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Biomedical subjects

M J Edwards

Publications and source records attributed to M J Edwards.

At least 253 records · Page 14Linked to original sources

Effects of coumarin, thiopurines, and pyronin Y on amplification of phleomycin-induced death and deoxyribonucleic acid breakdown in Escherichia coli.

Phleomycin (</=2 mug/ml) induces neither deoxyribonucleic acid (DNA) breakdown nor cell death in stationary-phase Escherichia coli B cells, but the addition of 8 mm caffeine immediately initiates these changes in the same way as increasing the phleomycin concentration 10-fold. This phenomenon is termed "amplification" (6). Pyronin Y, a number of nontoxic thio- and mercaptopurines (of which the most active were 6,7- and 6,9-dimethyl-2-methylthiopurine), and coumarin have been found to be considerably more efficient amplifiers of phleomycin activity than caffeine. Thus 2 mm 6,7- and 6,9-dimethyl-2-methylthiopurine, 0.16 mm pyronin, and 4 mm coumarin killed 10 to 100 times more phleomycin-treated bacteria within 2 hr than 8 mm caffeine. As with caffeine, amplification of cell death by these compounds was accompanied by degradation of DNA to acid-soluble fragments. A number of compounds including 2,6-dichloropurine, 6-hydroxy-2-methylthiopurine, alpha-naphthol, beta-naphthol, naphthionic acid, and alpha-naphthol-4,8-disulphonic acid inhibited the action of phleomycin, if they were present in the cell suspension during phleomycin treatment, but some caused amplification if added subsequent to the phleomycin. Although no mutants resistant to >/=10 mug of phleomycin per ml were observed among 10(11)E. coli B cells screened, such mutants occurred with a frequency of 10(-6) to 10(-7) among cultures resistant to 1 to 2 mug of phleomycin per ml. These double mutants were cross-resistant to phleomycin plus caffeine. The amplifying compounds, though structurally dissimilar, shared the common characteristic of binding selectively to denatured DNA as measured by equilibrium dialysis methods. The implications of these observations in supporting a model of phleomycin amplification proposed previously (6) and their utility in providing a logic for developing a new class of antibiotics are discussed.

Antibiotics, Antineoplastic↗

Improved oxygen release: an adaptation of mature red cells to hypoxia.

Blood from patients with erythrocytosis secondary to arterial hypoxemia due either to congenital heart disease or to chronic obstructive pulmonary disease was shown to have a decreased affinity for oxygen; the average oxygen pressure required to produce 50% saturation of hemoglobin with oxygen was 29.8 mm Hg (average normal, 26.3 mm Hg). Such a displacement of the blood oxygen equilibrium curve promotes the release of oxygen from blood to the tissues. Studies were also performed upon blood from a man with complete erythrocyte aplasia who received all of his red cells by transfusion from presumably normal persons. With mild anemia (hematocrit, 28%), the affinity of his blood for oxygen was slightly diminished (an oxygen pressure of 27.0 mm Hg was required to produce 50% saturation of hemoglobin with oxygen). With severe anemia (hematocrit, 13.5%), however, his blood had a markedly decreased oxygen affinity (an oxygen pressure of 29.6 mm Hg was required to produce 50% saturation of hemoglobin with oxygen). We conclude that patients with various conditions characterized by an impairment in the oxygen supply system to tissues respond with a diminished affinity of their blood for oxygen. Although the mechanism which brings about this adaptation is not known, the displacement of the oxygen equilibrium curve is associated with an increase in heme-heme interaction. The decrease in blood oxygen affinity need not occur during erythropoiesis, but may be imposed upon mature circulating red cells.

Adult↗

Electrolyte-labile increase of oxygen affinity during in vivo aging of hemoglobin.

Normal human erythrocytes were separated according to in vivo age by ultracentrifugation. The "young" and "old" erythrocytes had mean cell ages of approximately 40 and 79 days, respectively. "Young" erythrocytes had a lower oxygen affinity and a higher heme-heme interaction than did "old" erythrocytes. This indicates an impairment of the oxygen-carrying function of erythrocyte hemoglobin with age."Young" and "old" erythrocytes were hemolyzed yielding "young" and "old" hemoglobins. "Young" hemoglobin had a comparably lower oxygen affinity than did "old" hemoglobin when the hemolysates were dialyzed against electrolyte-free water. Exposure to sodium chloride completely obliterated this difference between the oxygen affinities and buffer values of "young" and "old" free hemoglobin. Similar exposure to potassium chloride resulted in partial obliteration of the difference between the oxygen affinities of "young" and "old" hemoglobin. Subsequent removal of sodium chloride by dialysis did not restore the pre-electrolyte differences between the oxygen affinities of "young" and "old" hemoglobin. This evidence indicates that in vivo aging is accompanied by a conformational change of the hemoglobin molecule, which is probably due to an alteration of electrostatic interactions involving the hemoglobin molecule and which is retained after hemolysis and dialysis against water but is obliterated by addition of electrolyte. It is not possible, however, to decide from the available evidence whether this molecular change occurs independently or as a result of influences by other substances, such as 2,3-diphosphoglycerate, which also change during in vivo aging of the erythrocyte.

Adult↗