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Biomedical subjects

M Cannon

Publications and source records attributed to M Cannon.

At least 109 records · Page 6Linked to original sources

Systemic Herpesvirus hominis in pregnancy.

Primary genital herpesvirus infection occurring in late gestation may provide the portal of entry for systemic infection. This report describes the clinical events and pathologic findings of lethal disseminated herpetic infection after a primary genital lesion in late gestation and reviews the physiologic changes of pregnancy that may cause the failure of normal defenses against the systemic spread of the virus.

Adult↗

Resistance to the aminoglycoside antibiotic neamine in Escherichia coli. A new mutant whose NeaR phenotype results from the cumulative effects of two distinct mutations.

A spontaneous mutant of Escherichia coli (strain AB2847), selected for resistance to the aminoglycoside antibiotic neamine, shows severe restriction of amber suppressors in vivo. Ribosomes isolated from the mutant exhibit only low misreading in vitro in the presence of the antibiotic. Genetic and biochemical analyses indicate that the neamine-resistant phenotype is the result of two distinct mutations. The first, res3128, appears to affect the gene (strA) coding for the ribosomal protein S12. Although it leads to a restrictive phenotype it does not, however, confer resistance to streptomycin. The second mutation, X3128, is located between the sirA and AROB loci and is lethal when segregated from the res3128 mutation. It may affect the ribosome at the level of a post-translational modification.

Drug Resistance, Microbial↗

Structural requirements for the inhibitory action of 12,13-epoxytrichothecenes on protein synthesis in eukaryotes.

1. The inhibitory actions of ten trichothecene antibiotics were investigated, in reticulocyte cell-free systems synthesizing protein in vitro, by studying polyribosome profiles and kinetics of amino acid incorporation in the presence or absence of the drugs. 2. The modes of action observed were critically dependent on the drug concentrations used, but the antibiotics tested could be divided into four distinct groups, each exerting a characteristic inhibitory response. 3. The inhibitory action observed in every case was controlled by the chemical structure of the individual trichothecene and in particular was closely related to the nature of the substituent groups present on C-3, C-4, C-8 and C-15 of the molecule.

Animals↗

Competition between trichodermin and several other sesquiterpene antibiotics for binding to their receptor site(s) on eukaryotic ribosomes.

1. Of the five sesquiterpene antibiotics tested and found to inhibit protein synthesis in yeast spheroplasts, trichothecin, trichodermol or trichodermin stabilized polyribosomes whereas, in contrast, verrucarin A or T-2 toxin induced 'run off' of polyribosomes with a corresponding increase in 80S monoribosomes. The effect of fusarenon X on the system could not be determined as the drug failed to enter the cells. 2. [acetyl-14C]Trichodermin bound to yeast polyribosomes with a dissociation constant of 2.10 muM and to yeast 'run off' ribosomes with a dissociation constant of 0.72 muM. 3. Trichothecin, trichodermol, fusarenon X, T-2 toxin and verrucarin A competed with [acetyl-14C]trichodermin for binding to its receptor site on 'run off' ribosomes. The observed competition was quantitatively similar for all drugs tested. In contrast, the five drugs competed to different extents with trichodermin for binding to its receptor site on polyribosomes. Thus trichothecin competed with relative efficiency, whereas verrucarin A competed poorly, and the other drugs occupied intermediate positions between these two extremes. 4. Studies were also carried out with yeast 'run off' ribosomes prepared from both a wild-type strain and a strain resistant to trichodermin. Competition experiments between verrucarin A and [3H]anisomycin indicated that verrucarin A bound to 'run off' ribosomes from the mutant strain less efficiently than to those from the wild-type.

Anisomycin↗

Prevention, by ribosome-bound nascent polyphenylalanine chains, of the functional interaction of t-2 toxin with its receptor site.

1. The inhibitory effects of T-2 toxin and trichodermin on poly(U)-directed polyphenylalanine synthesis were studied by using cell-free systems from reticulocytes. Conditions for amino acid incorporation were carefully chosen in an attempt to ensure that the large majority of poly(U) chains bound only one ribosome engaged in protein synthesis and that all such ribosomes carried nascent polyphenylalanine chains containing approximately the same number of residues. 2. Cell-free systems were allowd to synthesize polyphenylalanine, and T-2 toxin and trichodermin were added to the incorporation mixtures at various times. Irrespective of the time of addition, trichodermin (50 mug/ml) inhibited polyphenylalanine synthesis by approx. 70%. In contrast, although T-2 toxin (40 mug/ml), when added at early incubation times, could inhibit polyphenylalanine synthesis with a maximum of 50%, the drug had no effect on the system when added after a critical time-period. 3. It is concluded that although both T-2 toxin and trichodermin can inhibit peptide-bond formation on ribosomes at the level of the peptidyl transferase catalytic centre the presence, on ribosomes, of nascent polyphenylalanine chains above a certain critical chain length excludes T-2 toxin from functional interaction with its receptor site.

Animals↗

Inhibition of protein synthesis in reticulocyte lysates by trichodermin.

1. The effect of trichodermin as an inhibitor of eukaryotic protein synthesis was studied in a reticulocyte cell-free system. 2. Trichodermin at a concentration of 25 mug/ml inhibits total protein synthesis instantaneously and stabilizes polyribosome profiles. Conversely, at a concentration of 0.25 mug/ml the drug inhibits total protein synthesis by only 70-75% and allows 30-35% breakdown of the polyribosomes in the system. These effects were compared with those produced by two other drugs (pactamycin and anisomycin) examined under conditions identical with those used for trichodermin.

Animals↗

Lomofungine as an inhibitor of nucleic acid synthesis in Saccharomyces cerevisiae.

1. The antibiotic lomofungin was found to be a potent inhibitor of both DNA and RNA synthesis in Saccharomyces cerevisiae. Under selected growth conditions inhibition of DNA synthesis by the drug preceded inhibition of RNA synthesis. 2. Although in general lomofungin inhibited synthesis of ribosomal RNA and polydisperse RNA more effectively than that of low-molecular-weight RNA, under certain conditions the drug inhibited almost completely synthesis of both 4S and 5S RNA. 3. Inhibition of both RNA and DNA synthesis may be explained if RNA synthesis is required for DNA synthesis in yeast. Alternatively, lomofungin, in addition to interacting with DNA-dependent RNA polymerase, might interfere with a component(s) of the DNA-synthetic apparatus. The drug may thus prove to be of considerable value in studies of DNA synthesis in eukaryotes.

Adenine↗

Mechanism of inhibition of eukaryotic protein synthesis by trichothecene fungal toxins.

The 12,13-epoxytrichothecenes, a group of sesquiterpenoid fungal antibiotics, inhibit protein synthesis in eukaryotic cells but do not share a common mode of action. Trichodermin stabilizes polyribosomes, prevents their disaggregation by puromycin, and also prevents the release of nascent peptides from ribosomes by puromycin. Nivalenol, T-2 toxin, and verrucarin A cause rapid and almost quantitative breakdown of polyribosomes in H-HeLa cells, a process which is inhibited by anisomycin, cycloheximide, or trichodermin. Similar effects of trichodermin, nivalenol, and verrucarin A are also observed in yeast spheroplasts. We conclude that nivalenol, T-2 toxin, and verrucarin A are potent and highly selective inhibitors of polypeptide chain initiation in eukaryotes, whereas trichodermin inhibits chain elongation and (or) termination. We have compared the structural formulae of various trichothecenes and suggest that the presence of substituents on carbon-15 of the common trichothecene ring may be important in determining the precise modes of action of this group of compounds.

Acremonium↗