PubMed Health⌕ Search

Biomedical subjects

M A McIntosh

Publications and source records attributed to M A McIntosh.

48 records · Page 3Linked to original sources

Physical and genetic characterization of cloned enterobactin genomic sequences from Escherichia coli K-12.

We have cloned genes responsible for enterobactin synthesis (entD) and transport (fepA,fes) from Escherichia coli K-12. Relevant recombinant plasmids enabled EntD- and transport-defective mutants to grow on iron-limiting medium. Subcloning and deletion analysis demonstrated that the gene order is entD-fepA-fes. Protein synthesis studies in minicells suggest that FepA is first translated as an Mr 84 000 precursor, which is subsequently cleaved to the active Mr 81 000 receptor; the fes gene product is an Mr 44 000 protein; no polypeptide has been identified as the entD gene product.

Bacterial Outer Membrane Proteins↗

Selective detection of Mycoplasma hyorhinis using cloned genomic DNA fragments.

A 13-kilobase DNA fragment from a genomic library of Mycoplasma hyorhinis demonstrated specific Southern hybridization and dot hybridization when tested against a group of different mycoplasmas. This probe selectively recognized M. hyorhinis sequences in purified DNA, broth-grown organisms, and infected cell cultures, providing a direct method for differential detection of this species.

Base Sequence↗

Species-specific detection of Mycoplasma hyorhinis using DNA probes.

Two specific DNA fragments from a genomic library of Mycoplasma hyorhinis demonstrated species-specific Southern and dot hybridization using a panel of different mycoplasmas. These probes selectively recognized M. hyorhinis sequences in purified DNA, broth-grown organisms, and infected cell cultures, providing a direct method for differential detection of this mycoplasma species without prior purification of the organism.

Cloning, Molecular↗

Cloned genomic DNA sequences from Mycoplasma hyorhinis encoding antigens expressed in Escherichia coli.

A library of cloned Mycoplasma hyorhinis genomic sequences was constructed by incorporation of EcoRI digestion fragments of mycoplasma DNA into the lambda Charon 4A bacteriophage vector. Immunological screening of recombinant phage plaques identified clones containing genes encoding mycoplasma antigenic structures expressed in an Escherichia coli host. Two such recombinant phage isolates, lambda Ch4A-MhrG1 and lambda Ch4A-MhrG28, were defined and found to contain distinct genomic sequences by analysis of restriction endonuclease fragments. Inoculation of mice with recombinant gene products from lambda Ch4A-MhrG1 yielded antiserum selectively recognizing a Mr 29,500 trypsin-sensitive mycoplasma constituent. This established a means for producing selected immunogenic mycoplasma component in a bacterial host. The cloned genomic sequences of M. hyorhinis encoding expressed mycoplasma antigens represent molecular probes that can be characterized both by specific DNA sequences and by the antigenic structure of corresponding gene products. These genomic fragments define initial physical markers of the M. hyorhinis genome and may be useful in assessing antigenic and molecular genetic relationships within the genus Mycoplasma and among other members of the class Mollicutes.

Antibodies↗

Regulation of enterobactin iron transport in Escherichia coli: characterization of ent::Mu d(Apr lac) operon fusions.

The vector Mu d(Apr lac) was utilized to construct operon fusions in the Escherichia coli enterobactin (ent) biosynthetic and transport genes. Enzyme assays indicated a 5- to 15-fold increase in the expression of beta-galactosidase when the fusion strains were grown under iron-deficient conditions. The polarity effects seen by Mu d insertions into entA, entC, and entE were consistent with a single operon, entA(CGB)E. The direction of transcription from iron-regulated promoters was determined by directional transfer of selected genetic markers after the insertion of F'ts114 lac+. Regulatory mutants were isolated in the fusion strains by the selection for constitutive expression of beta-galactosidase and the iron-regulated outer membrane proteins.

Biological Transport↗

Kinetics of biosynthesis of iron-regulated membrane proteins in Escherichia coli.

Using biological iron chelators to control specifically iron availability to Escherichia coli K-12 in conjunction with radioactive pulse-labels, we examined the biosynthesis of six iron-regulated membrane proteins. Iron deprivation induced the synthesis of five proteins, which had molecular weights of 83,000 (83K), 81K (Fep), 78K (TonA), 74K (Cir), and 25K. The kinetics of induction were the same in entA and entA(+) strains, but were affected by the initial iron availability in the media. Iron-poor cells induced rapidly (half-time, 10 min), whereas iron-rich cells began induction after a lag and showed a slower induction half-time (30 min). Within this general pattern of induction after iron deprivation, several different kinetic patterns were apparent. The 83K, 81K, and 74K proteins were coordinately controlled under all of the conditions examined. The 78K and 25K proteins were regulated differently. The synthesis of a previously unrecognized 90K inner membrane protein was inhibited by iron deprivation and stimulated by iron repletion. Both ferrichrome and ferric enterobactin completely repressed 81K and 74K synthesis when the siderophores were supplied at concentrations of 5 muM in vivo (half-time, 2.5 min). At concentrations less than 5 muM, however, both siderophores repressed synthesis only temporarily; the duration of repression was proportional to the amount of ferric siderophore added. The half-lives of the 81K and 74K mRNAs, as measured by rifampin treatment, were 1.2 and 1.6 min, respectively. The results of this study suggest that enteric bacteria are capable of instantaneously detecting and reacting to fluctuations in the extracellular iron concentration and that they store iron during periods of iron repletion for utilization during periods of iron stress. Neither iron storage nor iron regulation of envelope protein synthesis is dependent on the ability of the bacteria to form heme.

Bacterial Proteins↗

Coordinate regulation by iron of the synthesis of phenolate compounds and three outer membrane proteins in Escherichia coli.

The biosynthesis of the low-molecular-weight iron carrier enterochelin and of three outer membrane polypeptides appears to be coordinately regulated by the amount of cell-associated iron in Escherichia coli K-12. Measurements of iron acquisition made throughout the growth cycle in iron-deficient media indicate that a very rapid accumulation of iron occurs in the first 2 h of growth; there is comparatively little iron uptake during exponential growth, which results in a gradual decrease in the cellular iron content with each generation. When this level falls below 400 ng of iron per mg (dry weight) of cells, there is a simultaneous onset of synthesis of the three outer membrane polypeptides and of enterochelin. This coordinate regulation was also observed in cells able to transport iron actively using only citrate as an iron-carrier.

Bacterial Proteins↗

Effect of ribonuclease on the association of deoxyribonucleic acid with the membrane in Escherichia coli.

The Mg-2+-Sarkosyl crystals (M band) procedure was used to study the effect of ribonuclease (RNase) A on the association of Escherichia coli deoxyribonucleic acid (DNA) with membrane. Incubation of gently prepared cell extracts with RNase results in the release of DNA from membrane. This effect appears to result from the activation, by RNase, of endonuclease I and subsequent limited activity of this deoxyribonuclease. In support of this explanation, it is demonstrated (i) that the extent of the RNase-induced loss of DNA from membrane is directly correlated with the endogenous level of endonuclease I, and (ii) that endonucleolytic activity occurs when gently lysed cell preparations are incubated in the presence of RNase.

Cell Membrane↗

Role of iron in microbe-host interactions.

The ability of microorganisms that would like to live in or on mammalian hosts to acquire iron is a critical determinant of the host-parasite interaction. Despite the abundance of iron, its availability to microbes is restricted by the iron-binding and transport systems of the host. The successful commensal or pathogen therefore must express effective systems to compete for its iron. The acquisition of iron is thus essential, although not sufficient, for virulence. This review examines host and microbial iron-acquisition and transport mechanisms in an attempt to stimulate the reader's interest in potential "soft spots" that may be exploited prophylactically and therapeutically.

Animals↗