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Toremifene enhances cell cycle block and growth inhibition by vinblastine in multidrug resistant human breast cancer cells.

The clinical study of compounds that modulate multidrug resistance has been hindered by both the toxicities of these agents and the inability to monitor their effectiveness at the level of the tumor cell. Previously, toremifene has been shown to be well tolerated clinically and to sensitize multidrug resistant cells to the effects of cytotoxic chemotherapeutic agents. The chemosensitizing properties of toremifene in estrogen receptor negative, multidrug resistant MDA-MB-A1 human breast cancer cells were studied using flow cytometric analysis and growth inhibition assays. Cell cycle kinetics of MDA-MB-A1 cells were not significantly affected by treatment with either toremifene, N-desmethyltoremifene, Toremifene IV or vinblastine alone, as the majority of cells remained in G0/G1. However, preincubation with toremifene or one of its metabolites for 72 hours followed by treatment for one hour with vinblastine caused a marked shift of cells to G2/M, as cells appeared to be blocked in that phase of the cell cycle. This result was nearly identical to the effect of vinblastine alone on vinblastine-sensitive MDA-MB-231 breast cancer cells and can be interpreted as a "resensitization" by toremifene of MDA-MB-A1 cells to vinblastine. This chemosensitizing effect of toremifene was accompanied by an enhanced inhibition of cell growth by vinblastine. The chemosensitizing effects of toremifene or one of its metabolites in combination with cytotoxic chemotherapy can be effectively monitored by flow cytometry, an easily accessible technique.

Breast Neoplasms↗

Effect of toremifene on antipyrine elimination in the isolated perfused rat liver.

Toremifene is a triphenylethylene antioestrogen with significant antitumor activity. It is structurally very similar to tamoxifen. Both drugs undergo extensive hepatic metabolism, and tamoxifen is known to inhibit hepatic mixed-function oxidases (MFO). Using the isolated perfused rat-liver model, we investigated the effect of toremifene on the elimination of antipyrine, a standard marker of MFO activity. Perfusate consisted of 20% red cells in a modified Krebs-Henseleit buffer, and 80 ml was recirculated at 14 ml/min for 3 h. High but clinically relevant steady-state toremifene levels of 3 and 10 micrograms/ml were achieved using bolus plus constant infusion into the reservoir. Elimination of 2.5 mg antipyrine was not inhibited by steady-state toremifene, but methanol (maximal perfusate concentration, 1.29%), the vehicle used for toremifene administration, caused a statistically significant increase in the antipyrine elimination half-life (mean, 1.4 +/- 0.2 h for controls vs 2.2 +/- 0.3 h for methanol; P < 0.05, n = 4). Whereas the methanol had no apparent effect on liver viability as assessed by bile flow and perfusate back-pressure, toremifene at a steady-state concentration of 10 micrograms/ml caused a statistically significant decrease in bile flow (value at 180 min, 0.22 +/- 0.05 ml/h as compared with 0.52 +/- 0.06 ml/h in the methanol control; P < 0.05) and a statistically significant increase in perfusate back-pressure (value at 180 min, 17.5 +/- 1.8 cm vs 11.0 +/- 2.6 cm in the methanol control; P < 0.05). Therefore, toremifene used at high doses can impair liver function in the isolated perfused rat liver, but it does not have any effect on antipyrine elimination.

Animals↗

Effects of tamoxifen and toremifene on urinary excretion of pyridinoline and deoxypyridinoline and bone density in postmenopausal patients with breast cancer.

Tamoxifen and toremifene are two mostly used antiestrogens in the treatment of breast cancer. To compare their effect on bone in postmenopausal breast cancer patients we measured the urinary output of two bone resorption markers, pyridinoline (Pyr) and deoxypyridinoline (Dpyr) as well as bone density (BMD) in 30 breast cancer patients using either tamoxifen (20 mg/day, n = 15) or toremifene (40 mg/day, n = 15) as adjuvant treatment of stage II breast cancer for 1 year. The urinary output of Pyr and Dpyr were assessed before and after 6 and 12 months of the antiestrogen regimen. Lumbar and femoral BMD were measured by dual energy X-ray absorptiometry (DXA) before and after 12 months of treatment. Both tamoxifen and toremifene were associated with significant decreases in Pyr (mean fall 19.6% and 12.6%, respectively) and Dpyr (mean fall 21.6% and 15.5%, respectively) at 6 months. After 12 months' treatment, Pyr decreased by 30.8% and Dpyr by 21.2% in women using tamoxifen and significantly less in women using toremifene (10.1% and 4.9%, respectively). BMD in the lumbar spine decreased by 1.8% in the toremifene group but increased by 0.4% in the tamoxifen group; in the proximal femur, BMD increased slightly during both tamoxifen and toremifene treatment in all sites measured. Individual changes in Pyr and Dpyr at 6 months showed no significant relation to the change in BMD at 12 months. We conclude that tamoxifen (20 mg/day) and toremifene (40 mg/day) reduce the bone resorption similarly, and this can be detected by falls in urinary output of Pyr and Dpyr at 6 months of treatment.

Amino Acids↗

Antiestrogenic and antitumor properties of the new triphenylethylene derivative toremifene in the rat.

The effects of toremifene, a new triphenylethylene derivative, on the uterus and DMBA-induced mammary tumors in rats were compared to tamoxifen. The ability of toremifene to compete with [3H]estradiol for cytoplasmic estrogen receptor from rat uterus was similar to tamoxifen, the IC50 being 26 and 23 microM respectively. In immature intact rats the two compounds, administered orally for three consecutive days, had similar intrinsic partial estrogenic efficacy, at 50 mg/kg, about 40% of that of estradiol benzoate (EB). However, at doses less than or equal to 10 mg/kg, the estrogenic effect of toremifene was seen at doses about 40 times higher than that of tamoxifen. The two compounds, administered together with a standard dose of EB, expressed the same maximal antiestrogenic efficacy (about 65% inhibition) at 50 mg/kg. However, the minimal effective antiestrogenic dose of toremifene was about 10 times that of tamoxifen and the ratio between antiestrogenic/estrogenic properties was favourable to toremifene. The duration of the antiestrogenic (antiuterotrophic) effect of a single oral dose (10 mg/kg) of the two compounds proved similar: at least 4 days in intact rats and 3 days in ovariectomized rats. In DMBA-induced tumor bearing rats toremifene was administered p.o., 6 times/week for 4 weeks at 0.08, 0.4, 2, 10 and 50 mg/kg. It was effective at the doses of 2, 10 and 50 mg/kg, inducing 39, 35 and 46% tumor regressions. The activity of toremifene at the minimal effective dose of 2 mg/kg was then compared with that of tamoxifen given at the same dose level. The compounds had comparable activity (47 vs 44% tumor regressions).

9,10-Dimethyl-1,2-benzanthracene↗

Additive and synergistic antitumor effects with toremifene and interferons.

MFC-7 cells were exposed to toremifene, human alpha and gamma interferons and combinations of them in vitro. Growth of the cells was followed by ATP bioluminescence method. Rats bearing DMBA-induced tumors were treated with toremifene, rat gamma interferon and their combination daily for five weeks. The growth of the tumors was followed by palpation weekly. Toremifene and interferons inhibited the growth of MCF-7 cells. Interferons alpha and gamma were additive; toremifene and interferons were additive or at the best synergistic. Toremifene inhibited the growth of DMBA-induced tumors. Rat gamma interferon alone had no clear effect on the tumor growth. Combination of toremifene and gamma interferone was the most effective treatment and did not show any detectable toxicity. Toremifene and interferons have interesting interactions. Clinical studies using the combination might be warranted.

9,10-Dimethyl-1,2-benzanthracene↗

Enhancement of Adriamycin cytotoxicity in a multidrug resistant Chinese hamster ovary (CHO) subline, CHO-Adrr, by toremifene and its modulation by alpha 1 acid glycoprotein.

The effects of a new antioestrogen, toremifene, on multidrug resistance have been studied in a Chinese hamster ovary parental line, CHO-K1, and in a multidrug resistance subline, CHO-Adrr. Toremifene at subinhibitory concentrations increased the cytotoxic effectiveness of Adriamycin in both cell lines. The degree of potentiation was greater in the CHO-Adrr lines for any given concentration of toremifene. Toremifene is 99.7% bound to human serum proteins (Sipila et al. Pharmacol Toxicol 1988, 63, 62-64), which includes binding to an acute phase plasma protein, alpha 1 acid glycoprotein (AAG). Since AAG is normally absent from tissue culture media, we have assessed the effect of AAG on toremifene mediated potentiation of Adriamycin cytotoxicity. In the presence of increasing concentrations of AAG, there was a dose-related reversal of the effect of toremifene on Adriamycin cytotoxicity in both cell lines. These results show that toremifene is effective in enhancement of Adriamycin cytotoxicity in CHO-K1 and CHO-Adrr cell lines, and this modulation can be altered by AAG. The clinical implication is that patients should be selected for such therapy by measurement of AAG levels.

Animals↗

Toremifene for the prevention of prostate cancer in men with high grade prostatic intraepithelial neoplasia: results of a double-blind, placebo controlled, phase IIB clinical trial.

PURPOSE: A randomized, double-blind, dose finding, placebo controlled, parallel group clinical study was done to determine the incidence of prostate cancer in men with high grade prostatic intraepithelial neoplasia treated with toremifene. MATERIALS AND METHODS: A total of 514 patients with high grade prostatic intraepithelial neoplasia and no evidence of prostate cancer on screening biopsy were randomized to 20, 40 or 60 mg toremifene, or placebo daily for 12 months. Patients underwent re-biopsy at 6 and 12 months. RESULTS: The number of evaluable patients, that is those with 1 on study biopsy who were compliant, was 447. The cumulative risk of prostate cancer was decreased in patients on 20 mg toremifene compared with placebo (24.4% vs 31.2%, p <0.05). The annualized rate of prevention was 6.8 cancers per 100 men treated. In patients with no biopsy evidence of cancer at baseline and 6 months, the 12-month incidence of prostate cancer was decreased by 48.2% with 20 mg toremifene compared with placebo (9.1% vs 17.4%, p <0.05). The 20 mg dose was most effective but cumulative and 12-month incidences of prostate cancer were lower for each toremifene dose vs placebo with a cumulative risk of 29.2% and 28.1%, and a 12-month incidence of 14.3% and 13.0% for 40 and 60 mg, respectively. Gleason scores were similar across treatments. The overall incidence of drug related and serious adverse events did not differ between any of the toremifene groups and the placebo group. CONCLUSIONS: Toremifene decreased the incidence of prostate cancer by 1 year and had a tolerability profile comparable to that of placebo in a high risk population.

Adult↗

Acute effects of toremifene on the vasculature of intact and menopause-induced rats.

Clinical studies have shown that cardiovascular performance in postmenopausal women could be modified by treatment with selective estrogen receptor modulators (SERM). However, the mechanisms by which these drugs act on the cardiovascular system have not been elucidated. This work evaluates the effect of toremifene, a new member of the SERM family, on the vasculature of intact and ovariectomized adult Sprague-Dawley rats. The responsiveness of rings from the thoracic aorta to norepinephrine, potassium chloride, acetylcholine and sodium nitroprusside was assessed before and after 15 min of incubation with 1.0-microM toremifene. Toremifene displaced the concentration-response curve for norepinephrine-induced contractions to the right in both groups of animals. Moreover, the EC(50) values for the curves increased from 154+/-31 to 754+/-162 nM (P<.05) in intact rats and from 88+/-11 to 230+/-71 nM (P<.05) in ovariectomized rats. Toremifene also reduced contractile responses to potassium chloride (10-120 mM), displacing the entire curve to the right in both groups of animals without modifying the EC(50) values. The drug shifted the concentration-response curve for the acetylcholine-induced relaxation to the left and significantly increased E(max) values (18% for ovariectomized rats vs. 16% for controls) without affecting EC(50) values in either group tested. In addition, toremifene potentiated the relaxing responses to physiological doses (0.1-1.0 nM) of sodium nitroprusside in both groups, suggesting a direct effect at the level of the vascular smooth muscle. Acute toremifene incubation increased basal relaxation in aortic rings from both intact and ovariectomized rats. These results suggest that toremifene, by improving the functional status of the endothelium-smooth muscle unit, may have a beneficial effect on the cardiovascular status of menopause-induced rats.

Acetylcholine↗

Silica xerogel carrier material for controlled release of toremifene citrate.

Sol-gel processed silica xerogel was used as a carrier material for toremifene citrate in order to develop an implantable controlled release formulation which could be localised to a desired site providing targeted and long-lasting disease control and resulting in a reduced amount of drug needed. Toremifene citrate, an anti-estrogenic compound, was incorporated into silica xerogel matrixes during polycondensation of organic silicate, tetraethyl ortho silicate (TEOS). The effects of drug amount, drying temperature and polyethylene glycol (PEG) on the release rate of toremifene citrate and degradation of the silica xerogel matrixes were investigated. Addition of PEG (M(w) 4600/10000) decreased the specific surface area of the matrix and lowered the release rate of the drug. Reducing the amount of drug in the matrix also decreased the release rate of toremifene citrate. However, drying temperature did not affect the release rate of silica or toremifene citrate. The release profiles of toremifene citrate were according to zero order kinetics, suggesting that drug release was controlled by erosion of the silica xerogel matrix. These results suggest that the toremifene citrate release rate can be controlled to some extent by adding (PEG) or by varying the amount of drug in the silica xerogel matrix.

Delayed-Action Preparations↗

Differential effects of toremifene on doxorubicin, vinblastine and Tc-99m-sestamibi in P-glycoprotein-expressing breast and head and neck cancer cell lines.

The effect of toremifene on P-glycoprotein-mediated multidrug resistance (MDR) in breast and head and neck cancer cell lines was measured in vitro and in vivo. Pgp expression was low and high, respectively, in drug-sensitive (MCF7-S, KB) and drug-resistant (MCF7-R, MCF7-R1, KBV1) cell lines. Toremifene (7.5 microM) significantly enhanced cytoplasmic and nuclear accumulation of doxorubicin in drug-resistant cells. Toremifene (10 microM) increased the in vitro cytotoxicity of doxorubicin in drug-resistant breast cancer cells (13-fold and 21-fold for MCF7-R and MCF7-R1, respectively) without affecting the sensitivity of MCF7-S cells. Similarly, toremifene (10 microM) caused a 12-fold increase in the sensitivity of KBV1 cells to vinblastine. In contrast, toremifene (5 microM) reduced the net uptake of the radiolabelled Pgp substrate, Tc-99m-sestamibi, in the Pgp-overexpressing cell lines by factors of 0.32 and 0.42 for MCF7-R1 and KBV1 cells, respectively (p < 0.01), and, to a lesser extent, by corresponding factors of 0.89 and 0.86 in the drug-sensitive cell lines (p < 0.05 and p > 0.05, respectively). In nude mice bearing both KB and KBV1 xenograft tumours, significantly higher tumour levels of Tc-99m-sestamibi were recorded in KB tumours compared with KBV1 tumours. After 3 days of treatment with intraperitoneal toremifene (25 mg/kg), tumour levels of Tc-99m-sestamibi were reduced in KB and KBV1 tumours but only statistically significantly for KB tumours. Toremifene is a potent MDR modulating agent with respect to chemotherapeutic agents but has the opposite effect with respect to Tc-99m-sestamibi. This finding is of importance in view of the widespread use of Tc-99m-sestamibi as an imaging surrogate for a chemotherapeutic agent.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Effects of toremifene on neonatal rat uterine growth and differentiation.

In the developing rodent uterus, the estrogen agonist activity of triphenylethylene antiestrogens such as tamoxifen alters uterine luminal epithelium morphology and inhibits uterine gland genesis. We examined uterine growth and differentiation in female offspring from date-mated Sprague-Dawley rats given the structurally related antiestrogen, toremifene, by s.c. injection in 10 microl of sesame oil on postnatal days (PND) 1-5, 10-14, or 20-24. Toremifene given on PND 10-14, a period of rapid uterine gland differentiation, caused a dose-related increase in uterine weight, tripled luminal epithelium cell height, and completely inhibited uterine gland development on PND 14 at doses of 10 microg or higher. Based on this dose-response analysis, a 10-microg dose of toremifene was chosen to assess uterine development after neonatal exposure (PND 1-5). Uterine weights and luminal epithelium cell heights were significantly increased by toremifene on PND 5 but returned to control levels by PND 26. Uterine gland numbers were reduced to 50% those of controls on PND 26. Dose-related uterine weight and luminal epithelium cell height increases were also observed in rats given toremifene on PND 20-24. This estrogen agonist activity of toremifene, revealed primarily in the uterine luminal epithelium, indicates that toremifene is developmentally toxic.

Age Factors↗

Toremifene: pharmacologic and pharmacokinetic basis of reversing multidrug resistance.

Triphenylethylene compounds, such as tamoxifen, have shown chemosensitizing activity independent of estrogen receptor status in doxorubicin-resistant cells. We examined the chemosensitizing activity of a new triphenylethylene, toremifene, and its major metabolites in a doxorubicin-resistant human breast cell line, MCF-7/DOX. In addition, we examined the chemosensitizing activity of unbound plasma toremifene and its metabolites isolated from patients treated with toremifene doses of 20 to 400 mg/d. MCF-7/DOX cells were exposed to ultrafiltrate plasma specimens in the absence and presence of doxorubicin. These latter studies were single-blinded. Toremifene and its major metabolites were capable of sensitizing multidrug-resistant cells to doxorubicin. The degree of chemosensitizing activity in vitro correlated with the plasma concentrations of toremifene and its metabolites (P less than .05). Plasma samples isolated from patients receiving high-dose toremifene (400 mg/d) had the greatest chemosensitizing activity. We present evidence that toremifene and its metabolites can sensitize resistant MCF-7/DOX cells to doxorubicin, that this effect is concentration-dependent, and that sensitizing activity can be detected at clinically achieved concentrations.

Blood↗

A two-year dietary carcinogenicity study of the antiestrogen toremifene in Sprague-Dawley rats.

The carcinogenic potential of the nonsteroidal triphenylethylene antiestrogen toremifene (Fareston) was evaluated in a standard 104-week rat dietary carcinogenicity study. The doses were 0, 0.12, 1.2, 5.0 and 12 mg/kg/day and the number of animals 50/sex/dose group. The body weight gain and food consumption were monitored once weekly (study weeks 1-16) or once every four weeks thereafter (study weeks 17-104). Blood samples were taken at weeks 34, 52 and 104 and the plasma concentrations of toremifene, as well as the two main metabolites (deaminohydroxy)toremifene and N-demethyltoremifene, were measured. All doses of toremifene reduced food intake and body weight gain. Toremifene caused a significant reduction in mortality, which was mainly due to reduced incidences of pituitary tumors. This was evident in all dose groups. Drug-related decrease of mammary tumors in females (at all doses) and testicular tumors in male rats (doses > or = 1.2 mg/kg/day) were also evident. The incidence of the preneoplastic foci of basophilic hepatocytes were significantly decreased in treated female groups. Toremifene induced no preneoplastic or neoplastic lesions. Based on histopathology, no obvious toxicity could be observed. Drug-related changes were observed in the genital organs, thyroid, spleen, mammary gland, adrenal, kidney, stomach and lung. These changes were due to hormonal disturbances or as a result of reduced food consumption or reduced incidences of pituitary, mammary or testicular tumors. This study indicates that toremifene is an efficient antiestrogen in long-term treatment, is well tolerated and has no tumorigenic potential in rats.

Aging↗

[Assessment of post-administration body distribution of toremifene and tamoxifen, and their administration regimens].

Toremifene is an anti-estrogenic drug like tamoxifen. We assessed the body distributions after administration of toremifene and tamoxifen in order to evaluate their treatment regimens by measuring the concentrations in tissues. It is known that, after toremifene (TOR) or tamoxifen (TAM) is consecutively administered to breast cancer patients, TOR or TAM and their main active N-desmethyl-metabolites (TOR-1 or TAM-1) are detected in sera, tumor tissues, and lymph nodes. Accordingly, after we administered toremifene or tamoxifen to primary breast cancer patients previous to surgery, we measured the concentrations of TOR, TOR-1, TAM, TAM-1 in sera, tumor tissues, and lymph nodes. We found that the concentrations of TOR and TOR-1 in sera, tumors, and lymph nodes reached a peak about 2 weeks after administration of toremifene 40 mg. Likewise, the concentrations of TAM and TAM-1 in sera, tumors, and lymph nodes reached a peak about 2 weeks after administration of tamoxifen, although the peak levels were lower than those of TOR or TOR-1. The concentrations of TAM-1 in lymph nodes were significantly and positively correlated to the duration of administration of TAM, and it was predicted that the concentration of TAM-1 in lymph nodes would reach a steady state at more than 4 weeks after administration of tamoxifen. The concentrations of TOR and TOR-1 were higher in tumors and lymph nodes than in sera. Furthermore, the concentrations of TOR and TOR-1 were significantly higher than those of TAM and TAM-1 in sera and tumors, respectively. Moreover, the concentration in tissue increased in a dose-dependent manner with administration of toremifene 120 mg. There were no significant differences between breast cancers positive and negative for estrogen receptors, with regard to the concentrations of TOR and TOR-1 in either sera, tumors, or lymph nodes. In conclusion, it would be expected that treatment with toremifene might be more effective for breast cancer than that with tamoxifen.

Adult↗

High-dose toremifene vs tamoxifen in postmenopausal advanced breast cancer.

To compare the efficacy and safety of high doses (200 or 240 mg/d) of toremifene (Fareston) to standard doses (20 or 40 mg/d) of tamoxifen (Nolvadex) in postmenopausal women with estrogen receptor (ER)-positive or ER-unknown advanced breast cancer, we pooled data from two randomized, three-arm clinical trials. Of the 733 patients included in the overview, 369 were randomized to high-dose toremifene and 364, to tamoxifen. At median follow-up of 19 months, disease had progressed in over 70% of the patients. Response rates were 25.2% in the high-dose toremifene arm and 19.8% in the tamoxifen arm (P = .087). The two treatments appeared to be statistically equivalent with respect to risk for disease progression and survival. Reversible SGOT elevation was observed in 26 tamoxifen-treated patients vs 64 high-dose toremifene recipients (P < .001) and nausea in 33 vs 50 patients (P = .085). Reversible corneal keratopathy was diagnosed in two patients on tamoxifen and eight on high-dose toremifene (P = .061). Treatment had to be discontinued in 17.3% of patients in the high-dose toremifene arm and 20.1% in the tamoxifen arm. Discontinuation due to toxicity was rare, and toxicity did not differ significantly between the treatments. Toremifene, in doses up to 240 mg/d, is an effective, safe treatment for postmenopausal women with ER-positive/unknown advanced breast cancer.

Antineoplastic Agents, Hormonal↗

Pharmacokinetics of toremifene and its metabolites in patients with advanced breast cancer.

A multicenter phase I pharmacokinetic study of a new triphenylethylene antiestrogen, toremifene, was examined in 70 patients with advanced breast cancer. Patients were randomized to receive single daily oral doses of either 10, 20, 40, 60, 200, or 400 mg for 8 weeks. Plasma toremifene and its major metabolites. N-desmethyltoremifene and 4-hydroxytoremifene, were determined weekly during therapy and at 0, 7, 14, and 21 days after the discontinuation of therapy. The time to reach steady-state plasma concentrations was between 1 and 5 weeks, with steady-state being achieved earlier (1-2 weeks) at daily doses of 200 and 400 mg. The time to peak concentration following oral doses of toremifene ranged from 1.5 to 4.5 h. The terminal half-life of elimination was 5.0, 6.0, and 5.0 days for toremifene, desmethyltoremifene, and 4-hydroxytoremifene, respectively. Plasma concentrations of 4-hydroxytoremifene were detectable only at high doses (200 and 400 mg/day) of toremifene. The results of this phase I pharmacokinetic study show that toremifene has metabolic and kinetic patterns that are similar to those previously reported with tamoxifen.

Administration, Oral↗

Toremifene and its metabolites enhance doxorubicin accumulation in estrogen receptor negative multidrug resistant human breast cancer cells.

The enhanced accumulation of doxorubicin by agents known to reverse multidrug resistance provides a good functional test for evaluating modulating activity. In the present study, the non-steroidal triphenylethylene toremifene selectively increased doxorubicin accumulation in multidrug resistant estrogen receptor negative MDA A-1 human breast cells compared to the MDA 231 wild type cells. MDA A-1 cells were noted to be 1,000 fold resistant to doxorubicin (IC 50 = less than 0.1 microgram/ml MDA 231; IC 50 = 100 micrograms/ml MDA A-1). Total accumulation of doxorubicin, expressed as area under the time concentration curve (AUC), was increased significantly in doxorubicin resistant cells (156% increase) versus wild type MDA 231 cells (6% increase). Correction of the accumulation defect to doxorubicin in drug resistant cells required a 18-20 hour pre-incubation with toremifene. The effects of toremifene on cell cycle in MDA A-1 cells was analyzed by flow cytometric techniques. Toremifene had a dose response relationship in blocking cells in G0-G1 reducing the number of cells entering S phase of the cell cycle. This effect was maximal at concentrations which increased the accumulation of doxorubicin in MDA A-1 cells. Several metabolites of toremifene were also noted to increase doxorubicin accumulation in MDA A-1 doxorubicin resistant cells. Tore XVIII (deaminocarboxytoremifene), Tore IV (4-hydroxy-N-desmethyltoremifene) and N-desmethyltoremifene all increased the accumulation of doxorubicin significantly (114%, 128% and 42% respectively). Finally, we show evidence that toremifene and its active metabolites are present in high concentrations in human plasma following a single 200 mg oral dose.(ABSTRACT TRUNCATED AT 250 WORDS)

Antineoplastic Agents↗

Phase III studies of toremifene in metastatic breast cancer.

Toremifene has proven to be an effective and well tolerated antiestrogenic compound in the treatment of locally advanced and metastatic breast cancer. Results of phase II studies reveal that the efficacy using a 60 mg daily dose is comparable to tamoxifen. Since toremifene is less toxic in high doses than tamoxifen, in many clinical studies greater than or equal to 200 mg daily doses are used. For more accurate comparison of toremifene and tamoxifen five different clinical phase III studies have been initiated. By December 1, 1989, there were altogether 650 patients accrued into these studies. Two of the studies are double blind comparison of the drugs, one conducted in Finland, Sweden, and Norway, and the other in Denmark. Three open studies are going on, one in the Soviet Union, one in West Germany (BRD), and the third in the USA and Canada. To clarify dose-dependency of toremifene action, a daily dose from 60 mg up to 240 mg is used in these studies compared to 20-40 mg daily doses of tamoxifen. The results of these studies are still too early for critical evaluation, since in the double blind studies no interim comparison of the drugs is possible, and the results of the BRD and USA-Canada open studies will not be analyzed before sufficient patients for statistical evaluation have been included. Preliminary results of the Soviet trial comparing 60 and 240 mg toremifene doses with 40 mg of tamoxifen show that the response rate is highest in the 240 mg toremifene arm, although there are no statistically significant differences. Statistical significance in clinical studies like these is an important aspect of reliability, which based on trial protocols will be critically evaluated and discussed.

Antineoplastic Agents↗