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Biomedical subjects

M F Goodman

Publications and source records attributed to M F Goodman.

137 records · Page 8Linked to original sources

Adriamycin interactions with T4 DNA polymerase. Two modes of template-mediated inhibition.

We examined the effect of adriamycin on kinetics of DNA synthesis catalyzed by DNA polymerase purified from bacteriophage T4-infected Escherichia coli. Two distinct modes of enzyme inhibition occur: uncompetitive and competitive at "low" and "high" drug:DNA nucleotide molar ratios, respectively. Competitive inhibition is not observed unless an unblocked amino group is present on the sugar (daunosamine) moiety. A model is proposed to relate the enzyme inhibition kinetics to intercalative and ionic binding of adriamycin to DNA.

Coliphages↗

2-Aminopurine-induced mutagenesis in T4 bacteriophage: a model relating mutation frequency to 2-aminopurine incorporation in DNA.

We measured the in vivo incorporation of 2-aminopurine into DNA of T4 bacteriophage allelic for gene 43 (DNA polymerase), mutator (L56), 43+, and antimutator (L141). The magnitude of incorporation (mol/mol of Thy) was 1/1500 in L56, 1/1600 in 43+, and 1/8900 in L141. The incorporation ratio L56:43+:L141 in vivo was equal to that mediated by the purified DNA polymerases of these allelic phages in vitro. A model for 2-aminopurine-induced A-T in equilibrium G-C transitions is discussed. The model is used to predict the magnitudes of replication errors (C mispairing with a template 2-aminopurine) and incorporation errors (2-aminopurine mispairing with a template C) per round of replication and to investigate the asymmetry in 2-aminopurine-induced transitions favoring the A-T leads to G-C pathway over G-C leads to A-T. We suggest that the fidelity of L56 and L141 DNA polymerases exemplifies one-step and two-step editing, respectively.

2-Aminopurine↗

Adriamycin and daunorubicin inhibition of mutant T4 DNA polymerases.

The anticancer drugs, adriamycin and daunorubicin, as well as two other DNA reagents, ethidium bromide and 9-aminoacridine, all exert a differential inhibitory effect on nucleotide incorporation for purified DNA polymerases induced by mutant and wild-type bacteriophage T4. When compared with DNA polymerase of wild-type phage, antimutator enzymes are inhibited to a far greater extent and mutator enzymes to a lesser extent. In contrast, the polymerase-associated 3'-exonuclease activities of wild type and mutants are also inhibited by the compounds but nondifferentially.

Acridines↗

DNA replication fidelity: kinetics and thermodynamics.

Mechanisms that control the fidelity of DNA replication are discussed. Data are reviewed for 3 steps in a fidelity pathway: nucleotide insertion, exonucleolytic proofreading, and extension from matched and mismatched 3'-primer termini. Fidelity mechanisms that involve predominantly Km discrimination, Vmax discrimination, or a combination of the two are analyzed in the context of a simple model for fidelity. Each fidelity step is divided into 2 components, thermodynamic and kinetic. The thermodynamic component, which relates to free-energy differences between right and wrong base pairs, is associated with a Km discrimination mechanism for polymerase. The kinetic component, which represents the enzyme's ability to select bases for insertion and excision to achieve fidelity greater than that available from base pairing free-energy differences, is associated with a Vmax discrimination mechanism for polymerase. Currently available fidelity data for nucleotide insertion and primer extension in the absence of proofreading appears to have relatively large Km and small Vmax components. An important complication can arise when analyzing data from polymerases containing an associated 3'-exonuclease activity. In the presence of proofreading, a Vmax discrimination mechanism is likely to occur, but this may be the result of two Km discrimination mechanisms acting serially, one for nucleotide insertion and the other for excision. Possible relationships between base pairing free energy differences measured in aqueous solution and those defined within the polymerase active cleft are considered in the context of the enzyme's ability to exclude water, at least partially, from the vicinity of its active site.

DNA Replication↗

Cardiotoxic effects of adriamycin in mammalian cardiac cells in culture.

Cardiotoxicity of unknown etiology may preclude the use of adriamycin, a cancer chemotherapeutic agent. Mammalian cardiac cells in culture were used as a model system in the study of the mechanisms involved. Adriamycin inhibited cell growth, particularly of the fast-dividing nonmuscle cells. This inhibition might be a contributory factor to cardiomyopathy, but it does not explain the cessation of the rhythmic contractions characteristic of myocardial cells in culture. The concentrations of ATP and phosphorylcreatine (PC) were decreased in the adriamycin-treated cells, but the addition of creatine resulted in a several-fold increase of PC. Therefore, the regulation of energy production and the potential to maintain a high, steady-state concentration of PC were not impaired.

Adenosine Triphosphate↗