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M W Seraydarian

Publications and source records attributed to M W Seraydarian.

8 recordsLinked to original sources

Differential effect of adriamycin on DNA replicative and repair synthesis in cultured neonatal rat cardiac cells.

The effect of the potent antitumor antiobiotic Adriamycin (ADM) on DNA replication and unscheduled DNA synthesis in cultured rat cardiac cells was investigated. Autoradiography and [3H]thymidine incorporation studies were carried out on parallel cultures. DNA replication was depressed for up to 6 days following a 3-hr pulse of ADM administration. An ADM concentration of 1 microgram/ml which was effective in reducing replicative DNA synthesis by as much as 75% did not reduce the ability of cardiac cells to repair UV-damaged DNA. However, cells exposed to higher ADM concentrations failed to undergo significant UV-induced repair. In the absence of UV treatment, ADM did not stimulate unscheduled DNA synthesis. To account for the differential response of the cardiac cell cultures to replicate and repair DNA, we propose that ADM exerts a localized effect on DNA synthesis covering a region proximal to its primary intercalation site.

Animals

Modification by adenosine of the effect of adriamycin on myocardial cells in culture.

The cardiotoxic effects of Adriamycin (ADM) were studied utilizing mammalian myocardial cells in culture as a model system. ADM inhibited cell growth and the rhythmic contractions characteristic of these cells. Because a possible involvement of energy metabolism in the action of ADM was suggested previously, the adenylate energy charge and phosphorylcreatine mol fraction were determined in the ADM-treated cells. The adenylate energy charge was found to be significantly decreased, while the phosphorylcreatine mol fraction was not. Such disparity suggests an inhibition of creatine phosphokinase. The addition of 1 mM adenosine to the myocardial cell cultures markedly increased the adenosine triphosphate concentration but not the adenylate charge. In the ADM-treated cells, the addition of adenosine increased both the adenosine triphosphate concentration and the adenylate charge, and, concomitant with this increase, the functional integrity of the cells in terms of percentage of beating cells and rate of contractions was maintained.

Adenine Nucleotides

Studies on the control of energy metabolism in mammalian cardiac muscle cells in culture.

Myocardial cells in a monolayer culture are a myogenic model system wihch shows functional differentiation and in which the intracellular metabolism and energy utilization do not differ markedly from those of the fresh tissue. In the myocardial cells, as in numerous other muscle tissues, the concentration of high energy phosphate compounds, primarily phosphorylcreatine, correlates well with the functional integrity of the cells. The decline of adenosine triphosphate (ATP) below a critical level leads to the cessation of rhythmic contractions of the cells in culture, and, conversely, an increased steady state level of ATP correlates with an increased rate of excitability. When creatine, in the concentration range known to be present in the cardiac tissue, is added to the growth medium of the cultured myocardial cells, the intracellular concentration of phosphorylcreatine increases up to 100%. Since the only metabolic path known for phosphorylcreatine synthesis is via creatine phosphokinase, the rate of transphosphorylation and ATP synthesis must have been increased. This stimulation of energy production is due to the regeneration of mitochondrial ADP brought about by the phosphosphorylation of creatine to phosphorylcreatine and possibly, also, to an enhanced rate of glycolysis. No net transfer of approximately P from ATP to creatine was observed under any of the experimental conditions. The high steady state level of phosphorylcreatine was not maintained upon the addition of either oligomycin or 2-deoxyglucose, and the addition of both metabolic inhibitors simultaneously resulted in a depletion of phosphorylcreatine and ATP and in cessation of rhythmic contractions. The excitability was also inhibited upon the addition of 1-fluoro-2,4-dinitrobenzene, a creatine phosphokinase inhibitor, and the accompanying depletion of approximately P was primarily reflected in a decrease of ATP concentration. These findings support the following conclusions: (1) phosphorylcreatine serves as a source of approximately P for the resynthesis of ATP at the site of utilization (i.e., myofibrils, membrane) and thus maintains the optimal energy charge; (2) production site; (3) the regeneration of phosphorylcreatine is coupled to oxidative phosphorylation and possibly to glycolysis. Creatine-phosphorylcreatine system operates as a undirectional shuttle for approximately P and as a control system regulating energy production according to demand. Reports of studies on intact mitochondria and on isoenzymes of creatine phosphokinase give further support to the above conditions.

Adenosine Triphosphate

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