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P M Politi

Publications and source records attributed to P M Politi.

10 recordsLinked to original sources

Comparison of acute effects of mitoxantrone and doxorubicin in guinea-pig atria.

1. The acute effects of doxorubicin (DOX) and mitoxantrone (MTX) on basal rate and on positive chronotropic activity induced by 1-noradrenaline (1-NA) were investigated in isolated guinea-pig atria. 2. DOX (10(-5)-10(-4)M) progressively depressed atrial rate after a short latency period. Only 10(-4) M MTX reduced the spontaneous frequency after 120 and 180 min incubation. This effect was significantly lower to that elicited by DOX (10(-4)M). 3. Atropine (1.5 x 10(-6) M) and reserpine pretreatment did not affect the negative chronotropic action induced by DOX or MTX. 4. DOX (10(-5)-10(-4) M) produced a significant reduction of the maximal chronotropic response (Emax) to 1-noradrenaline (1-NA) after 60, 120 and 180 min of exposure. 5. MTX (10(-5)-10(-4) M) after 60 and 120 min incubation induced a beta-adrenergic, concentration- and time-dependent, competitive blocking effect. After 180 min of exposure, MTX (10(-4) M) reduced the Emax to 1-NA which was of less magnitude to that produced by DOX (10(-4) M). 6. Although both DOX and MTX depressed spontaneous and 1-NA induced chronotropic activity, MTX effects were of a slower onset and development compared to those exerted by DOX.

Animals

Antimetabolites.

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Animals

Role of oxygen free radical formation in the mechanism of menogaril resistance in multidrug resistant tumor cells.

The mechanisms of action and resistance to menogaril, a clinically active anthracycline antitumor drug, were evaluated in sensitive and doxorubicin-selected multidrug resistant human breast tumor (MCF-7) cell lines. While MCF-7/ADRR cells were highly resistant (250-500-fold) to doxorubicin, they displayed only marginal resistance (10-fold) to menogaril. In contrast to doxorubicin, the mechanism of resistance to menogaril in these cells does not involve differential inhibition of DNA synthesis as measured by thymidine incorporation. P-170-glycoprotein-dependent drug transport did not contribute to resistance as there was no difference in the accumulation and retention of menogaril by sensitive and resistant cell lines. However, there was a 2-fold decrease in oxygen free radical formation in the resistant cells, compared to sensitive cells, in the presence of menogaril. Since resistant cells contain 12-fold higher glutathione peroxidase activity than the parental sensitive cells, the detoxification of hydrogen peroxide may be responsible for the decreased free radical formation and thus, may play a role in the resistance to menogaril.

Antineoplastic Agents

Structure-activity relations, cytotoxicity and topoisomerase II dependent cleavage induced by pendulum ring analogues of etoposide.

The cytotoxicity of etoposide and its analogues, dihydroxy (DHVP), o-quinone (VP-Q) and o-methyl (VP-OMe), was evaluated in human breast (MCF-7) and HL60 tumour cells. Although less potent than etoposide, both DHVP and VP-Q were cytotoxic to these cells. However, VP-OMe was inactive. Studies with purified topoisomerase II showed that the intensity of DNA cleavage and the pattern of cleavage were similar for DHVP, VP-Q and etoposide. In contrast, the VP-OMe failed to induce DNA cleavage, indicating that the presence of 4'-OH is essential for metabolism, induction of topoisomerase II-mediated DNA cleavage and cytotoxicity of etoposide and its analogues.

Breast Neoplasms

P-glycoprotein-independent mechanism of resistance to VP-16 in multidrug-resistant tumor cell lines: pharmacokinetic and photoaffinity labeling studies.

The interaction of etoposide (VP-16), Vinca alkaloids, and verapamil with the P-glycoprotein (P-gp) was studied in human breast (MCF-7) and Chinese hamster lung (DC3F) cell lines and the corresponding multidrug-resistant MCF-7/ADR and DC3F/ADX tumor cell lines, selected for resistance to Adriamycin and actinomycin D, respectively, and overexpressing P-gp. Verapamil (10 microM) markedly reversed resistance to vincristine (11-fold in DC3F/ADX and 125-fold in MCF-7/ADR; 1-hr exposure), but it had a very modest effect on resistance to VP-16 (3- to 4-fold; 1-hr exposure). Resistant cells accumulated 2- to 4-fold less VP-16 and vincristine than the parental cell lines. Verapamil (10 microM) significantly increased accumulation and retention of vincristine, but not of VP-16, in resistant cell lines. Photoaffinity labeling of resistant cell lines with radioactive analogs of verapamil [N(p-azido-3-125I-salicyl)-N'-beta-aminoethylverapamil (NASVP)] and vinblastine[N-(p-azido-3-125I-salicyl)-N'-beta-aminoethylvindesine (NASV)] showed distinctly labeled P-gp bands in both resistant cell lines, compared with wild-type cells. Excess nonradioactive vinblastine or verapamil effectively competed with the P-gp photolabeling by either NASVP or NASV, with IC50 levels of 0.6 and 10 microM, respectively. In contrast, nonradioactive VP-16 was 100- to 500-fold less potent than vinblastine in competing with P-gp photolabeling, suggesting that VP-16 has significantly lower affinity for P-gp than Vinca alkaloids have. Taken together, our data indicate that P-gp glycoprotein by itself may not be important in the transport/efflux of VP-16 and, thus, in the mechanism of resistance to VP-16 in these cells.

ATP Binding Cassette Transporter, Subfamily B, Mem

Anthracyclines.

After twenty years, understanding the mechanisms of tumor cells kill by anthracyclines still remains an active area of research. Of many mechanisms described for this class of drugs, efforts in the last year have focused on defining the role of free radical formation, topoisomerase II-induced DNA breakage, and P-170-dependent cellular accumulation of anthracyclines in tumor cell kill and resistance. First, in a number of tumor cell lines, the formation of free radical species from anthracyclines has been implicated in the cell killing. Modulation of detoxification pathways in a drug-resistant cell line e.g depletion of GSH, a substrate for peroxidase and transferase, enhanced both the formation of oxy-radicals and adriamycin cytotoxicity. It should be noted, however, that these findings are not true for every cell line examined, and free radical-mediated tumor kill may be cell- or tissue-specific. Second, anthracyclines-mediated topo II-dependent DNA cleavage was observed in most cell lines and reduced breaks were found in resistant cells. The decrease in single-strand breaks, however, neither correlated with the degree of resistance nor with differences in the relative topo II activity, which was in most cases only two-fold less in resistant cells than in sensitive cells. Finally, the reduced accumulation of the drug does not appear to be the only contributing factor in multidrug resistant cells and P-170 is not the only protein overexpressed in certain cells, e.g., an 85,000 Da protein may also be linked to adriamycin resistance. Although GST protein is overexpressed in most adriamycin resistant cells along with mdr1 gene, current evidence suggests that this protein may not be directly involved in adriamycin resistance. Taken together, both the mechanism of action and resistance to this class of drug likely vary among cell lines. Clinical studies in the past year have brought about interesting refinements in anthracycline-containing chemotherapy; ICRF-187 (by itself also cytotoxic) seems to offer protection against cardiac toxicity, while implicating iron in the mediation of cardiac damage. Out of a large number of newer anthracycline derivatives, clinical evidence indicates only a modest increase in therapeutic index with a few analogs, perhaps idarubicin and epirubicin. It is not yet clear that being able to receive more milligrams (or more cycles) of anthracycline eventually translates into a significantly better response rate or in a survival advantage. Much less clear is whether patients refractory to adriamycin may derive any benefit from newer anthracyclines.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Free-radical formation by mitomycin C and its novel analogs in cardiac microsomes and the perfused rat heart.

Using a spin-trapping technique, we have examined free-radical formation by mitomycin C and its analogs, BMY 25282 and BMY 25067, in rat cardiac microsomes and isolated perfused rat hearts. All three drugs stimulated 2--4-fold OH radical formation in cardiac microsomes which was inhibited by SOD and catalase. Superoxide anion radical was also detected in the presence of diethylenetetraaminopentaacetic acid. Addition of DMSO yielded methyl radicals, thus indicating the production of free OH under these conditions. Similar stimulation of OH formation (2--3-fold) in the perfusates from rat hearts was detected with all three drugs. Perfusion with catalase (550 U/ml) completely suppressed the OH signal both in the presence and absence of the drugs, thus suggesting the intermediacy of hydrogen peroxide. However, BMY 25067-induced OH formation was more sensitive to inhibition by superoxide dismutase (SOD) and the iron chelator ICRF-187. Perfusion with DMSO produced methyl radicals at the expense of OH in the presence of all three drugs. SOD and catalase inhibited DMPO-OH signals, indicating that most of the OH formation was extracellular in this setting. While mitomycin C and BMY 25067 (up to 10 microM) did not affect the heart rate, perfusion with 10 microM BMY 25282 caused acute arrhythmia and cardiac standstill within 20 min. An initial surge in OH formation (2-fold) accompanied this cardiotoxic effect. Both the arrhythmia and the free radical signal were partially blocked by SOD, catalase and ICRF-187, indicating that iron-dependent oxygen radical formation from BMY-25282 (and possibly other compounds) is involved, in part, in inducing toxic manifestations in the rat heart and possibly in clinic.

Animals

Role of differential drug uptake, efflux, and binding of etoposide in sensitive and resistant human tumor cell lines: implications for the mechanisms of drug resistance.

In order to study the mechanism of etoposide (VP-16) resistance in human tumor cells and to assess the role of P-170 glycoprotein in VP-16 accumulation, we have examined the uptake and efflux of VP-16 in both sensitive and multidrug-resistant MCF-7 human breast and HL60 human promyelocytic leukemia cells. The drug-resistant cells, MCF-7/ADR and HL60/ADR, were selected for resistance to adriamycin and were 200- to 250-fold resistant to VP-16. Whereas MCF-7/ADR cells overexpress the P-170 glycoprotein and show the multidrug-resistant phenotype, HL60/ADR cells do not overexpress the P-170 glycoprotein. Although there was a 2-fold decrease in accumulation of VP-16 in MCF-7/ADR cells, this decrease did not correlate with a 250-fold resistance to the drug. VP-16 efflux was rapid and almost complete from MCF-7 cell lines and it was decreased at 4 degrees. Further, there was a significant increase in VP-16 accumulation in the MCF-7/ADR cells in the presence of glucose-free medium supplemented with sodium azide. However, no change in the pattern of VP-16 efflux was observed. Under these conditions, addition of glucose caused release of VP-16 from MCF-7/ADR cells, suggesting energy-dependent modifications in the drug binding. Coincubation of vincristine with VP-16 also increased the drug accumulation and decreased the rate of efflux of VP-16 in both sensitive and resistant MCF-7 cells, suggesting that vincristine and VP-16 may compete for similar binding and efflux mechanisms in these cell lines. In contrast, daunorubicin increased VP-16 accumulation only in the sensitive MCF-7 cell line, whereas the efflux rate of VP-16 was not significantly changed in either cell line. HL60 sensitive cells accumulated 4- to 5-fold more VP-16 than the resistant subline. Both sensitive and resistant cells showed an important noneffluxable pool of the drug, 3-fold larger for sensitive cells (79 +/- 12 versus 25 +/- 2 pmol of VP-16/mg of protein, for sensitive and resistant cells, respectively). The efflux of VP-16 was temperature dependent only in sensitive cells. VP-16 accumulation in HL60/ADR cells was increased in glucose-free medium supplemented with sodium azide; however, the noneffluxable pool of VP-16 was not significantly changed. In contrast, although these conditions had no effect on the drug accumulation in the parental line, they caused a decrease in the noneffluxable pool of VP-16, suggesting an energy-dependent binding and retention of VP-16.(ABSTRACT TRUNCATED AT 400 WORDS)

ATP Binding Cassette Transporter, Subfamily B, Mem

Adriamycin-induced free radical formation in the perfused rat heart: implications for cardiotoxicity.

Adriamycin is an anthracycline drug with a wide spectrum of clinical antineoplastic activity. However, the usefulness of the drug is limited by its dose-dependent cardiotoxicity. Adriamycin-stimulated free radical formation has been suggested as one of the mechanisms for its cardiotoxic effects. In order to evaluate this underlying mechanism, we have perfused rat hearts with Adriamycin, using a modified Langendorf technique, and the free radicals formed were analyzed by electron spin resonance spectroscopy using spin-trapping techniques. Our studies show that Adriamycin stimulated the formation of .OH in the heart, and the maximum .OH was formed with 1 microM of the drug. The addition of superoxide dismutase (600 units/ml) inhibited the hydroxyl radical formation by 2- to 3-fold, while catalase (550 units/ml) abolished it completely, showing the intermediacy of superoxide and H2O2. Furthermore, ICRF-187, an iron chelator and a cytotoxic drug, was also an effective inhibitor of .OH formation in the rat heart. The heart rate was not significantly modified by all the above experiments. This study demonstrates that Adriamycin stimulates the formation of .OH in the isolated rat heart and suggests that this mechanism may be significant in Adriamycin-induced cardiotoxicity.

Animals

Acute effects of doxorubicin on chronotropic and inotropic mechanisms in guinea pig atria.

This study was designed to test the possible acute effects of doxorubicin (DOX) on isolated guinea pig atria incubated in Locke's solution. Different concentrations of DOX (10(-6) to 10(-4) M) were added to the medium 30 minutes before the concentration-response curves to noradrenaline and histamine were carried out. DOX (10(-4) M) significantly reduced spontaneous atrial rate. Atropine (10(-6) g/ml) was unable to modify this cardiodepressant effect. DOX (10(-4) M) produced a competitive beta blocking effect, shifting to the right the concentration-response curve to noradrenaline without altering the maximal chronotropic response. On the other hand, this anthracycline (10(-4) M) not only antagonized chronotropic responses to histamine, but significantly reduced the maximal effect mediated by this amine. Isolated left guinea pig atria electrically paced were used to determine the effects of DOX on positive inotropic activity promoted by noradrenaline and histamine. Similarly to what was observed in chronotropic experiments, DOX (10(-4) M) produced a competitive beta blocking action and a noncompetitive inhibition of the positive inotropic action developed by histamine. Lower concentrations of DOX failed to modify the chronotropic responses to both amines. However, after 60 minutes of incubation with DOX, 10(-5) M of this drug produced a shift to the right of the concentration-response curves to noradrenaline and histamine and depressed the maximal chronotropic response to these amines. These effects were not observed with 3 X 10(-6) M DOX. These results are compatible with the idea that a nonspecific interaction of DOX with cardiac beta and histaminergic receptors could be involved in the acute cardiotoxic mechanism produced by this anthracycline.

Adrenergic beta-Antagonists