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J P Bendirdjian

Publications and source records attributed to J P Bendirdjian.

12 recordsLinked to original sources

Effects of 9-OH-ellipticine on cell survival, macromolecular syntheses, and cell cycle progression in sensitive and resistant Chinese hamster lung cells.

In an effort to understand the mechanism of action of the DNA-intercalating antitumor agent 9-hydroxyellipticine (9-OH-E), we have examined the effects of this drug on the cell survival, macromolecular syntheses, and cell cycle progression in sensitive and resistant cells. Our results show that 9-OH-E toxicity on sensitive and resistant cells involves different mechanisms of action: the drug toxicity in the sensitive cells appears to result from lethal lesions mediated through the interaction of the drug with an intracellular protein, independently of any effect of the drug on the macromolecular syntheses; in the resistant cells, the cell death occurs concomitantly with the inhibition of these syntheses. Cell cycle progression analysis after 9-OH-E treatment showed that, in the sensitive cells, the drug is inducing a G1 and a G2 block, which are both released in the presence of 1 mM caffeine, without any effect on the 9-OH-E toxicity. In the resistant cells, a G2 block was also observed but only when the cells were resuming their growth after about a 30- to 40-h growth arrest. Caffeine release of this block, which again had no effect on 9-OH-E toxicity, was only observed when it was added from 40 to 60 h after 9-OH-E treatment, when the cells resumed their growth. Finally in the sensitive cells, cycloheximide exerted an inhibitory effect on 9-OH-E toxicity when it was added before and during the cell exposure to the drug. This effect was interpreted as indicating that 9-OH-E toxicity in the sensitive cells relies on a protein which is not induced by the drug but has to be present in the cells when the drug is added. The possible implication of DNA topoisomerases in 9-OH-E toxicity mechanism is discussed.

Alkaloids↗

Effects of 7H-pyridocarbazole mono and bifunctional DNA-intercalators on Chinese hamster lung cells in vitro.

The effects of two 7H-pyridocarbazole dimers, PyDi1 and PyDi2, on Chinese hamster lung cells in culture in vitro, were compared to those of the corresponding monomers, PyMo1 and PyMo2, by measuring the rates of macromolecule syntheses, the growth kinetics of the drug-treated cells, and the cell cycle progression. The dimers, which are endowed with a very high DNA affinity, were about 10- and 40-fold more cytotoxic than the monomers from which they markedly differ in the following ways: in contrast to monomers, the dimers do not provoke the arrest of cell cycle progression in the G2 + M phase; after a transitory exposure to either one of the dimers, the cell growth arrest was delayed for 6-8 generations. Therefore, the 7H-pyridocarbazole dimers express their cytotoxicity through a mechanism of action different from that of their mono-intercalating counterparts. They might then constitute a new series of antitumour drugs.

Alkaloids↗

Changes in the lysosomes and mitochondria isolated from the liver, kidney and heart of rats treated with perhexiline maleate.

A seven-days treatment, with Perhexilline Maleate induces changes in the structural latency of lysosomes isolated from liver or kidney and of the respiratory activity of mitochondria isolated from liver, kidney or heart. While the effect on lysosomal structural latency appears very similar in the liver and kidney lysosomes, the oxidative properties of liver mitochondria appears clearly more disturbed than those of the heart or kidney. It is concluded that liver mitochondria might be strongly involved in the mechanism of Perhexiline Maleate hepatotoxicity.

Acetylglucosaminidase↗

[Functional, histological, ultrastructural and biochemical study of rat kidney treated with fosfomycin and gentamycin, administered separately or together].

Wistar rats received by intraperitoneal injection for 8 days different doses of Fosfomycin, a new antibiotic. No renal pathological changes are seen under light microscopy after these treatments. Ultrastructural study reveal an intact cellular structure of the proximal tubule. Fosfomycin induces no change in the lysosomal structural latency and enzymatic study show no change in the activities of our hydrolases (alanine-aminopeptidase, alpha-galactosidase, N-acetyl-beta-D-glucosaminidase and sphingomyelinase), after treatment by 100 and 500 mg/kg Fosfomycin. At 1000 mg/kg, Fosfomycin induces an inhibition in enzymatic activities of the four hydrolases. Fosfomycin does not modify the activity of Gentamicin on the proximal tubular cell and induces neither protection nor potentialization of its nephrotoxic effect.

Acetylglucosaminidase↗