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Isolation and structural confirmation of N-desmethyl topotecan, a metabolite of topotecan.

A sensitive high-performance liquid chromatography (HPLC) method for the determination of topotecan and total levels of topotecan (lactone plus its ring-opened hydroxycarboxylate form) was developed by the authors and used in several pharmacokinetics studies. During the analysis of plasma and urine samples collected in those studies, an additional peak eluting just after topotecan was observed. Approximately 100 ng of this potential metabolite was isolated from human urine using a solid-phase extraction procedure and purification by HPLC. Analysis of the isolated material by HPLC showed it to be approximately 95% pure. Mass spectrometry data along with the HPLC retention data and fluorescence data (in comparison with synthetic reference standard) are consistent with the metabolite's being N-desmethyl topotecan. The maximal concentrations of metabolite detected in human plasma and urine were relatively low. When topotecan was given as a 30-min infusion at 1.0 mg/m2 daily for 5 days every 3 weeks, the maximal plasma metabolite concentration (lactone plus the ring-opened hydroxycarboxylate form) was about 0.7% (n = 4) of the maximal total topotecan concentration. The average amount of metabolite excreted in urine during the treatment was 1-4% (n = 20) of the delivered dose.

Antineoplastic Agents

High-performance liquid chromatographic determination of the novel antitumour drug topotecan and topotecan as the total of the lactone plus carboxylate forms, in human plasma.

A sensitive high-performance liquid chromatographic (HPLC) assay has been developed and validated for the quantitation of the novel anticancer agent topotecan and topotecan as the total of its lactone and carboxylate forms in human plasma. Linear response in analyte standard peak area were observed over the concentration range 0.05-10 ng/ml using 100-microliters plasma samples. The instability of the drug in the biological matrix necessitated that the plasma fraction was obtained within 5 min after blood sampling by centrifugation, immediately followed by protein precipitation with cold methanol (-30 degrees C). Stability studies have indicated that topotecan is stable in these methanolic extracts for at least 4.5 months at -30 degrees C and 2 months at -70 degrees C. For the total determination of the lactone plus lactone ring-opened forms of the drug as topotecan, plasma samples were deproteinated with methanol and, subsequently, acidified with 7% (v/v) perchloric acid. Plasma samples for the measurement of total levels of the lactone and the ring-opened forms of topotecan were stable for at least 4.5 months when stored at -30 degrees C. After centrifugation, the supernatants were analysed by HPLC using a Zorbax SB-C18 Stable Bond column and methanol-0.1 M hexane-1-sulfonic acid in methanol-0.01 M N,N,N',N'-tetramethylethylenediamine (TEMED) in distilled water pH 6.0 (25:10:65, v/v) as the mobile phase. Detection was performed fluorimetrically. Within-run and between-run precision was always less than 12.1% in the concentration range of interest (0.05-10.0 ng/ml). The limit of quantitation is 0.05 ng/ml. Accuracy measurements ranged between 87.6 and 113.5%.

Antineoplastic Agents

Comparative activity of oral and parenteral topotecan in murine tumor models: efficacy of oral topotecan.

Studies were performed using several tumor models to determine the oral efficacy of topotecan. These studies were direct comparisons of oral administration with parenteral treatment by the intravenous, intraperitoneal, or subcutaneous routes. Treatment schedules included bolus treatments at 4- or 7-day intervals and a split-dose regimen (q3hx4) repeated at 4- or 7-day intervals. On the various schedules, the maximally tolerated dose of topotecan was either equivalent to or at most 1.7-fold that of parenteral administration, indicative of excellent oral bioavailability in the mouse. Orally administered topotecan was comparable in efficacy to parenteral treatment in four of five tumor models tested (i.v. L1210 leukemia, i.v. B16 melanoma, i.v. and s.c. Lewis lung carcinoma). The M5076 reticulum cell sarcoma implanted i.p. responded to i.p. and s.c. but not to orally administered topotecan. These studies provide convincing support for the clinical evaluation of orally administered topotecan.

Administration, Oral

Phase I and pharmacologic studies of topotecan in patients with impaired hepatic function.

BACKGROUND: Topotecan, a topoisomerase I inhibitor that has demonstrated anticancer activity toward leukemias and solid tumors in clinical trials, is eliminated via hepatic and renal routes. However, dosing guidelines for the administration of topotecan to patients with impaired hepatic function have not yet been established. PURPOSE: We compared the maximum tolerated doses (MTDs), the toxic effects, and the pharmacokinetics and pharmacodynamics of topotecan in patients who had refractory, malignant, solid tumors and who either had or lacked hepatic injury. The potential role of three substrate markers of liver function (indocyanin green [ICG]-- a marker of hepatic blood flow; lorazepam--a substrate marker of hepatic glucuronidation; and antipyrine--a substrate marker for cytochrome P450 activity) in optimizing topotecan doses for patients with liver injury was also evaluated. METHODS: Twenty-one cancer patients, 14 of whom had hepatic injury due to metastatic disease, biliary obstruction, or cirrhosis, were treated with intravenously delivered courses of topotecan consisting of 0.5, 1.0, or 1.5 mg/m2 of drug per day for 5 days. Most patients received more than one course of treatment, with new courses initiated at 3-week intervals. Patient responses (evaluated by tumor measurements) and treatment-induced toxic effects were assessed. Prior to the initiation of topotecan treatment, patients were given intravenous injections of ICG, lorazepam, and antipyrine to determine the plasma pharmacokinetics of these compounds. The pharmacokinetics of topotecan (both the lactone and the carboxylate forms) were determined by analysis of plasma and urine samples collected on the first day of the first course of drug treatment. Scatter plots of area under the plasma concentration versus time curves in relation to percent decreases in either absolute neutrophil count or platelet count were used to explore the pharmacodynamics of topotecan. The Student's t test and the Mann-Whitney U test were used to compare pharmacokinetic parameters between patients with and without abnormal hepatic function. Correlations were assessed using the Spearman's rank correlation coefficient (rs). Reported P values are based on two-tailed tests of significance. RESULTS: Patients with hepatic injury tolerated topotecan doses up to 1.5 mg/m2, i.e., the MTD of this drug established in previous studies. The nature and severity of treatment-induced toxic effects and the pharmacokinetics of topotecan were similar in patients with and without liver injury. No differences were observed in the urinary excretion of topotecan between the two patient groups. Clearances of total topotecan and its lactone species correlated only with clearance of ICG (rs = .64, P = .004; and rs = .68, P = .0017, respectively). The pharmacodynamic effects of topotecan were not altered by liver dysfunction. CONCLUSIONS AND IMPLICATIONS: Cancer patients with hepatic injury can be treated with topotecan at a starting dose of 1.5 mg/m2, given daily for 5 days and administered every 3 weeks. Topotecan dose modifications do not appear to be required for patients with hepatic dysfunction and normal renal function.

Adult

Activity of topotecan, a new topoisomerase I inhibitor, against human tumor colony-forming units in vitro.

BACKGROUND: Topotecan [(S)-9-dimethylaminomethyl(10-hydroxy-camptothecin), NSC 609699, SK&F 104864A], a semisynthetic analogue of the natural product camptothecin, is a cell cycle-specific drug that exerts antineoplastic activity through inhibition of topoisomerase I. Currently, topotecan is undergoing phase I and early phase II clinical trials. The dose-limiting toxicity for topotecan is myelosuppression. PURPOSE: Our purpose was to determine plasma concentrations and exposure times necessary for optimal clinical activity and tumor types that may be responsive in phase II clinical studies of topotecan. METHODS: A soft-agar cloning system assay was used to determine the in vitro effects of topotecan against cells from biopsy specimens of colorectal, breast, lung, ovarian, renal cell, and gastric cancers and cancers of unknown primary origin. We studied 141 freshly explanted tumor specimens, using 1-hour exposure to topotecan, and 80 were studied using continuous exposure. A decrease in tumor colony formation resulting from drug exposure was considered an in vitro response if survival of colonies was up to 50% of that in controls. RESULTS: With 1-hour exposure, in vitro responses were seen in 10% and 25% of assessable tumor specimens at final topotecan concentrations of 1.0 and 10.0 micrograms/mL, respectively. With continuous exposures at concentrations of 0.1 and 1.0 micrograms/mL, in vitro response rates were 34% and 76%, respectively. Specific activity was seen against colorectal, breast, non-small-cell lung, ovarian, and renal cell cancers, with responses observed in 27%, 25%, 32%, 39%, and 83%, respectively, of assessable tumor specimens after continuous exposure to 0.1 micrograms/mL topotecan. A subset of tumor specimens resistant to doxorubicin or fluorouracil was sensitive to topotecan, and the difference in sensitivity was statistically significant. In addition, some of the tumor specimens resistant to cyclophosphamide and etoposide were also sensitive to topotecan. CONCLUSIONS: Topotecan appears to be active in vitro against a variety of human tumors, including a subgroup resistant in vitro to standard antineoplastic agents. If plasma levels of 0.1 micrograms/mL can be achieved for prolonged periods of time in ongoing clinical trials, topotecan should have substantial clinical activity. IMPLICATIONS: Further clinical development of topotecan is warranted.

Antineoplastic Agents

Clinical pharmacokinetics of topotecan.

Topotecan (Hycamtin), a semisynthetic water-soluble derivative of camptothecin, is a potent inhibitor of DNA topoisomerase I in vitro and has demonstrated encouraging antitumour activity in a wide variety of tumours, including ovarian cancer and small cell lung cancer. Now approved in the US, topotecan has completed single-agent phase I testing; phase II/III trials are ongoing. Under physiological conditions the lactone moiety of topotecan undergoes a rapid and reversible pH-dependent conversion to a carboxylated open-ring form, which lacks topoisomerase I inhibiting activity. At equilibrium at pH 7.4 the open-ring form predominates. Topotecan is stable in infusion fluids in the presence of tartaric acid (pH < 4.0), but is unstable in plasma, requiring immediate deproteinisation with cold methanol after blood sampling and storage of the extract at -30 degrees C to preserve the lactone form. Topotecan has been administered in phase I trials in several infusion schedules ranging from 30 minutes to 21 days. The plasma decay of topotecan concentrations usually fits a 2-compartment model. Rapid hydrolysis of topotecan lactone results in plasma carboxylate levels exceeding lactone levels as early as 45 minutes after the start of a 30-minute infusion. The peak plasma concentrations and the area under the plasma concentration-versus-time curves (AUC) show linear relationship with increasing dosages. No evidence of drug accumulation is seen with daily 30-minute infusions for 5 consecutive days. Topotecan lactone is widely distributed into the peripheral space, with a mean volume of distribution (Vd) at steady-state of 75 L/m2. The mean total body clearance of the lactone form is 30 L/h/m2, with a mean elimination half-life (t1/2 beta) of 3 hours; renal clearance accounts for approximately 40% of the administered dose with a large interindividual variability. The oral bioavailablity of topotecan is approximately 35%. The low bioavailability may be caused by hydrolysis of topotecan lactone in the gut, yielding substantial amounts of the open-ring form, which is poorly absorbed. Renal dysfunction may decrease topotecan plasma clearance. Creatinine clearance is significantly, but poorly, correlated with topotecan clearance. Hepatic impairment does not influence topotecan disposition. Indices of systemic exposure (steady-state concentrations and AUC) are correlated with the extent of myelotoxicity. Sigmoidal functions adequately describe the relationships between systemic exposure and the percentage decrease in neutrophils.

Antineoplastic Agents

Phase I and pharmacologic study of topotecan in patients with impaired renal function.

PURPOSE: To determine the toxicities, pharmacokinetics, and recommended doses of the topoisomerase I inhibitor, topotecan, in patients with varying degrees of renal excretory dysfunction. PATIENTS AND METHODS: Fourteen patients with normal renal function [creatinine clearance (CrCl) > or = 60 mL/min] and 28 patients with varying degrees of renal dysfunction were treated with topotecan 0.4 to 2.0 mg/m2/d as a 30-minute infusion for 5 consecutive days every 3 weeks. Plasma and urine samples were obtained to determine the disposition of topotecan. RESULTS: In patients with mild renal dysfunction (CrCl = 40 to 59 mL/min), dose-limiting hematologic toxicity was observed in three of eight patients receiving topotecan 1.0 mg/m2/d and in two of five patients receiving topotecan 1.5 mg/m2/d. In patients with moderate renal dysfunction (CrCl = 20 to 39 mL/min), dose-limiting hematologic toxicity was observed in three of eight patients who received topotecan 0.5 mg/m2/d, and in two of four patients receiving topotecan 1.0 mg/m2/d; these events were more frequently observed in extensively pretreated patients. Pharmacokinetic analyses showed significant correlations between CrCl and the plasma clearance of both total topotecan [Spearman's correlation coefficient (r2) = 0.65, P = .00001] and topotecan lactone (r2 = 0.65, P = .00003). Mean systemic plasma clearance of total topotecan was significantly reduced in patients with mild (P = .04) and moderate (P = .00006) renal dysfunction. There was no evidence of changes in the pharmacodynamic relationship between topotecan exposure (AUC) and myelotoxicity. CONCLUSION: Dose adjustments are required in patients with moderate, but not mild, renal impairment. For patients with moderate renal dysfunction, the recommended starting dose of topotecan is 0.75 mg/m2/d for 5 days every 3 weeks. Moreover, extensively pretreated patients need further dose reductions.

Adult

Cerebrospinal fluid pharmacokinetics and penetration of continuous infusion topotecan in children with central nervous system tumors.

The purpose of this study was to describe the cerebrospinal fluid (CSF) penetration of topotecan in humans, to generate a pharmacokinetic model to simultaneously describe topotecan lactone and total concentrations in the plasma and CSF, and to characterize the CSF and plasma pharmacokinetics of topotecan administered as a continuous infusion (CI). Plasma and CSF samples were collected from 17 patients receiving 5.5 or 7.5 mg/m2 per day as a 24-h CI (5 patients, 7 courses), or 0.5 to 1.25 mg/m2 per day as a 72-h CI (12 patients, 12 courses). CSF samples were obtained from either a ventricular reservoir (VR) or a lumbar puncture (LP). Topotecan lactone and total (lactone plus hydroxy acid) concentrations were determined by HPLC and fluorescence detection. Using MAP-Bayesian modelling, a three-compartment model was fitted simultaneously to topotecan lactone and total concentrations in the plasma and CSF. The penetration of topotecan into the CSF was determined from the ratio of the CSF to the plasma area under the concentration-time curve. The median CSF ventricular lactone concentrations, obtained prior to the end of infusion (EOI), were 0.86, 1.4, 0.73, 5.3, and 4.6 ng/ml for patients receiving 0.5, 1.0, 1.25, 5.5, and 7.5 mg/m2 per day, respectively. EOI CSF lumbar lactone concentrations measured in three patients were 0.44, 1.1, and 1.7 ng/ml for topotecan doses of 1.0, 5.5, and 7.5 mg/m2 per day, respectively. In two patients receiving 1.25 mg/m2 per day, EOI CSF concentrations were obtained simultaneously from a VR and LP; the lumbar lactone concentrations were 30% and 49% lower than the ventricular concentrations. During a 24-h and a 72-h CI, the median CSF penetration of topotecan lactone was 0.29 (range 0.10 to 0.59) and 0.42 (range 0.11 to 0.86), respectively. A three-compartment model adequately described topotecan lactone and total concentrations in the plasma and CSF. Topotecan was therefore found to significantly penetrate into the CSF in humans. The pharmacokinetic model presented may be useful in the design of clinical studies of topotecan to treat CNS tumors.

Adolescent

Pharmacokinetics and pharmacodynamics of topotecan in patients with advanced cancer.

Topotecan, a semisynthetic water-soluble analog of camptothecin, is the first topoisomerase I-directed drug to enter clinical trial in the United States in over 20 yr. In this study, 30-min infusions of topotecan were administered daily for 5 days every 3 weeks at doses ranging from 0.5 to 2.5 mg/m2. Topotecan is reversibly hydrolyzed in a pH-dependent reaction in aqueous solutions to the ring-open hydroxy acid. The disposition of the closed ring lactone has been studied in 26 patients, and the disposition of both lactone and hydroxy acid has been studied in 12 patients. The clearance rate for topotecan lactone was 1220 ml/min/m2, with a range of 300-4760 ml/min/m2. The clearance rate for total topotecan (lactone and hydroxy acid) was 493 ml/min/m2, with a range of 163-815 ml/min/m2. A model for the disposition of lactone and hydroxy acid incorporating both reversible hydrolysis and elimination was developed. We have shown that topotecan is partially hydrolyzed prior to administration in parenteral solutions, and that clearance of the parent compound proceeds in vivo by conversion to hydroxy acid and elimination. Renal clearance accounted for 30 +/- 18% of drug elimination in patients. The relationship between topotecan dose and myelotoxicity is well fit by a sigmoidal Emax model, as is the relationship between total topotecan area under the concentration-time curve and myelotoxicity. The disposition of topotecan was also studied in mice. The clearance rate for total topotecan in mice was 330 ml/min/m2 after administration of topotecan lactone.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Topotecan in chronic lymphocytic leukemia.

BACKGROUND: Topotecan is one of a new class of agents that targets topoisomerase I (Topo I) and stabilizes the DNA-topo1 complex, ultimately resulting in cell death. The rationale for the use of topotecan in chronic lymphocytic leukemia (CLL) is based on the finding that levels of Topo I are elevated in the lymphocytes of patients with this disease. METHODS: Twelve patients with CLL were treated with topotecan to assess its clinical efficacy; in addition, DNA-protein cross-linking was measured after exposure of the cells to topotecan, in an attempt to correlate potential anti-CLL effects with this parameter. The median age of the patients was 63 years; all had received prior therapy with fludarabine and four (33%) were resistant to fludarabine. Four patients (33%) had also received therapy with chlorambucil, and three of them were resistant to this agent. Seven patients (58%) were Rai stage I-II and five (42%) were Rai stage III-IV. Topotecan was given as a 30-minute infusion at a daily dose of 2 mg/m2 for 5 days, and courses were repeated monthly. Cells were obtained from the patients before treatment and exposed to 2 microM topotecan or control in vitro. In addition, cells were obtained from patients after they received the first dose of topotecan and protein-bound DNA was measured with the same technique. RESULTS: No patient responded to therapy with topotecan (95% confidence interval, 0-27%). Nonhematologic toxicity was mild and thrombocytopenia occurred in four of eight patients whose conditions could be evaluated. One patients died of myocardial infarction and another died of fungal pneumonia. DNA-protein cross-linking was detected in all nine patients whose cells were assessed in vitro, with levels of cleavable complex ranging from twofold to 7.5-fold that of the control cells. Only two of eight patients with evaluable conditions had increased cross-linking detectable in circulating cells after the first dose of topotecan, which was consistent with the drug's lack of effect in vivo. CONCLUSIONS: Although exposure of cells from patients with CLL to topotecan in vitro at 2 microM resulted in detectable protein-DNA cross-linking, this effect was not seen in patients who received a bolus dose of 2 mg/m2, and no remissions were noted in 12 patients.

Adult

Phase I study of Topotecan, a new topoisomerase I inhibitor, in patients with refractory or relapsed acute leukemia.

The purpose of this study was to define, in a phase I study in leukemia, the maximally tolerated dose (MTD), major toxicities, and possible antitumor activity of Topotecan, a new topoisomerase I (topo I) inhibitor. Topotecan was delivered by a 5-day continuous infusion every 3 to 4 weeks to patients with refractory or relapsed acute leukemia, at doses ranging from 3.5 mg/m2 to 18 mg/m2 per course. Twenty-seven patients were treated, including 17 patients with acute myelogenous or undifferentiated leukemia, 7 with acute lymphocytic leukemia, and 3 with chronic myelogenous leukemia in blastic phase. Severe mucositis was the dose-limiting toxicity occurring in two of five patients treated with Topotecan 11.8 mg/m2 per course; a third patient had prolonged myelosuppression. At the MTD of 10 mg/m2 per course, 1 of 12 patients had severe mucositis and 5 had mild-to-moderate mucositis. Nausea, vomiting, diarrhea, and prolonged myelosuppression were uncommon. Three patients (11%) achieved a complete response, two (7%) had a partial response, and one (4%) had a hematologic improvement. The overall complete plus partial response rate was 19%, and 24% in acute myelogenous or undifferentiated leukemia. A novel in vitro assay that quantifies Topotecan-stabilized topo I-DNA complexes in patient samples was used, which demonstrated heterogeneity in the ability of Topotecan to interact with topo I, the intracellular target of Topotecan. This phase I study defined the MTD of Topotecan to be 10 mg/m2 by continuous infusion over 5 days every 3 to 4 weeks in patients with refractory or relapsed acute leukemia. Severe mucositis was the dose-limiting toxicity. Future studies will define the precise activity of Topotecan in different leukemia subsets, its efficacy in combination with other antileukemic drugs, and correlations between Topotecan-induced topo I-DNA complex formation and individual patient response to Topotecan.

Acute Disease

Clinical pharmacodynamics of continuous infusion topotecan in children: systemic exposure predicts hematologic toxicity.

PURPOSE: Topotecan pharmacokinetics and pharmacodynamics were studied following a 72-hour continuous infusion in 20 children with cancer (median age, 8 years; range, 3.5 to 18). METHODS: Serial plasma and urine samples were collected during the infusion and for up to 6 hours following the end of infusion. Topotecan (lactone) and total (lactone plus hydroxy acid) concentrations were determined by a sensitive and specific high-performance liquid chromatography (HPLC) assay with fluorescence detection. Using maximum a posteriori-Bayesian modeling, lactone and total plasma concentrations were described separately by a two-compartment model. Hematologic toxicity was expressed as the percent decrease in absolute neutrophil count (ANC) and platelet count. The relation between systemic exposure (SE) and hematologic toxicity was modeled using a sigmoid maximum-effect model. RESULTS: Systemic clearance rates for lactone and total topotecan were (mean +/- SD) 18.5 +/- 7.0 and 6.5 +/- 2.4 L/h/m2, respectively. Urinary recovery of total topotecan was (mean +/- SD) 67.5% +/- 25.2% (n = 12 patients). SE (area under the concentration-time curve from zero to infinity [AUC] or steady-state plasma concentration [Cpss]) to either topotecan lactone or total topotecan was significantly correlated to hematologic toxicity (P < .05). Overall, patients with a higher SE to topotecan experienced greater hematologic toxicity. CONCLUSION: These data demonstrate a relation between systemic exposure to topotecan and clinical effect (myelosuppression). Moreover, these data provide the basis for development of individualized topotecan administration schedules.

Adolescent

Escalating systemic exposure of continuous infusion topotecan in children with recurrent acute leukemia.

PURPOSE: To determine the maximum-tolerated systemic exposure (MTSE) and exposure-limiting toxicity of continuous infusion topotecan in children with recurrent acute leukemia. PATIENTS AND METHODS: Patients received escalating levels of topotecan systemic exposure as measured by steady-state topotecan lactone concentration (Css). Samples obtained within the first 24 hours were measured by high-pressure liquid chromatography (HPLC) for topotecan. A two-compartment model was fit to the data using a Bayesian algorithm. Css was calculated for each patient; if it differed by more than 20% of target, a new dosage was begun within 6 hours. Follow-up concentrations were obtained as well as serial plasma samples postinfusion. Toxicity and evidence of activity were assessed after each course. RESULTS: Thirteen boys and five girls received 23 courses of topotecan. Target Css ranged from 1.0 to 5.3 ng/mL (topotecan doses, 0.5 to 3.3 mg/m2/d). Nineteen of 23 courses were within +/- 20% of target after adjustment (range, 77% to 139%). The MTSE was 4.0 ng/mL, and mucositis was exposure-limiting at 5.3 ng/mL. A significant relation between topotecan lactone Css and the severity of mucositis was observed. Myelosuppression was experienced but was not considered exposure-limiting. One complete response and one partial response were noted. CONCLUSION: The MTSE for continuous infusion topotecan was 4.0 ng/mL. Responses were noted at Css comparable to those producing responses in a severe combined immunodeficiency (SCID) mouse model. Further studies of topotecan are warranted.

Acute Disease

Phase II study of topotecan in patients with extensive-stage small-cell carcinoma of the lung: an Eastern Cooperative Oncology Group Trial.

PURPOSE: To determine the response rate and survival of chemotherapy-naive patients with extensive-stage small-cell lung cancer (SCLC) treated with topotecan, and to determine the relationship of topotecan pharmacokinetics with response and toxicity. PATIENTS AND METHODS: Forty-eight patients with previously untreated, extensive-stage SCLC received 2.0 mg/m2 of topotecan daily for 5 days. The first 13 patients were treated without colony-stimulating factor (CSF) support; the next 35 patients received 5 micrograms/kg of granulocyte-colony-stimulating factor (G-CSF) for 10 to 14 days starting on day 6. Cycles were repeated every 3 weeks for a maximum of four cycles. Patients who had a partial response to topotecan after four cycles, stable disease after two cycles, or progressive disease at any time received salvage chemotherapy with cisplatin and etoposide. Topotecan pharmacokinetics were measured using a four-point sampling scheme. RESULTS: Of 48 patients, none had a complete response and 19 had a partial response, for an objective response rate of 39% (95% confidence interval [CI], 25.2% to 53.0%). The median response duration was 4.8 months (95% CI, 3.0 to 7.3). After a median follow-up duration of 18.2 months, the overall median survival time was 10.0 months (95% CI, 8.2 to 12.7); the 1-year survival rate was 39% (95% CI, 25.2% to 53.0%). Eight of 34 patients (24%) who received salvage chemotherapy responded. Four of 17 patients who did not respond to first-line therapy with topotecan responded to cisplatin and etoposide. The most common toxicity was hematologic. Ninety-two percent of patients treated without G-CSF developed grade 3 or 4 neutropenia, compared with 29% who received G-CSF. However, the incidence of neutropenic fevers was similar between the two groups (8% and 11%, respectively), and one patient in each group died of neutropenic fevers. There were no differences in objective tumor response, duration of response, time to treatment failure, or survival between the 13 patients who entered the study before G-CSF administration was mandated and the 35 patients who entered after and received G-CSF. There was poor correlation between the WBC count and absolute neutrophil counts (ANCs) and both the area under the curve (AUC) and maximum concentration++ (Cmx) of total topotecan in plasma. There was no correlation between the tumor response and either AUC or Cmx of total topotecan. CONCLUSION: The activity of topotecan in extensive-stage SCLC noted in this study warrants further investigation of this agent in phase III clinical trials.

Adult

Synergistic cytotoxicity with 2'-deoxy-5-azacytidine and topotecan in vitro and in vivo.

Synergy, when it can be convincingly established, is an effective strategy for the development of novel drug combinations. We have evaluated the interaction between 2'-deoxy-5-azacytidine (DAC) and 9-dimethylaminomethyl-10-hydroxycamptothecin (topotecan) based on our hypothesis that DAC, through DNA hypomethylation, might increase the transcription of topoisomerase I (topo I) leading to increased sensitivity to topotecan. Five human tumor cell lines, A375 melanoma, DX-3 melanoma, DMS4C non-small cell lung carcinoma, UP-1 unknown primary adenocarcinoma, SN12C renal carcinoma, and the murine CT-26 tumor cell line, were studied. Drug interactions were assessed using the multiple drug effect analysis of Chou and Talalay (Chors, T-C, and Talalay, P. Adv. Enzyme Regul., 22:27-54, 1984.). A synergistic interaction was documented in four human cell lines and the murine CT-26 line. An antagonistic interaction was observed with the SN12C cell line. The toxicology and efficacy of this combination were analyzed using CT-26 in BALB/c mice. Various treatment schedules were studied, including: single doses of each agent; single sequential combination treatments where DAC was administered followed by topotecan 24 h later; and multiple sequential treatments where DAC and topotecan were administered on days 1, 2, 8, and 9. Efficacy studies showed that the single sequential combination of DAC (50 mg/kg) and topotecan (10 mg/kg) resulted in tumor growth delay as compared to single doses of DAC (50 mg/kg) or topotecan (10 mg/kg). When the multiple sequential combination schedule was used, the antitumor effect was more pronounced. In that experiment 50% of the control animals had tumors of 20 mm by day 28. For animals receiving a single sequential treatment with DAC and topotecan, the median time until the mean tumor size reached 20 mm was 38 days, and for the group with multiple sequential combination treatments the time was 51 days. Studies of the mechanism of the interaction showed that the activity of topotecan versus each cell line correlated with the topo I activity in nuclear extracts However, there was no correlation between topo I levels and synergy and no reproducible increase in topo I activity following exposure to DAC. Thus, while the exact mechanism of the interaction remains unclear, DAC can be effectively combined with topotecan to enhance antitumor activity.

Adenocarcinoma

Schedule-dependent cytotoxicity of topotecan alone and in combination chemotherapy regimens.

The schedule-dependent cytotoxic effects of topotecan were evaluated in tissue culture experiments with Chinese hamster V79 cells. One hour exposure to topotecan resulted in a typical phase-specific cell killing curve in which increasing concentrations kill progressively more cells and then reach a plateau when all susceptible cells are killed. In contrast, exposure for 24 h results in a steep concentration-response curve with no plateau. Other S-phase agents such as hydroxyurea or aphidicolin antagonized cytotoxicity when administered by simultaneous exposure with topotecan. Combinations of melphalan, BCNU (1,3 bis(2-chloroethyl)-1-nitrosourea), or cisplatinum with topotecan were most effective when cells were exposed to the alkylating agent or platinating agent during the first hour of a 24-h topotecan exposure. Combinations of topotecan with etoposide or adriamycin produce more cytotoxicity when topotecan is administered by prolonged exposure; however, there is no significant difference depending on whether the topoisomerase II inhibitor is added at the beginning or end of the topotecan exposure. These studies show the importance of appropriate dose scheduling to obtain optimal interaction of chemotherapeutic agents given in combination with topotecan.

Alkylating Agents

Plasma and cerebrospinal fluid pharmacokinetic study of topotecan in nonhuman primates.

Topotecan, a water soluble semisynthetic analogue of camptothecin, is a topoisomerase I inhibitor that has recently entered phase II clinical trials. Topotecan has shown significant preclinical activity in refractory murine tumors and in human tumor xenograft models. In addition, objective antineoplastic activity has been observed in recent adult phase I clinical trials. Topotecan is unstable in solution and is rapidly and spontaneously converted to a less active open ring form which predominates at physiological pH. This study was undertaken to better define the pharmacokinetic behavior of this highly unstable compound in both plasma and cerebrospinal fluid (CSF) and to measure the degree of CSF penetration of this novel antineoplastic agent. Three nonhuman primates with indwelling Ommaya reservoirs received 10 mg/m2 i.v. topotecan administered as a 10-min infusion. Frequent plasma and CSF samples were obtained and immediately extracted and assayed with a reverse phase high performance liquid chromatography assay to quantitate the concentration of topotecan (lactone). Samples were then acidified and reinjected to quantitate total drug (lactone ring plus open ring). Peak plasma concentrations of topotecan ranged from 0.27 to 0.45 microM. Plasma disappearance of the lactone ring was biexponential with a distribution half-life (t1/2 alpha) of 22 +/- 5 min and an elimination half-life (t1/2 beta) of 1.3 +/- 0.1 h. Total body clearance of topotecan was 72.1 +/- 15.8 liters/h/m2. The volume of distribution at steady state was 88.6 +/- 33.2 liters/m2. Peak CSF concentrations of topotecan occurred at 30 min following drug administration and ranged from 0.044 to 0.074 microM. CSF disappearance paralleled that in plasma. The mean ratio of the area under the CSF concentration-time curve to that in plasma was 0.32 (range, 0.29 to 0.37). The mean CSF penetration of topotecan exceeds 30%, which is significantly greater than the penetration of most structurally similar chemotherapeutic agents. The impact of chemotherapy on the survival of patients with primary or metastatic central nervous system malignancies is very limited. Therefore, this novel antineoplastic agent is an excellent candidate for further study in patients with high risk or refractory central nervous system tumors.

Animals

Efficacy and safety of topotecan in the treatment of advanced ovarian carcinoma.

Topotecan (Hycamtin; SmithKline Beecham Pharmaceuticals, Philadelphia, PA) has emerged as a promising new chemotherapy drug for patients with refractory and progressive stage III and IV epithelial ovarian carcinoma. A semisynthetic analog of camptothecin, topotecan exerts its antitumor effects through inhibition of the nuclear enzyme topoisomerase I. Phase I trials found antitumor activity in many topotecan dosing schedules, one of which involved the administration of topotecan daily as a 30-minute infusion for 5 consecutive days, with the cycle repeated every 21 days. With this schedule, the maximum tolerated dose was found to be 1.5 mg/m2/d. In a series of phase II investigations in platinum-resistant ovarian cancer patients, response rates have ranged from 13% to 25%. In addition, a number of patients exhibit prolonged disease stabilization, with overall rates of nonprogression ranging from 37% to 81%. Activity in paclitaxel-resistant patients is also seen, with a multicenter phase II trial showing a response rate of 13% among first-line paclitaxel failures and 14.3% among second-line failures. A phase III trial compared topotecan and paclitaxel as second-line therapies in 226 advanced ovarian cancer patients who had been previously treated with platinum-containing regimens. Preliminary data show that patients treated with topotecan evidenced a higher response rate (23% v 14%), longer response duration (32 weeks v 20 weeks), and significantly longer time to progression (23 weeks v 14 weeks; P = .002). Additional schedules are still being evaluated, with a phase II trial of prolonged infusion of relatively low-dose topotecan over 21 days demonstrating a 37% response rate in 16 patients. All phase II and III trials analyzed thus far indicate that topotecan is well tolerated with an acceptable toxicity profile, with myelosuppression as the dose-limiting toxicity. Hematologic toxicities are predictable, of short duration, and noncumulative. Mild to moderate nonhematologic toxicities are manageable. These findings demonstrate that topotecan is a viable new second-line or salvage treatment for patients with advanced ovarian cancer who are refractory or resistant to prior chemotherapy, including platinum-based agents and/or paclitaxel.

Antineoplastic Agents