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Cyclophosphamide versus methylprednisolone for treating neuropsychiatric involvement in systemic lupus erythematosus.

BACKGROUND: Neuropsychiatric involvement in systemic lupus erythematosus is complex and several clinical presentations are related to this disease such as: convulsions, chronic headache, transverse myelitis, vascular brain disease, psychosis and neural cognitive dysfunction. This systematic review is an update of a review performed in 2000. OBJECTIVES: To assess the efficacy and safety of cyclophosphamide and methylprednisolone in the treatment of neuropsychiatric manifestations of systemic lupus erythematosus. SEARCH STRATEGY: We searched EMBASE, LILACS, Cochrane Central Register of Controlled Trials (CENTRAL) and MEDLINE up to and including May 2005. Additional articles were sought through handsearching in relevant journals. There were no language restrictions. SELECTION CRITERIA: All randomised controlled trials that compared cyclophosphamide to methylprednisolone were included. Patients of any age and gender were included as long as they fulfilled the criterion of the American College of Rheumatology for the diagnosis of systemic lupus erythematosus and presented with any one of the following neuropsychiatric events: convulsions, organic brain syndrome and cranial neuropathy. Outcome measures included the following: a) overall mortality (primary event); b) motor and psychiatric deficit (primary event); c) clinical improvement (secondary event). DATA COLLECTION AND ANALYSIS: Data was independently extracted by two reviewers and cross-checked. The methodological quality of each trial was assessed by the same two reviewers. Details of the randomisation (generation and concealment), blinding, and the number of patients lost to follow-up were recorded. Dichotomous data was presented as relative risks with corresponding 95% confidence intervals and a clinical relevance table was produced. MAIN RESULTS: We found one randomised controlled trial of 32 patients comparing cyclophosphamide versus methylprednisolone for the treatment of neuropsychiatric involvement in the systemic lupus erythematosus. A significantly greater number of people responded to treatment in the cyclophosphamide group. Treatment response was found in 94.7% (18/19) of patients using cyclophosphamide compared with 46.2% (6/13) in the methylprednisolone group at 24 months (RR 2.05, 95% CI 1.13, 3.73) The NNT for response to treatment is 2. Cyclophosphamide use was associated with a reduction in prednisone requirements. A significant decrease in the number seizures per month was observed in the cyclophosphamide group. All the patients in the cyclophosphamide group had electroencephalographic improvement. No significant differences in adverse effects between the groups were found. It was not possible to extract more data from the study because there was a small number of patients in the others clinical subgroups of neurological manifestations and the authors did not provide sufficient information for data extraction. AUTHORS' CONCLUSIONS: This systematic review found one randomised controlled trial with a small number of patients in the different clinical subgroups of neurological manifestation. It seems that cyclophosphamide is more effective in the treatment of neuropsychiatric involvement in systemic erythematosus lupus compared with methylprednisolone. However, properly designed randomised controlled trials that involve large, representative numbers of individuals, with explicit clinical and laboratory diagnosis criteria, sufficient duration of follow-up and description of all relevant outcome measures are necessary to guide practice.

Cyclophosphamide↗

Nuclear aberrations in hair follicle cells of patients receiving cyclophosphamide. A possible in vivo assay for human exposure to genotoxic agents.

The toxic effect of cyclophosphamide on the proliferative cell population of hair follicles plucked from the human scalp was examined by the in vivo nuclear aberration assay. Patients participating in an independent clinical trial received oral low dose cyclophosphamide, intravenous high dose cyclophosphamide or oral placebo treatment. The percent of cells with nuclear aberrations (indicating apoptosis, a special form of cell death) and the percent of mitotic cells, in the hair matrix, were calculated for each patient before treatment and at several time points following cyclophosphamide or placebo treatment. The mean percentages of nuclear aberrations in both the treated Low dose and High dose cyclophosphamide patients were significantly higher than those for the pre-treatment and Placebo patients. The nuclear aberrations in hair follicle cells increased from pre-treatment (and Placebo) to treated Low dose and finally to treated High dose patients. The average percentage for pre-treatment samples from all patients was 0.06 +/- 0.03 SE. For 1 week and 1 month samples from Low dose patients it was 0.35 +/- 0.08 SE, and for combined 2,3 and 4 day samples from High dose patients it was 1.08 +/- 0.12 SE. Cyclophosphamide also had a significant effect on mitosis. A decrease in mitotic activity was observed at 1 month following the initial low dose cyclophosphamide treatment and at 24 +/- 2 h following each of the first two high dose cyclophosphamide treatments. The observed increase in nuclear aberrations following low dose as well as high dose cyclophosphamide suggests that it is feasible to use the nuclear aberration assay for in vivo human genotoxicity testing, using proliferating hair follicle cells.

Administration, Oral↗

Variability of cyclophosphamide uptake into human bronchial carcinoma: consequences for local bioactivation.

PURPOSE: The alkylating cytostatic prodrug cyclophosphamide is bioactivated by the human cytochrome P450 enzyme system. Since these enzymes are not only expressed in human liver, but also in extrahepatic tissue, local bioactivation of this drug may play an important role in its antineoplastic effects, e.g., chemotherapy of lung tumors. This would require uptake of significant amounts of cyclophosphamide into tumor tissue, which has not yet been demonstrated. METHODS: We used a recently developed, ex vivo isolated, ventilated and perfused human lung model to study cyclophosphamide uptake into bronchial carcinoma and healthy lung tissue. Following a standard lobectomy, lung samples containing the tumor were perfused with buffer containing 2 mM cyclophosphamide for 2 h. Cyclophosphamide concentrations in perfusate and healthy peripheral tissue were measured during the perfusion and in tumors at the end of perfusion. RESULTS: In all tissue samples, cyclophosphamide uptake was relatively poor, indicated by a tissue to perfusate ratio of 0.021. Moreover, in tumor samples, cyclophosphamide concentrations were significantly lower (P < 0.05) than in healthy lung tissue and showed pronounced interindividual variability. Median concentrations were 36.8 microg/g (26.9 44.2 microg/g) in healthy tissue and 5.1 microg/g (0.0-26.8 microg/g) in tumor samples. Tumor cyclophosphamide concentrations varied between 0 and 75% of those reached in healthy tissue. CONCLUSIONS: Our results indicate that CP tumor concentrations are modulated by factors different from dose and that expression of bioactivating enzymes in human lung or transfection of genes encoding these enzymes into tumor cells does not necessarily lead to local bioactivation of cyclophosphamide.

Aged↗

Aprepitant inhibits cyclophosphamide bioactivation and thiotepa metabolism.

BACKGROUND: Patients receiving the highly emetogenic high-dose chemotherapy regimen with cyclophosphamide, thiotepa and carboplatin (CTC) may benefit from the neurokin-1 receptor antagonist aprepitant in addition to standard anti-emetic therapy. As aprepitant has been shown to be a moderate inhibitor of the cytochrome P450 (CYP) 3A4 isoenzyme, its effect on the pharmacokinetics and metabolism of cyclophosphamide and thiotepa was evaluated. Moreover, preliminary results on the clinical efficacy of aprepitant in the CTC regimen are reported. PATIENTS AND METHODS: Six patients were enrolled in a protocol that employed a 4-day course of CTC high-dose chemotherapy with cyclophosphamide (1,500 mg/m2/day), thiotepa (120 mg/m2/day) and carboplatin (AUC 5 mg min/ml/day). Two patients received the tCTC protocol, which comprises two-third of the dose of CTC. In addition to standard anti-emetic therapy, the patients received aprepitant from one day before the start of their course until 3 days after chemotherapy. Blood samples were collected on days one and three of the course and analyzed for cyclophosphamide and its activated metabolite 4-hydroxycyclophosphamide, thiotepa and its main active metabolite tepa. The influence of aprepitant on the pharmacokinetics of cyclophosphamide and thiotepa was analyzed using a population pharmacokinetic analysis including a reference population of 49 patients receiving the same chemotherapy regimen without aprepitant and sampled under the same conditions. The frequency of nausea and vomiting in the six patients receiving CTC was compared with those of the last 22 consecutive patients receiving CTC chemotherapy without aprepitant. Inhibitory activity of aprepitant on cyclophosphamide and thiotepa metabolism was also tested in human liver microsomes. RESULTS: In our patient population, the rate of autoinduction of cyclophosphamide (P=0.040) and the formation clearance of tepa (P<0.001) were reduced with 23% and 33% when aprepitant was co-administered, respectively. Exposures to the active metabolite 4-hydroxycyclophosphamide and tepa were therefore reduced (5% and 20%, respectively) in the presence of aprepitant. In human liver microsomes, the 50% inhibitory concentrations (IC50) of aprepitant for inhibition of cyclophosphamide (IC50=1.3 microg/ml) and thiotepa (IC50=0.27 microg/ml) metabolism were within the therapeutic range. Patients receiving aprepitant experienced less frequently CINV both during and after the CTC course compared with the reference population (nausea 3.7 days vs. 5.8 days, P=0.052; vomiting 0.5 days vs. 4.8 days, P<0.001). CONCLUSION: Aprepitant inhibited both cyclophosphamide and thiotepa metabolism, most probably due to inhibition of the CYP 3A4 and/or 2B6 isoenzymes. The effects of this interaction are, however, small compared to the total variability. Addition of aprepitant may provide superior protection against vomiting in patients receiving the highly emetogenic high-dose CTC chemotherapy.

Antiemetics↗

Malignancy following treatment of rheumatoid arthritis with cyclophosphamide. Long-term case-control follow-up study.

A long-term retrospective case-control study was performed comparing 119 patients with rheumatoid arthritis treated with cyclophosphamide and 119 matched control patients with rheumatoid arthritis not treated with cyclophosphamide to determine the risk of subsequent malignancy. Thirty-seven malignancies were detected in 29 cyclophosphamide-treated patients, while 16 malignancies were found in 16 control patients (p less than 0.05) during a mean follow-up period of more than 11 years. Urinary bladder cancer (six cyclophosphamide-treated patients, no control patients) and skin cancer (eight cyclophosphamide-treated patients, no control patients) were identified as differing statistically between the groups, and hematologic malignancy (five cyclophosphamide-treated patients, one control patient) showed a similar trend. Survival analysis indicated that the rate of development of malignancy in the cyclophosphamide-treated patients was significantly greater than in the control patients at six years following drug initiation, and that this increased rate persisted even at 13 years (p less than 0.01). Of the many risk factors evaluated, mean total cyclophosphamide dose and duration and tobacco use were significantly increased in patients in whom cancer subsequently developed. These long-term complications must be considered seriously when cyclophosphamide or other cytotoxic drugs are initiated for the treatment of rheumatoid arthritis.

Arthritis, Rheumatoid↗

Investigation of the mechanism by which cyclophosphamide alters cytochrome P450 in male rats.

The effects of administration of the cytotoxic agent cyclophosphamide on cytochrome P450 have been examined in the liver microsomes of male rats. Microsomes were prepared after cyclophosphamide administration 1, 4 or 7 days prior to killing. The coadministration of cyclophosphamide with N-acetylcysteine has also been investigated. The microsomes were assayed for NADPH cytochrome P450 reductase, aminopyrine demethylase, erythromycin demethylase and androstenedione hydroxylase activities. Activities were generally unchanged 1 and 4 days after cyclophosphamide administration and were significantly decreased at 7 days. N-Acetylcysteine did not alter the effects of cyclophosphamide at 7 days. The effect of cyclophosphamide in vitro has also been examined. Microsomes from untreated animals were subjected to the above assays following in vitro metabolic activation of cyclophosphamide in a reconstituted system in the presence and absence of N-acetylcysteine. All enzyme activities were significantly reduced by the cyclophosphamide metabolites. The presence of N-acetylcysteine prevented this inactivation. The results of these investigations suggest that cyclophosphamide inactivates hepatic cytochrome P450 in vitro and in vivo via different mechanisms.

Acetylcysteine↗

High-dose cyclophosphamide in severe aplastic anaemia: a randomised trial.

BACKGROUND: High-dose cyclophosphamide has been proposed as an alternative immunosuppressive agent for treatment of severe aplastic anaemia, with a response rate similar to that with regimens containing antithymocyte globulin (ATG) but neither relapse nor clonal haematological complications. We undertook a phase III, prospective, randomised trial to compare response rates to immunosuppression with either high-dose cyclophosphamide plus cyclosporin or conventional immunosuppression with ATG plus cyclosporin in previously untreated patients. METHODS: Between June, 1997, and March, 2000, 31 patients were enrolled. 15 were assigned cyclophosphamide (1 h intravenous infusion of 50 mg/kg daily for 4 days) and 16 were assigned ATG (40 mg/kg daily for 4 days); both groups received cyclosporin, initially at 12 mg/kg daily with adjustment to maintain concentrations at 200-400 microg/L, for 6 months. The primary endpoint was haematological response (no longer meeting criteria for severe aplastic anaemia). The trial was terminated prematurely after three early deaths in the cyclophosphamide group. Analyses were by intention to treat. FINDINGS: Median follow-up was 21.9 months (range 1-33). There was excess morbidity in the cyclophosphamide group (invasive fungal infections, four cyclophosphamide vs no ATG patients; p=0.043) as well as excess early mortality (three deaths within the first 3 months cyclophosphamide vs no ATG patients; p=0.101). There was no significant difference at 6 months after treatment in the overall response rates among evaluable patients (six of 13 [46%] cyclophosphamide vs nine of 12 [75%] ATG). INTERPRETATION: A longer period of observation will be necessary to assess the secondary endpoints of relapse and late clonal complications as well as disease-free and overall survival. However, cyclophosphamide seems a dangerous choice for treatment of this disorder, given the good results achievable with standard therapy.

Adult↗

Emesis: antiemetic effect of cyclophosphamide at central receptors of multitransmitter system in the cat.

The antiemetic and emetic actions of the anticancer drug cyclophosphamide injected intracerebroventricularly (i.c.v.) and intravenously (i.v.) through chronically implanted cannulae were investigated in unanaesthetized cats. Cyclophosphamide in single doses was injected into the cerebral ventricles and intravenously for 5 consecutive days. The antiemetic effect was regularly obtained, whereas the emetic effect was unpredictable and of low incidence. The antiemetic effect of i.c.v. and i.v. cyclophosphamide was assessed, when the neurotoxic (mydriasis, restlessness, emesis, ataxia, muscular weakness) signs subsided, against i.c.v. noradrenaline- and clonidine-induced emesis. Noradrenaline-induced emesis was dose-dependently and dose-independently inhibited with i.c.v. and i.v. cyclophosphamide. On the other hand, i.c.v. cyclophosphamide inhibited the clonidine-induced emesis in dose-independent manner, while i.v. injection of the anticancer drug had no significant effect on the emesis. The inhibition of emesis was consistently obtained and no significant differences in the antiemetic potency were found between 1 and 5 consecutive days of treatment with cyclophosphamide. However, the inhibition of noradrenaline-induced emesis was dose-dependent only after first administration of i.c.v. cyclophosphamide. It is assumed that noradrenaline acts at alpha-adrenoceptors within the area postrema and clonidine at alpha-adrenoceptors within and outside the area postrema as well as at muscarinic cholinoceptors, 5-hydroxytryptamine, dopamine and histamine H1 and H2 receptors, outside the area postrema, of multitransmitter system subserving the central regulation of emesis. It is suggested, therefore, that the antiemetic effect of cyclophosphamide at the receptors of the multitransmitter central emetic system is non-specific. In general, the antiemetic effect, even non-specific, of an anticancer drug could have practical implication. Namely, when a combination of two or more anticancer drugs are used for chemotherapy, the emesis could not occur if one of them could antagonize the emesis induced by other anticancer drug/s. Finally, cyclophosphamide injected i.c.v., but not i.v., evoked shortlasting emesis in about 20% of cats. Since the emesis was unpredictable and of low incidence it was not possible to study the mechanism/s and site/s of action of the anticancer drug.

Animals↗

Protective effect of berberine on cyclophosphamide-induced haemorrhagic cystitis in rats.

The urotoxicity of cyclophosphamide and the protective effect of the herb berberine were investigated in this study. Administration of 150 mg/kg cyclophosphamide intraperitoneally caused a serious haemorrhagic cystitis in rats after 12 hr, including bladder oedema, haemorrhage, and dramatic elevation of nitric oxide metabolites (nitrite+nitrate) in urine and in plasma. To explore whether cyclophosphamide-induced cystitis could be prevented by berberine, rats were pretreated with a single dose or two doses of berberine at 50, 100, or 200 mg/kg intraperitoneally then challenged with cyclophosphamide (150 mg/kg, intraperitoneally). The results indicated that pretreatment of rats with berberine could reduce cyclophosphamide-induced cystitis in a dose-dependent manner. Furthermore, we found that two doses of berberine showed greater protection against cyclophosphamide urotoxicity than when given a single dose. In addition, our data shows that a single dose of 200 mg/kg berberine, or two doses of 100, and 200 mg/kg berberine could completely block cyclophosphamide-induced bladder oedema and haemorrhage, as well as nitric oxide metabolites increase in rat urine and plasma. In conclusion, our findings suggest that berberine could be a potential effective drug in the treatment of cyclophosphamide-induced cystitis, and provides us with the bright hope in the prevention and treatment of cyclophosphamide urotoxicity.

Animals↗

Cyclophosphamide decreases O6-alkylguanine-DNA alkyltransferase activity in peripheral lymphocytes of patients undergoing bone marrow transplantation.

O6-alkylguanine-DNA-alkyltransferase (ATase) levels were measured in extracts of peripheral blood lymphocytes taken at various times during chemotherapy from 19 patients with various haematological malignancies. Seven patients with advanced Hodgkin's disease received preparative treatment consisting of cyclophosphamide (1.5 g m-2, daily) administered on days 1 to 4 and BCNU (600 mg m-2) on day 5 prior to autologous bone marrow rescue (ABMR) delivered on day 7. Treatment in the remaining 12 patients consisted of cyclophosphamide (1.8 g m-2, daily) given on days 1 and 2 followed at day 4 with total body irradiation (TBI) administered in six fractions over the subsequent 3 days to a total dose of 1200 cGy prior to bone marrow transplantation. In the Hodgkin's group, significant decreases in ATase activity were seen during the cyclophosphamide treatment, and the median ATase nadir was 32% (range 0% to 57%) of pretreatment levels following 4 days of cyclophosphamide. In one patient, no ATase activity was detectable following the 4th cyclophosphamide treatment. ATase activities decreased further after BCNU administration to a median of 19% (range 0% to 32%) of pretreatment levels. Extensive cyclophosphamide-induced reduction of lymphocyte ATase levels was also seen in the other group of 12 patients treated with cyclophosphamide/TBI: postcyclophosphamide median ATase nadir was 35% (range 12% to 78%) of the pretreatment levels. No ATase depletion was seen when cyclophosphamide (up to 10 mM) was incubated for 2 h with pure recombinant human ATase in vitro whereas ATase activity was reduced by 90% on preincubation with 100 microns acrolein or with greater than 1 mM phosphoramide mustard. This suggests that a cyclophosphamide-induced decrease in ATase levels in human peripheral lymphocytes in vivo may be due to depletion mediated by the production of intracellular acrolein. Since ATase appears to be a principal mechanism in cellular resistance to the cytotoxic effects of BCNU and related alkylating agents, these observations suggest that a cyclophosphamide-induced reduction in ATase activity may be an additional factor in the effectiveness of the combined sequential therapy.

Acrolein↗

Cyclophosphamide, methotrexate and infusional 5-fluorouracil (infusional CMF) in metastatic breast cancer.

Bolus 5-fluorouracil (5-FU) is a phase-specific drug with a short plasma half-life that is used in combination with bolus cyclophosphamide and methotrexate in the treatment of breast cancer. The efficacy of 5-FU can be improved by continuous intravenous infusion using portable infusion pumps (infusional 5-FU). Infusional 5-FU, 200 mg m(-2) day(-1), in combination with standard doses of bolus cyclophosphamide and methotrexate, was evaluated in a phase I/II dose-finding study. The cyclophosphamide and methotrexate were administered in 28-day cycles as follows: cohort 1, cyclophosphamide 600 mg m(-2), days 1 and 8, and methotrexate 40 mg m(-2), day 1; cohort 2, cyclophosphamide 400 mg m(-2), days 1 and 8, and methotrexate 40 mg m(-2), day 1; cohort 3, cyclophosphamide 480 mg (m-2), days 1 and 8, and methotrexate 40 mg m(-2), day 1; cohort 4, cyclophosphamide 480 mg m(-2), days 1 and 8, and methotrexate 40 mg m(-2), days 1 and 8. Median overall survival was 10 months (range 3-21 months). Objective tumour responses were seen in 9 of 25 patients (36%, 95% CI 18-58%), including 3 of 13 patients (23%) previously treated for metastatic disease. Cohorts 1 and 4 proved to be too toxic, with five of six patients in cohort 1 and three of four in cohort 4 developing grade III/IV neutropenia. The dose intensity of cyclophosphamide achieved was as follows: cohort 1, 82%; cohort 2, 86%; cohort 3, 97%; cohort 4, 90%. Infusional 5-FU can be administered safely and is effective in combination with cyclophosphamide 480 mg m(-2), days 1 and 8, and methotrexate 40 mg m(-2), day 1, in the treatment of metastatic breast cancer.

Adult↗

Consolidation therapy with high-dose cyclophosphamide improves the quality of response in patients with chronic lymphocytic leukemia treated with fludarabine as induction therapy.

Fludarabine is the most active agent in the treatment of chronic lymphocytic leukemia (CLL). Despite this activity only a minority of patients treated with fludarabine achieve a complete response. We evaluated a new treatment program of sequential therapy with fludarabine followed by high-dose cyclophosphamide in previously untreated patients with CLL. This report details the results in 25 patients with previously untreated CLL. Patients received fludarabine (25 mg/m2/day x 5 days every 4 weeks for six cycles) as induction followed by consolidation with high-dose cyclophosphamide at one of three dose levels 1.5 g/m2, 2.25 g/m2, or 3 g/m2 administered every 2 weeks for three doses. High-dose cyclophosphamide was given with G-CSF support (5 microg/kg/day days 3-12). Complete response (CR) required a normal physical examination, normal CBC, a normal bone marrow evaluation including no residual lymphoid nodules on biopsy. A nodular response was defined as a complete response with the exception of an occasional residual nodule seen on bone marrow biopsy. Flow cytometric analysis for CD5:CD19 dual staining and kappa/lambda clonal excess was performed in all patients as a sensitive measure of minimal residual disease (MRD). Selected patients had patient/tumor-specific oligonucleotides generated that were subsequently used in a polymerase chain reaction as an extremely sensitive measure of MRD. There were no treatment-related deaths and no patient encountered unacceptable toxicity. After completion of this sequential regimen 76% (95% confidence interval: 59-93%) of patients had a major response: eight (32%) achieved a CR, four (16%) a nodular response, seven (28%) a PR, and six patients (24%) failed. Four patients withdrew from study during induction with fludarabine and did not receive at least one cycle of cyclophosphamide. Of the 21 patients who received consolidation with cyclophosphamide 10 (48%) had an improved quality of response when compared to that achieved with fludarabine. Two patients (8%) had no disease detectable by flow cytometry ('flow cytometric' CR) after six cycles of fludarabine. This improved to nine patients (36%) after high-dose cyclophosphamide. Following consolidation with high-dose cyclophosphamide three patients (12%) tested negative by PCR. All of these patients had morphologic evidence of residual disease after six cycles of fludarabine. Consolidation with high-dose cyclophosphamide increased the fraction of patients achieving a nodular response or CR three-fold (16% to 48%). This appears to be clinically relevant because with a median follow-up of 52 (range 34-78) months the projected 6-year survival for patients achieving a CR or NR is 91% compared to 41% for all others (P = 0.012). We conclude that sequential therapy with fludarabine followed by high-dose cyclophosphamide in previously untreated patients with CLL is safe and can improve the quality of response in a large proportion of patients compared to therapy with fludarabine alone.

Adult↗

Enhancement of the anti-tumour effect of cyclophosphamide by the bioreductive drugs AQ4N and tirapazamine.

The ability of the bioreductive drugs AQ4N and tirapazamine to enhance the anti-tumour effect of cyclophosphamide was assessed in three murine tumour models. In male BDF mice implanted with the T50/80 mammary carcinoma, AQ4N (50-150 mg kg(-1)) in combination with cyclophosphamide (100 mg kg(-1)) produced an effect equivalent to a single 200 mg kg 1 dose of cyclophosphamide. Tirapazamine (25 mg kg(-1)) in combination with cyclophosphamide (100 mg kg(-1)) produced an effect equivalent to a single 150 mg kg(-1) dose of cyclophosphamide. In C3H mice implanted with the SCCVII or RIF-1 tumours, enhancement of tumour cell killing was found with both drugs in combination with cyclophosphamide (50-200 mg kg(-1)); AQ4N (50-200 mg kg(-1)) produced a more effective combination than tirapazamine (12.5-50 mg kg(-1)). Unlike tirapazamine, which showed a significant increase in toxicity to bone marrow cells, the combination of AQ4N (100 mg kg(-1)) 6 h prior to cyclophosphamide (100 mg k(-1)) resulted in no additional toxicity towards bone marrow cells compared to that caused by cyclophosphamide alone. In conclusion, AQ4N gave a superior anti-tumour effect compared to tirapazamine when administered with a single dose of cyclophosphamide (100 mg kg(-1)).

Animals↗

Response of hematopoiesis to cyclophosphamide follows highly specific patterns in bone marrow and spleen.

Sublethal cyclophosphamide treatment induces unique regeneration patterns in bone marrow and the spleen of a mouse. Colony-forming units spleen (CFU-S)(day 8), CFU-granulocyte-macrophage (GM), nucleated cell counts, and their differentials in bone marrow, spleen, and peripheral blood were determined in mice treated with a single dose of cyclophosphamide. To study further the mechanisms underlying the unique patterns of hematopoietic regeneration after cyclophosphamide, mRNA levels for stem cell factor (SCF), Flt-3 ligand, and macrophage inflammatory factor (MIP)-1 alpha cytokines were determined in bone marrow and spleen. Granulocyte precursor cells were less depleted by cyclophosphamide compared to erythroid nucleated cells and lymphocytes both in bone marrow and spleen. Rapid expansion of granulopoietic cells increased the granulocytic/erythroid ratio significantly during regeneration. CFU-S in the bone marrow and the spleen showed different sensitivity in vivo but not in vitro to cyclophosphamide; CFU-GM were equisensitive in both sites. In bone marrow, an initial fast recovery of CFU-S and CFU-GM on days 2 to 3 was followed by a secondary deep decline in their numbers occurring between days 5 and 7. This decline was accompanied with a depression of CFU-S proliferation and with significantly increased CFU-S numbers in the peripheral blood. In the spleen, absolute CFU-S and CFU-GM numbers were increased several-fold at this time. Seven days after cyclophosphamide, the spleen contained 69% of the total body CFU-S compared to 4% in controls. Splenectomy did not abolish the secondary disease of CFU-S in the bone marrow, but it led to a marked elevation of circulating leukocytes and CFU-S. There was an eight-fold increase in the SCF mRNA level in the bone marrow 2 days after cyclophosphamide, corresponding with a high proliferation rate of CFU-S. No significant changes in mRNAs for Flt-3 ligand and MIP-1 alpha have been found. This in-depth analysis of murine hematopoietic responses to cyclophosphamide provides evidence for the complexity of the involved local and systemic regulations. This represents a significant challenge to experimental hematology, which could now be tackled with methods allowing the study of changes in the gene expression during cyclophosphamide-induced hematopoietic damage.

Aldehyde Dehydrogenase↗

Oral cyclophosphamide versus chlorambucil in the treatment of patients with membranous nephropathy and renal insufficiency.

We treated patients with idiopathic membranous nephropathy (iMGN) and renal insufficiency, using: (i) (n = 15) monthly cycles of steroids (1 g methyl-prednisolone i.v. on three consecutive days, followed by oral prednisone 0.5 mg/kg/day months 1, 3 and 5) and chlorambucil (0.15 mg/kg/day months 2, 4 and 6); or (ii) (n = 17) oral cyclophosphamide (1.5-2.0 mg/kg/day for 1 year) and steroids in a comparable dose. The groups were comparable in age, renal function and levels of proteinuria. During the 6 months preceding treatment, serum creatinine levels increased from 148 +/- 50 to 219 +/- 73 mumol/l in the chlorambucil group and from 164 +/- 86 to 274 +/- 126 mumol/l in the cyclophosphamide group. Median (range) follow-ups were: chlorambucil 38 months (8-71); cyclophosphamide 26 months (5-68) (NS). Renal function improved in both groups, but the improvement was short-lived in the chlorambucil group; 12 months after starting treatment, mean serum creatinine was 6.3 mumol/l lower in the chlorambucil group and 121 mumol/l lower in the cyclophosphamide group (p < 0.01). Four chlorambucil-treated patients developed ESRD, and five needed a second course of therapy, whereas only one cyclophosphamide-treated patient developed ESRD (p < 0.05). Remissions of proteinuria occurred more frequently after cyclophosphamide treatment (15/17 vs. 5/15; p < 0.01). Side-effects necessitated interruption of treatment in six patients on cyclophosphamide and in 11 on chlorambucil (p < 0.05). In our patients, oral cyclophosphamide was better tolerated than oral chlorambucil. The suggested greater efficacy of the oral cyclophosphamide regimen needs to be ascertained by longer follow-up.

Adult↗

Paternal cyclophosphamide exposure causes decreased cell proliferation in cleavage-stage embryos.

Exposure of the male germ cell to cyclophosphamide during spermatogenesis and sperm maturation can interfere with development of the embryo. When male rats were treated with a chronic low dose of cyclophosphamide for 4 wk there was a dramatic increase in early postimplantation loss in their progeny, characterized by implantation sites selectively lacking in embryonic tissues. The present study was designed to determine the earliest appearance of a paternal effect of cyclophosphamide treatment and to examine whether the embryonic lineage was selectively affected. Male Sprague-Dawley rats were orally dosed for 4-5 wk with saline or 6 mg/kg per day of cyclophosphamide; their progeny were obtained on Days 2, 2.5, 3, 4, and 4.5 of gestation. Paternal cyclophosphamide treatment had no effect on the mean number of embryos per pregnant female. However, as early as Day 3 of gestation, there was a significant decrease in cell number among the embryos sired by cyclophosphamide-treated males, increasing to a greater than 50% decrease in cell number by Day 4. The cell doubling time in embryos sired by treated males (16 h) was longer than that of controls (12 h). This decreased proliferation rate was confirmed by a dramatic decrease in the capacity of both Day 3 and Day 4 embryos sired by cyclophosphamide-treated males to incorporate [3H]thymidine over a 26-h culture period. Cytogenetic analysis in a limited number of blastomeres entering metaphase revealed no evidence of chromosomal abnormalities. Both the trophectoderm and the inner cell mass cells were proportionally decreased in Day 4.5 embryos sired by cyclophosphamide-treated males. Thus, paternal cyclophosphamide exposure affected both cell lineages in the conceptus as early as Day 3 of gestation.

Animals↗

Biological monitoring of cyclophosphamide and ifosfamide in urine of hospital personnel occupationally exposed to cytostatic drugs.

The occupational exposure of 21 nurses and pharmacy personnel from eight hospitals to cyclophosphamide and ifosfamide was determined by quantifying the amount of the drugs handled and by measuring the urinary excretion of the unmetabolised substances. Preparing antineoplastic drugs for intravenous treatment was the major task of all study participants. Twenty four hour urine was collected on days when cyclophosphamide and/or ifosfamide were mixed, on average 3900 mg cyclophosphamide and/or 5900 mg ifosfamide. The analyses were performed by gas chromatography with electron capture, detection limit 2.5 micrograms/24 hour urine. Despite standard safety precautions, including a vertical laminar air flow safety cabinet and gloves, cyclophosphamide was detected in 12 of 31 and ifosfamide in four of 21 urine samples on days when the drugs were handled. Excretion of cyclophosphamide ranged from 3.5 to 38 micrograms/24 h (mean 11.4 micrograms/24 h) urine, ifosfamide from 5 to 12.7 micrograms/24 h (mean 9 micrograms/24 h) urine. Based on an excretion rate of 11.3% unmetabolised cyclophosphamide, the average amount excreted corresponded to an uptake of 101 micrograms cyclophosphamide. For ifosfamide the mean quantity incorporated was 20 micrograms assuming that 45% of the drug was excreted. Pertaining to the doses handled, the uptake of cyclophosphamide and ifosfamide was estimated to be approximately 0.0025% and 0.0004% respectively. Despite time-consuming purification procedures, gas chromatographic analysis is a suitable method for monitoring personnel occupationally exposed to cyclophosphamide and ifosfamide and is a major contribution to the evaluation of potential health risks of exposed personnel.

Adult↗

Citrus extract modulates genotoxicity induced by cyclophosphamide in mice bone marrow cells.

The protective effect of citrus extract was investigated by using the micronucleus assay for anticlastogenic activity in mouse bone marrow cells; liver glutathione (GSH) content was determined against toxicity induced by cyclophosphamide. Mice were orally (gavage) pretreated with solutions of citrus peel extract (Citrus aurantium var. amara) prepared at three different doses (100, 200 and 400 mg kg(-1;) body weight) for 7 consecutive days. Then mice were injected intraperitoneally on the seventh day with cyclophosphamide (50 mg kg(-1)) and after 24 h killed for the evaluation of micronucleated polychromatic erythrocytes (MnPCEs) in bone marrow cells. Non-protein thiol levels in liver were estimated in mice injected with citrus extract with or without cyclophosphamide treatment. Administration of citrus extract before cyclophosphamide treatment significantly reduced the frequency of MnPCEs in mice bone marrow compared with the group treated with cyclophosphamide alone (P<0.0001-0.05). Citrus extract at a dose of 400 mg kg(-1) reduced MnPCEs 2.8 fold against genotoxicity induced by cyclophosphamide. Administration of cyclophosphamide depleted the GSH level in liver. Citrus extract showed excellent scavenging effects on 1,1-diphenyl-2-picryl hydrazyl radical (DPPH) at a concentration of 1.6 mg mL(-1). Application of citrus extract 1 h before cyclophosphamide treatment allowed GSH content to reach the normal level. It appeared that citrus extract, particularly flavonoids constituents with antioxidative activity, may return the GSH level to normal in stress conditions and reduces genotoxicity induced by cyclophosphamide in bone marrow cells.

Animals↗