juxtapose the nicking target and the active site tyrosine residue and would unwind the highly G + C-rich replication origin.

Amino Acid Sequence

cis-inhibitory elements in the pT181 replication system.

We report here the existence of a pair of sequence elements in plasmid cointegrates that together block the function of pT181 plasmid replication origins in cis. The study is an outgrowth of the use of plasmid pE194 as a vector for the analysis of the pT181 replication system. We have observed that whereas the isolated pT181 replication origin is fully functional when cloned to pE194, it is inactive when the entire pT181 plasmid genome is cloned. This cis-inhibition is relieved by deletion of all or part of the pE194 palA element or of the pT181 countertranscript promoter. The inhibitory effect of pE194 palA is independent of distance and orientation, whereas the inhibitory effect of the countertranscript promoter is lost when the promoter is moved to a distance of 1.5 kb from the replication origin or inverted in situ. We found that the cis-inhibited pT181 origin expresses origin-specific (Inc3B) incompatibility, which involves competition for the initiator protein. This finding suggests that the cis-inhibited origin binds the initiator protein and therefore that the inhibition affects a step in the initiation process subsequent to initiator binding.

Base Sequence

Nucleotide sequences and biologic properties of toxic shock syndrome toxin 1 from ovine- and bovine-associated Staphylococcus aureus.

Toxic shock syndrome toxin (TSST) 1 was purified from ovine (TSST-ovine) and bovine (TSST-bovine) mastitis-associated Staphylococcus aureus. These toxins were previously reported to have molecular weights identical to that of human TSST-1. However, TSST-ovine was reported as having an isoelectric point (pI) of 8.5, whereas TSST-bovine has the same pI (7.2) as TSST-1. Nucleotide sequence analysis revealed that TSST-bovine was identical to TSST-1 and that TSST-ovine had 14 nucleotide differences that changed 9 amino acid residues. Only 1 nucleotide difference, at position 514, was predicted to cause an amino acid charge difference, as glutamic acid at position 132 of TSST-1 was changed to lysine in TSST-ovine. Like TSST-1, TSST-ovine was mitogenic, but unlike TSST-1, it was not pyrogenic, was unable to enhance endotoxic shock, and was unable to induce TSS in a rabbit model. Also, TSST-ovine was less reactive to certain monoclonal antibodies raised against TSST-1.

Amino Acid Sequence

Effect of glycerol monolaurate on bacterial growth and toxin production.

Glycerol monolaurate (GML) is a naturally occurring surfactant that has potential use as an additive to tampons and wound dressings to reduce the incidence of certain bacterial toxin-mediated illnesses. In vitro studies were undertaken to evaluate the effect of GML on the growth of and toxin production by potentially pathogenic bacteria. GML inhibited the growth of clinical isolates of group A, B, F, and G streptococci at concentrations of 10 to 20 micrograms/ml. Exotoxin production, including that of pyrogenic exotoxins and hemolysins, was reduced by concentrations of GML that were below those inhibitory for growth as well as growth inhibitory. The growth of Staphylococcus aureus strains from patients with toxic shock syndrome and scalded skin syndrome was inhibited or delayed in the presence of 100 to 300 micrograms of GML per ml. Growth inhibition by GML could be overcome by the production of lipase. S. aureus elaboration of hemolysin, toxic shock syndrome toxin 1, and exfoliative toxin A was inhibited at GML concentrations below those necessary to inhibit growth. Results similar to those for S. aureus were obtained in tests of S. hominis. Escherichia coli growth and Salmonella minnesota growth were unaffected by GML, but an S. minnesota Re mutant was susceptible to growth-inhibitory activity. Endotoxin release into the medium from E. coli cells was also unaffected by GML, but the release or activity of E. coli hemolysin was increased by GML. Streptococcal pyrogenic endotoxin A production by an E. coli clone was not affectd by GML. These studies indicate that GML is effective in blocking or delaying the production of exotoxins by pathogenic gram-positive bacteria.

Glycerides

Glucose and nonmaintained pH decrease expression of the accessory gene regulator (agr) in Staphylococcus aureus.

The effect of glucose on accessory gene regulator (agr) expression in Staphylococcus aureus was examined. agr is a global regulator that affects the expression of numerous genes, including those for some factors implicated in virulence, such as toxic shock syndrome toxin 1, alpha-hemolysin, and protein A. The agr locus determines two divergent transcripts, designated RNAII and RNAIII. RNAII contains four open reading frames (agrABCD), and RNAIII encodes delta-hemolysin. The mechanisms responsible for agr-mediated regulation are not well understood, but it appears that the RNAIII transcript plays a central role in the regulation of a number of target genes, including those for alpha-hemolysin (hla), beta-hemolysin (hlb), protein A (spa), and staphylococcal enterotoxin B (seb+). In this study, S. aureus cultures were grown either in a shake flask system with a complex medium or in a fermentor system with a completely defined medium in which the pH and glucose concentration were maintained. Northern (RNA) blot analysis revealed that a dramatic reduction in agr expression was apparent only when the cultures contained glucose and when the pH was 5.5 or was not maintained. The effect of glucose on two agr target genes, sec+ and hla, was also studied. Glucose-containing cultures produced less sec+ and hla mRNAs at maintained pH (6.5). In addition, the glucose effect on sec+ and hla was enhanced under conditions that inhibited agr expression (i.e., pH 5.5 or a nonmaintained pH).

Fermentation

A temporal signal, independent of agr, is required for hla but not spa transcription in Staphylococcus aureus.

Staphylococcus aureus exoprotein expression is controlled by a global regulon known as agr. This system activates transcription of some target genes and represses transcription of others. Target genes expressed postexponentially such as alpha-hemolysin (hla) are activated by agr; target genes expressed during exponential phase such as protein A (spa) are repressed by agr. A unique feature of the agr system is that this transcriptional regulation is mediated by a 517-nucleotide transcript, RNAIII. While it is clear that agr differentially regulates the expression of exponential and postexponential exoproteins, the precise role of agr in the temporal control of these events has not yet been explored. In this report, we examine the effects of expressing RNAIII, the agr regulator, under the control of the inducible beta-lactamase (bla) promoter at different times in the growth cycle. We confirm previous results showing that agr is required for postexponential-phase expression of hla and further show that a separate postexponential-phase signal independent of agr function is also needed for activation of hla transcription. We also show that in an agr mutant transcription of spa occurs throughout the growth cycle, is inhibited immediately upon induction of RNAIII, and is thus indifferent to the postexponential signal required for hla activation.

Bacterial Toxins

Mutational and physiological analyses of plasmid pT181 functions expressing incompatibility.

Plasmid pT181 is a small multicopy plasmid from Staphylococcus aureus that belongs to incompatibility group 3 and expresses two distinct types of incompatibility, Inc3A and Inc3B. Inc3A incompatibility is expressed by the primary replication control determinant, copA, which specifies two small transcripts, RNA I and RNA II, that jointly inhibit the synthesis of the rate-limiting initiator protein, RepC. Inc3B incompatibility is expressed by the leading strand replication origin and is due to competition for RepC. The copA region from each of 11 different pT181 copy number mutants was cloned onto the pT181-compatible vector, pE194, and tested for its ability to inhibit the replication of pT181 and its copy number mutants. The pT181 replication origin was also cloned and tested for its ability to inhibit the replication of the same plasmids. In general copA mutations that alter the production or sequence of RNA I and RNA II greatly reduced or completely eliminated Inc3A activity. Unlike the wild-type, all of the copy mutants were resistant to Inc3B inhibition. The separately cloned wild-type copA and ori regions each reduced the copy number of pT181 in proportion to their gene dosage, but neither blocked replication completely. It is proposed that the cloned Inc determinants cause incompatibility by interfering with the plasmid's copy correction mechanism; this interference destabilizes the plasmid even under conditions where its average copy number is not greatly reduced.

Bacterial Proteins

Physical mapping of Staphylococcus aureus penicillinase plasmid pI524: characterization of an invertible region.

The staphylococcal penicillinase plasmid pI524 and a series of derivatives have been extensively mapped by restriction endonuclease digestion and by heteroduplex analysis. We report here the identification of a 2.2 kb region that undergoes a reversible, rec-independent inversion. This sequence is bounded by a pair of inverted repeats 650 base pairs in length, and has asymmetrically located recognition sites for at least three restriction endonucleases. A series of deleted derivatives and one naturally occurring, closely related plasmid, were studied. Two of these retain the inversion; the remainder are incapable of inverting and were all found to be locked in the same orientation of the inversion. The invertible sequence is adjacent to the region of the plasmid encoding beta-lactamase (bla); this entire region appears to be transposable and the inversion may be involved in the regulation of beta-lactamase expression or in translocation.

DNA Restriction Enzymes

Nomenclature of transposable elements in prokaryotes.

Transposable elements are defined as specific DNA segments that can repeatedly insert into a few or many sites in a genome. They are classified as simple IS elements, more complex Tn transposons and self-replicating episomes. Definitions and nomenclature rules for these three classes of prokaryotic transposable elements are specified.

Cells

Genetic translocation in Staphylococcus aureus.

A 5.2-kilobase pair transposon, Tn551, has been found in Staphylococcus aureus, a Gram-positive bacterium. Initially detected on plasmid pI258, it undergoes rec-independent transposition to multiple chromosomal and plasmid sites, sometimes causing insertional inactivation. Unlike most other transposons, Tn551 undergoes apparently precise excision as a rule. The initial observation of Tn551 transition involved UV inactivation of the carrier plasmid; this would appear to be a general means of detecting transposable elements.

Chromosome Deletion

Translocatable elements in Staphylococcus aureus.

The properties of the first translocatable element in Gram-positive bacteria, a 5.2 kb segment encoding erythromycin resistance in S. aureus, are described. This element translocates from plasmid to multiple chromosomal sites and from chromosome to multiple plasmid sites, sometimes causing insertional inactivation and deletion. The genetic control of translocation and its role in natural plasmid evolution are discussed and preliminary evidence for translocation of penicillin and chloramphenicol resistance is presented. In the latter case, translocation involves in intact plasmid.

Chloramphenicol