PubMed Health⌕ Search

SEARCH · PubMed Health

Results for “CYCLOPHOSPHAMIDE”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 253 records · Page 14Linked to original sources

Effects of macrophage-colony-stimulating factor on cyclophosphamide-injected mouse NK1.1+ cell activity.

We injected cyclophosphamide into mice and examined their natural killer (NK) activity both in vitro and in vivo. Cyclophosphamide injection temporarily abrogated the lung clearance activity of Yac-1 lymphoma cells, which is considered to be an index of NK activity in vivo. However, administration of recombinant human macrophage-colony-stimulating-factor (rhM-CSF) to cyclophosphamide-injected mice restored the lung clearance activity. To clarify whether the administration of rhM-CSF activated NK cells, we purified NK1.1+ cells from mice treated with cyclophosphamide and/or rhM-CSF and examined their functions (cytotoxicity, proliferation, and interferon gamma production) in vitro. Cyclophosphamide injection decreased the number, but did not suppress the functions of NK1.1+ cells. The numbers of NK1.1+ cells in cyclophosphamide-injected mice restored by rhM-CSF administration. And the functions of NK1.1+ cells from both saline-injected and cyclophosphamide-injected mice were accelerated by rhM-CSF administration. These results suggested that the temporary abrogation of NK activity in vivo caused by cyclophosphamide injection was due to a decrease in the number and not to suppression of the functions of NK1.1+ cells. The injection of cyclophosphamide into mice increased the number of tumor (B16 melanoma) nodules formed in the lungs and liver. However, treatment with rhM-CSF recovered the anti-metastatic activity in the lungs of cyclophosphamide-injected mice. These results show that administration of rhM-CSF restores NK activity suppressed by cyclophosphamide injection in vivo.

Animals↗

Cellular levels of aldehyde dehydrogenases (ALDH1A1 and ALDH3A1) as predictors of therapeutic responses to cyclophosphamide-based chemotherapy of breast cancer: a retrospective study. Rational individualization of oxazaphosphorine-based cancer chemotherapeutic regimens.

PURPOSE: In preclinical models, established molecular determinants of cellular sensitivity to cyclophosphamide, long a mainstay of chemotherapeutic regimens used to treat breast cancers, include the aldehyde dehydrogenases that catalyze the detoxification of this agent, namely, ALDH1A1 and ALDH3A1. As judged by bulk quantification of relevant catalytic activities, as well as of relevant proteins (ELISAs), tissue levels of these enzymes vary widely in primary and metastatic breast malignancies. Thus, interindividual variation in the activity of either of these enzymes in breast cancers could contribute to the wide variation in clinical responses obtained when such regimens are used to treat these malignancies. Direct evidence for this notion was sought in the present investigation. METHODS: Cellular levels of ALDH1A1 and ALDH3A1 in 171 repository human breast tumor (122 primary and 49 metastatic) samples were semiquantified using immunocytochemical staining. Clinical responses were retrieved from the archived medical records of each of 48 metastatic breast cancer sample donors, 26 of whom had been treated with a cyclophosphamide-based chemotherapeutic regimen subsequent to tumor sampling and 22 of whom had not. The premise that cellular levels of ALDH1A1 and/or ALDH3A1 predict clinical responses to cyclophosphamide-based chemotherapeutic regimens was submitted to statistical analysis. RESULTS: Confirming an earlier report, ALDH1A1 and ALDH3A1 levels varied widely in both primary and metastatic breast tumor cells. When measurably present, each of the enzymes appeared to be evenly distributed throughout a given tumor cell population. Retrospective analysis indicated that cellular levels of ALDH1A1, but not those of ALDH3A1, were (1) significantly higher in metastatic tumor cells that had survived exposure to cyclophosphamide than in those that had not been exposed to this drug, and (2) significantly higher in metastatic tumors that did not respond (tumor size did not decrease or even increased) to subsequent treatment with cyclophosphamide-based chemotherapeutic regimens than in those that did respond (tumor size decreased) to such regimens. The therapeutic outcome of cyclophosphamide-based chemotherapy corresponded to cellular ALDH1A1 levels in 77% of cases. The frequencies of false-positives (cyclophosphamide-based chemotherapy not effective when a low level of ALDH1A1 predicted it would be) and false-negatives (cyclophosphamide-based chemotherapy effective when a high level of ALDH1A1 predicted it would not be) were 0.00 and 0.43, respectively. Thus, partial or complete responses to cyclophosphamide-based chemotherapy occurred 2.3 times more often when the ALDH1A1 level was low than when it was high. CONCLUSIONS: Given (1) the wide range of ALDH1A1 levels observed in malignant breast tissues, (2) that ALDH1A1 levels in primary breast tumor tissue, as well as those in normal breast tissue, directly reflect ALDH1A1 levels in metastatic breast tumor cells derived therefrom, and (3) the findings reported here, measurement of ALDH1A1 levels in primary breast malignancies and/or normal breast tissue prior to the initiation of chemotherapy is likely to be of value in predicting the therapeutic potential, or lack of potential, of cyclophosphamide and other oxazaphosphorines, e.g. ifosfamide, in the treatment of primary, as well as metastatic, breast cancer, thus providing a rational basis for the design of individualized therapeutic regimens for this disease. Failure to observe the expected inverse relationship between clinical responses to cyclophosphamide-based chemotherapeutic regimens and ALDH3A1 levels was probably because even the highest breast tumor tissue ALDH3A1 level thus far reported appears to be below the threshold level at which ALDH3A1-catalyzed detoxification of oxazaphosphorines becomes pharmacologically meaningful. However, ALDH3A1 levels in certain other malignancies, e.g. those of the alimentary tract and lung, may be of a sufficient magnitude in that regard.

Adult↗

Effects of polysaccharide peptide (PSP) from Coriolus versicolor on the pharmacokinetics of cyclophosphamide in the rat and cytotoxicity in HepG2 cells.

Polysaccharide peptide (PSP), isolated from Coriolus versicolor COV-1, has been shown to restore the immunological effects against cyclophosphamide-induced immuno-suppression, although the mechanism(s) involved remain uncertain. This study investigated the PSP-cyclophosphamide interaction by studying the effects of PSP on the pharmacokinetic of cyclophosphamide in the rat and the effect of PSP on the cytotoxic effects of cyclophosphamide on a cancer cell line (HepG2 cells). In the pharmacokinetic studies in the rat, acute pre-treatment of PSP (4 micromol/kg/day, i.p.) decreased the clearance (CL) of cyclophosphamide by 31%, with a concomitant increase in the area under concentration-time curve (AUC) by 44%, and prolongation of the plasma half-life (T(1/2)) by 43%. Sub-chronic pre-treatment of PSP (2 micromol/kg/day, i.p., 3 days) decreased the CL of cyclophosphamide by 33%, with a concomitant increase in the AUC by 50%, and prolongation of the plasma T(1/2) by 34%. In cytotoxicity studies using HepG2 cells, non-toxic dose of PSP (1-10 microM) enhanced the cytotoxicity of cyclophosphamide. PSP at 10 microM further decreased HepG2 cell viability by 22% compared to when cyclophosphamide was present alone. In summary, PSP enhanced the cytotoxic effect of cyclophosphamide on a cancer cell line in vitro and altered the pharmacokinetics of cyclophosphamide in vivo in the rat. Both of these effects may be beneficial in the use of PSP as an adjunct to cyclophosphamide treatment.

Agaricales↗

Cyclophosphamide treatment causes impairment of sperm and its fertilizing ability in mice.

This study is focused on the toxicological effect of cyclophosphamide on male mice reproductive system. In the present study, cyclophosphamide was injected intraperitoneally (ip) at the level of 50-200mg/kg body weight into 6-weeks old ICR male mice once in a week for a period of 5 weeks. The animals were sacrificed after 1st and 5th week of last injection. Reduction in weight of testis and epididymis were observed both in 1st and 5th week group mice after administration with increasing concentration of cyclophosphamide. The weight of the body significantly decreased in both 1st and 5th week group in mice treated with 200mg/kg cyclophosphamide. The weight of the testis significantly decreased with all doses of cyclophosphamide in 1st week group, whereas, in 5th week group significant reduction was observed only in 200mg/kg dose of cyclophosphamide. The sperm motility was analyzed with Computer-Assisted Sperm Analysis (CASA). The motility of caudal sperm decreased with increasing concentration of cyclophosphamide in the 1st week group, whereas, it revived after 5th week. The total sperm counts in the epididymis of 1st week group mice declined significantly while significant restoration of the same was observed with mice treated with 50,100 and 150 mg/kg doses in the 5th week group. The intact acrosome was lower with 150 and 200mg/kg doses in both 1st and 5th week group. The live sperm was reduced to 29% in mice treated with 200mg/kg in the 5th week group. The decrease in the pregnancy rate of female mice was 17, 50, 58 and 100% when mated with male mice injected with 50, 100, 150 and 200mg/kg dose, respectively. Seminiferous tubules of mouse testis were severely damaged in the 1st week group. However, reinstate of sperm within the seminiferous tubules was observed in the 5th week group mice. Significant decrease in serum luteinizing hormone (LH) was observed in the 1st week group treated with 50, 100, 150 and 200mg/kg dose of cyclophosphamide. However, no significant difference was observed in the serum follicle-stimulating hormone (FSH), whereas, a decrease of about 98% in serum testosterone level was observed in cyclophosphamide treated mice. The decrease in the mean testosterone levels of cyclophosphamide treated mice served as proof for the damage of testis. These results demonstrate that cyclophosphamide caused temporary interference of normal male reproductive system with low dose treatment, but might be permanent dysfunction in high dose treatment.

3-Hydroxysteroid Dehydrogenases↗

Expression of inducible nitric oxide synthase in primary culture of rat bladder smooth muscle cells by plasma from cyclophosphamide-treated rats.

Intraperitoneal administration of cyclophosphamide (50-150 mg/kg) for 6 or 12 h induced edema and hemorrhagic changes in rat bladder, which were both dose and time-dependent. Pretreatment with nitric oxide synthase (NOS) inhibitors N(G)-nitro-L-arginine methyl ester (L-NAME, 40 mg/kg) or with s-methylisothiourea (40 mg/kg) ameliorated the cyclophosphamide-induced cystitis. Cyclophosphamide administration also produced increases in NO-metabolite levels (nitrate+nitrite) in the urine and plasma of rats. Greater increases in NO metabolites were observed with 150 than with 50 mg/kg of cyclophosphamide, and at 12 than at 6 h after cyclophosphamide injection. Pretreatment with L-NAME and s-methylisothiourea significantly reduced cyclophosphamide-induced increases in urine and plasma NO-metabolite levels. To explore the mechanism by which cyclophosphamide increases the expression of inducible NOS (iNOS), primary cultures of rat bladder smooth muscle were developed. Exposure to tumor necrosis factor alpha (TNF-alpha) plus interferon gamma, produced a marked increase in the expression of iNOS and in NO production in the culture medium. However, exposure to cyclophosphamide or to its metabolite acrolein (10(-6)-10(-4) M for 24 h) did not increase iNOS or NO-metabolite levels. On the other hand, incubation of primary cell cultures with plasma from rats treated with cyclophosphamide (150 mg/kg, 12 h) produced a marked increase in iNOS expression and NO production. Taken together, our results indicate that NO plays an important role in the pathogenesis of cyclophosphamide-induced cystitis in rats, and some factors may be released in cyclophosphamide-treated rat plasma which stimulate iNOS expression in primary culture of rat bladder smooth muscle cells.

Acrolein↗

Cyclophosphamide rescue therapy for chronic rejection after lung transplantation.

BACKGROUND: Obliterative bronchiolitis remains the leading cause of late mortality after heart-lung and lung transplantation. Although several treatment options have been advocated, none has proven to be very successful. Cyclophosphamide is effective in the treatment of idiopathic pulmonary fibrosis, and chronic rejection after lung transplantation is also a fibroproliferative process. We therefore conducted an open, uncontrolled study to look at the effect of cyclophosphamide rescue therapy in the treatment of chronic rejection in lung transplant recipients. METHODS: Between October 1996 and March 1998 cyclophosphamide was prescribed to 7 patients with chronic and persistent rejection who failed to respond to conventional therapy (pulse steroids or antilymphocyte products or both). RESULTS: Cyclophosphamide therapy was initiated on postoperative day 478+/-366. At that time 2 patients were in bronchiolitis obliterans syndrome stage 0, 3 patients in stage 1, and 2 patients in stage 2. Their best postoperative forced expiratory volume in one second (FEV1) was 2.19+/-0.75 L. Three months before the start of cyclophosphamide the FEV1 had declined to 1.90+/-0.83 L, with a further decline to 1.63+/-0.64 L at the time of initiating cyclophosphamide. In 6 of the 7 patients the FEV1 stabilized or increased after cyclophosphamide had been started (mean FEV1 3 and 6 months after cyclophosphamide of 1.77+/-0.58 L and 1.79+/-0.48 L, respectively). One patient died 18 months after the introduction of cyclophosphamide due to progressive obliterative bronchiolitis. In one patient cyclophosphamide had to be stopped because of persistent leucopenia. CONCLUSIONS: Cyclophosphamide might be a promising therapeutic alternative for the treatment of chronic persistent rejection after lung transplantation.

Adult↗

Bladder and kidney cancer following cyclophosphamide therapy for non-Hodgkin's lymphoma.

BACKGROUND: Cyclophosphamide is an established bladder carcinogen, but few studies have examined the relationship between dose and effect. The largest analysis to date included only seven cases of bladder cancer. No investigation has estimated the risk of kidney cancer. PURPOSE: The purpose of this study was to quantify the risk of bladder and kidney cancer following cyclophosphamide therapy. METHODS: Within a cohort of 6171 two-year survivors of non-Hodgkin's lymphoma (NHL), 48 patients with secondary cancer of the urinary tract were identified and matched to 136 control subjects with NHL who did not develop a second malignancy. Detailed information on chemotherapeutic drugs and cumulative dose received was collected for all subjects. Radiation dose to the target organ was estimated from individual radiotherapy records. Evaluations of the risk of second cancer as a result of treatment with cyclophosphamide alone, radiation alone, or both therapies were made relative to those patients who were exposed to neither treatment modality. RESULTS: A significant 4.5-fold risk of bladder cancer (95% confidence interval [CI] = 1.5-13.6) followed therapy with cyclophosphamide, and risk was dependent upon cumulative dose. Among patients who received a total amount of cyclophosphamide of less than 20 g, a nonsignificant 2.4-fold risk of bladder cancer was apparent. Significantly elevated sixfold (95% CI = 1.3-29) and 14.5-fold (95% CI = 2.3-94) risks of bladder malignancy followed cumulative doses of 20-49 g and 50 g or more, respectively (P value for trend = .004). Radiotherapy given without cyclophosphamide was associated with a nonsignificant increased risk of bladder malignancy. Excess bladder cancer risk following treatment with both radiotherapy and cyclophosphamide was as expected if individual risks were summed. Neither radiotherapy nor cyclophosphamide was associated with excesses of kidney cancer. CONCLUSIONS: Cyclophosphamide-related bladder cancer is dose dependent. For patients given cumulative doses between 20 and 49 g, the absolute risk of bladder cancer is on the order of three excess cancers per 100 NHL patients after 15 years of follow-up. At cumulative doses of 50 g or more, the excess risk increases to approximately seven excess bladder cancers per 100 NHL patients. IMPLICATIONS: The strong dose-response relationship and high absolute risk of bladder cancer underscore the importance of limiting the cumulative dose of cyclophosphamide to what is required to achieve therapeutic end points. The risk of secondary bladder malignancy and other late sequelae of therapy must be carefully weighted against the curative gains provided by cyclophosphamide. Moreover, long-term side effects of therapy that might be acceptable in cancer treatment may need to be re-evaluated for patients with non-neoplastic disorders.

Aged↗

Cyclophosphamide as an alternative to azathioprine in cardiac transplant recipients with suspected azathioprine-induced hepatotoxicity.

AZA has been reported to cause liver dysfunction in some recipients of solid organ transplants. To assess the safety and efficacy of cyclophosphamide in maintenance immunosuppression in the setting of AZA-induced liver dysfunction, we retrospectively reviewed the records of 320 surviving cardiac transplant recipients in Utah. Cyclophosphamide was substituted for AZA in 29 patients due to elevated liver enzymes. Patients were switched to cyclophosphamide 689 +/- 104 days after transplantation; total follow-up after initiation of cyclophosphamide was 540 +/- 56 days. The dose of cyclophosphamide after 2 and 6 months of cyclophosphamide therapy was 62 +/- 6 mg/day (0.8 +/- 0.1 mg/kg/day) and 48 +/- 5 mg/day (0.6 +/- 0.1 mg/kg/day), respectively, compared with 233 +/- 20 mg/day (2.9 +/- 0.2 mg/kg/day) of AZA. The substitution of cyclophosphamide for AZA was associated with a significant improvement in liver function tests. Liver enzymes decreased by up to 49% (P = 0.027), while serum bilirubin decreased by 58% (P < 0.001). Rejection frequency did not increase; neither corticosteroid nor CsA dosage was altered significantly after the substitution of cyclophosphamide. Significant bone marrow suppression was not observed; specifically, no significant change in white blood cell count or hematocrit occurred. Complications of treatment with cyclophosphamide were few; only 1 patient discontinued cyclophosphamide because of alopecia. We conclude that cyclophosphamide appears to be safe in maintenance immunosuppression, permitting the discontinuation of AZA in patients with AZA-induced hepatic dysfunction without necessitating the augmentation of either corticosteroids or CsA.

Alanine Transaminase↗

Reversibility of the effects of cyclophosphamide on collagen: biochemical studies on skin and granulation tissue and determination of thermal stability of tail tendons of rats.

Granulation tissue was produced in rats by subcutaneous implantation of viscose cellulose sponges. Treatment with cyclophosphamide in a dose of 10 mg/kg/day for 14 days caused an increase in acid soluble OH-proline and a decrease in alpha/beta ratio of acid soluble collagen of granulation tissue. Forty-two days of continuous cyclophosphamide treatment caused a decrease in dry weight, in free OH-proline, and in salt soluble OH-proline in granulation tissue. These findings are in accordance with previous observations of a decreased collagen synthesis and an inhibited collagen degradation in granulation tissue after cyclophosphamide treatment. In skin, the only change after cyclophosphamide was a decrease in total content of OH-proline and an increase in alpha/beta ratio of acid soluble collagen after 42 days of treatment. No effect of the subcutaneous sponge implantation was observed on the collagen variables in the skin. In comparison with unstarved controls, a reduction in dry weight and in free OH-proline in granulation tissue, as well as an increase in salt soluble OH-proline in the skin were observed 28 days after a 14-day treatment with cyclophosphamide. These observations indicate a sustained effect of cyclophosphamide on collagen 28 days after cessation of treatment. In addition the thermal stability of rat tail tendons was decreased 28 days after withdrawal of cyclophosphamide to the same extent as after starvation for 42 days and after 42 days of continuous cyclophosphamide treatment. It is concluded that the cyclophosphamide-induced collagen alterations, which may be of importance in the anti-inflammatory action of cyclophosphamide, are only in part reversible, 28 days after cessation of 14 days of cyclophosphamide treatment.

Animals↗

Cyclophosphamide for lupus during pregnancy.

Severe systemic lupus erythematosus often requires the use of cyclophosphamide in women of reproductive age. As cyclophosphamide is generally avoided during pregnancy because of its teratogenic risk, its impact on fetal survival is poorly understood. This is a case series of lupus patients exposed to cyclophosphamide during pregnancy. We reviewed pregnancies in patients with lupus seen at a large university hospital between October 1986 and September 2003. The pregnancies were evaluated prospectively for cyclophosphamide exposure, lupus activity, and fetal outcome. Comparison was made between pregnancies with severe lupus requiring cyclophosphamide and those that did not. We identified four pregnancies with cyclophosphamide exposure. Two pregnancies were inadvertently exposed to cyclophosphamide early in the first trimester; both resulted in first trimester miscarriages. Two patients were administered cyclophosphamide for severe lupus nephritis and thrombocytopenia during the second trimester. Soon after the administration of cyclophosphamide, both pregnancies ended with fetal demise. Pregnancies exposed to cyclophosphamide for severe lupus flare resulted in a higher rate of fetal losses than pregnancies with severe lupus but not requiring the drug (100% versus 31.25%). In conclusion we present four pregnancies exposed to cyclphosphamide, each ending with pregnancy loss. Based on our experience, the survival of the fetus is strongly in doubt when cyclophosphamide is required to treat lupus in the mother.

Abortion, Spontaneous↗

The effects of cyclophosphamide and its uroprotective agents, mesna and hyperbaric oxygen, on urinary bladder motility in guinea pigs.

The aim of this research was to observe the effects of cyclophosphamide and its uroprotective agents, mesna and hyperbaric oxygen (HBO), on the motility of urinary bladder muscle in guinea pigs. In the experimental groups, mesna and cyclophosphamide were intraperitoneally injected at a dose of 21.5 mg/kg and 68.1 mg/kg, respectively. For the combination of mesna and cyclophosphamide, one dose of mesna was injected 20 min before cyclophosphamide administration and three additional injections of mesna were repeated every three hours. A total of 8 HBO exposures were performed at 2.8 ATA for 90 min twice daily for another experimental group. In the HBO and cyclophosphamide combined group 5 HBO exposures were given prophylactically before cyclophosphamide. The combination of mesna, HBO and cyclophosphamide was administered by the same procedure. The contractions obtained in response to acetylcholine (ACh, 10(-4) M) in the control group were reduced using cyclophosphamide and HBO individually, but not by mesna. However, the contractions belonging to the various combinations of these three agents were not different from those seen in the control group. On the other hand, the combinations of cyclophosphamide, mesna and HBO showed higher responses to ACh than the groups in which cyclophosphamide and HBO were used individually, while the responses elicited by the cyclophosphamide and HBO combination were greater than those seen in the group treated with HBO only.

Animals↗

Prevention of further cyclophosphamide induced hemorrhagic cystitis by hyperbaric oxygen and mesna in guinea pigs.

PURPOSE: Hyperbaric oxygen therapy and mesna have been successfully used for hemorrhagic cystitis. We defined the protective effects of hyperbaric oxygen and mesna in further cyclophosphamide induced hemorrhagic cystitis in guinea pigs. MATERIALS AND METHODS: A total of 48 male guinea pigs were divided into 6 groups. All groups received 2 doses of 68.1 mg./kg. cyclophosphamide intraperitoneally at the same time intervals but group 1 served as controls. Group 2 received cyclophosphamide only, group 3 received hyperbaric oxygen treatment (2.8 ATA for 90 minutes twice daily) before and the day after further cyclophosphamide, group 4 received 21.5 mg./kg. mesna intraperitoneally only with further cyclophosphamide, group 5 received hyperbaric oxygen and mesna with further cyclophosphamide, and group 6 received hyperbaric oxygen before initial cyclophosphamide, between the 2 doses and after the further dose of cyclophosphamide, and mesna on the days of cyclophosphamide. RESULTS: Although mesna alone provided protection against cyclophosphamide induced cystitis in animal bladders, there was also significant damage compared with controls. When the uroprotective efficacy of mesna was supported with hyperbaric oxygen, bladder protection was promoted since mean histological scores and hematuria levels in this group did not differ from those in controls. CONCLUSIONS: According to this animal study using hyperbaric oxygen as adjuvant therapy in humans may be a better tool than mesna alone for the prophylaxis and treatment of cyclophosphamide induced hemorrhagic cystitis.

Animals↗

Vomiting induced by cyclophosphamide and phosphoramide mustard in cats.

Cyclophosphamide and phosphoramide mustard produce significant vomiting. Cyclophosphamide is metabolized to phosphoramide mustard, which may ultimately contribute to vomiting after cyclophosphamide administration. The role of the chemoreceptor trigger zone (CTZ) in vomiting caused by these agents is unknown. We studied the emetic syndromes produced by iv and intracerebroventricular cyclophosphamide and phosphoramide mustard in unanesthetized normal and CTZ-ablated cats. Iv cyclophosphamide produced vomiting unpredictably, with a mean latency of 54 +/- 9 mins (mean +/- SE) in cats that vomited. A dose-response relationship was found for phosphoramide mustard-induced emesis. A dose of 200 mg/kg was consistently effective, with a mean latency of 127 +/- 6 mins. Neither agent produced predictable emesis by the intracerebroventricular route of administration. One of four CTZ-ablated cats vomited after 300 mg/kg of cyclophosphamide. Since cyclophosphamide was an unpredictable emetic stimulus, it was not possible to further evaluate the effect of CTZ ablation on cyclophosphamide-induced vomiting. However, CTZ-ablated cats given 200 mg/kg of phosphoramide mustard vomited significantly less frequently (P = 0.05 by chi-square test) and with a longer latency than nonablated animals. A temporary, severe neurotoxic reaction was observed in cats receiving greater than or equal to 3400 mg/kg of cyclophosphamide, which may have had an inhibitory effect on emesis. Phosphoramide mustard was found to be a potent emetic stimulus in cats and may contribute to the emetic response following cyclophosphamide administration. Analysis of latency data suggests that in the cat other cyclophosphamide metabolites may also contribute to the emetic syndrome.

Animals↗

Hormonal protection from cyclophosphamide-induced inactivation of rat stem spermatogonia.

Studies of protection of testicular function from cyclophosphamide with hormonal pretreatment have been limited by the lack of a convenient model for cyclophosphamide-induced inactivation of stem spermatogonia. In the rat, the mortality from cyclophosphamide had prevented the administration of sufficient dosages to produce detectible damage to stem spermatogonia. To overcome this problem, we used bone marrow transplantation and sodium 2-mercaptoethanesulfonate (Mesna) treatment to raise the lethal dose for 50% of the animals (LD50) for cyclophosphamide from 275 to > 400 mg/kg body weight. In addition we used irradiation, 2 weeks prior to injection of cyclophosphamide, to greatly enhance the measured toxicity of cyclophosphamide towards stem spermatogonia. Whereas sperm counts at 9 weeks after a 300 mg/kg cyclophosphamide dose were reduced by only a factor of 1.6 without prior irradiation, they were reduced by a factor of 60 when 2.5 Gy of irradiation had been given. Dramatic protection against this toxicity was produced by hormone treatment with a gonadotropin-releasing hormone (GnRH) antagonist (Nal-Glu) and an antiandrogen (flutamide) following the radiation but prior to cyclophosphamide. This hormone treatment did not modify the stem cell toxicity of the radiation and it therefore must be protecting stem cells against cyclophosphamide-induced damage. Because GnRH antagonist-antiandrogen treatment can protect stem spermatogonial survival and/or function in the rat from cyclophosphamide-induced damage, if the same principles are applicable in human, hormonal pretreatment should be useful for preventing the prolonged azoospermia caused by chemotherapy with cyclophosphamide-containing protocols.

Androgen Antagonists↗

Cyclophosphamide increases 5-hydroxytryptamine release from the isolated ileum of the rat.

We recently reported that chronic administration of cyclophosphamide significantly increased urinary 5-hydroxyindole acetic acid (5-HIAA) excretion in rats indicative of a release of 5-hydroxytryptamine (5-HT) from intestinal enterochromaffin (EC) cells. Cyclophosphamide is considered to be an inactive prodrug and require conversion to active emetic metabolities (e.g. phosphoramide mustard) by hepatic metabolism. However the presence of cytochrome P450 in the intestine raises the possibility of cyclophosphamide metabolism in the wall of the intestine, a site which would have considerable significance for 5-HT release and the emetic effects of cyclophosphamide. The aim of this study was to investigate whether cyclophosphamide could induce the release of 5-HT from the isolated ileum and to examine its mechanism of action. Cyclophosphamide (10(-6)M and 10(-7)M) induced a concentration dependent increase of 5-HT from rat isolated ileum. This cyclophosphamide-induced 5-HT release was significantly reduced by granisetron (10(-6)M and 10(-7)M) or atropine (10(-7)M and 10(-6)M). Tetrodotoxin (10(-6)M completely inhibited the increased 5-HT release induced by cyclophosphamide. These results suggest that cyclophosphamide has the capacity to induce 5-HT release via activation of enteric cholinergic neurons. In addition the in vitro study demonstrate for the first time that cyclophosphamide may be activated to emetic metabolites at extra-hepatic sites (e.g. intestine) and that conversion at these sites could contribute to the mechanism of cyclophosphamide induced emesis.

Animals↗

Failure of a single cycle of high dose cyclophosphamide followed by intensive myeloablative therapy and autologous stem cell transplantation to improve outcome in relapsed disease.

BACKGROUND: This study attempted to determine the use of a single cycle of high dose cyclophosphamide (60 mg/kg/day x 2) with (N = 16) and without granulocyte macrophage colony stimulating factor (GM-CSF) (N = 12) followed by intensive treatment and autologous stem cell transplantation (ASCT) in patients with relapsed disease. METHODS: Ten patients with multiple myeloma, eight with non-Hodgkin's lymphoma, three with Hodgkin's disease, six with breast cancer, and one with ovarian cancer were studied. Eighteen patients were in resistant relapse (RR) and 10 had sensitive relapses (SRs). All patients had marrow involvement with tumor and had received extensive prior therapy. RESULTS: When responses were assessed just before undergoing ASCT, none of the patients achieved a complete response (CR). Overall, 17 of 28 patients (61%) achieved a partial response (PR). Seven of 18 patients with RR achieved PR (39%). All 10 patients with SR achieved a PR. There were three early deaths. Sixteen patients underwent peripheral blood stem cell (PBSC) collection. Ten of 16 patients received cyclophosphamide plus GM-CSF, and 6 received cyclophosphamide alone. In patients treated with cyclophosphamide plus GM-CSF and cyclophosphamide alone, a median of 5.52 x 10(6) CD34+ cells/kg (range, 0.26-30.49) and 5.72 x 10(6) (range, 1.25-15.66) were collected, respectively. There was no apparent improvement in collection efficiency with GM-CSF. Twenty-two of 28 patients proceeded to ASCT irrespective of response, a median of 45 days (range, 21-203 days) after cyclophosphamide administration. After transplantation, 11 achieved a CR (50%) and 6 a PR (27%). To date, eight patients are alive (median, 679 days; range, 215-1190 days) and five remain in CR more than 6 months (median, 321 days; range, 215-1190 days). All eight surviving patients achieved a PR after high dose cyclophosphamide. CONCLUSIONS: High dose cyclophosphamide reduced the tumor burden by at least 50% in all patients with sensitive disease and in 39% of patients with refractory disease. However, only 5 of 22 patients (23%) remained in CR after ASCT, and all had sensitive disease before the administration of cyclophosphamide. These data suggest that high dose cyclophosphamide followed by intensive treatment and ABMT does not improve the fraction of long term disease free survivors in patients with refractory disease. Future trials would probably be required to demonstrate the utility of intensive treatment in patients with responsive relapse.

Adult↗

Phase I clinical and pharmacokinetic study of cyclophosphamide administered by five-day continuous intravenous infusion.

A total of 14 patients, 7 male and 7 female, received in all 21 evaluable courses of cyclophosphamide administered by 5-day continuous infusion. Cyclophosphamide doses were escalated from 300 to 400 mg/m2 per day for 5 days and repeated every 21-28 days. The patient population had a median age of 55 years (range 38-76) and a median Karnofsky performance status of 80 (range 60-100). Only 1 patient had not received prior therapy; 5 patients had received only prior chemotherapy, 1 had received only prior radiotherapy, and 7 had received both. Tumor types were gastric (1), lung (2), colon (4), urethral adenocarcinoma (1), cervical (2), chondrosarcoma (1), melanoma (1), uterine leiomyosarcoma (1), and pancreatic (1). The dose-limiting toxicity was granulocytopenia, with median WBC nadir of 1700/microliter (range 100-4800) in 8 heavily pretreated patients treated at 350 mg/m2 per day for 5 days. One patient without heavy prior treatment received two courses at 400 mg/m2 and had WBC nadirs of 800/microliter and 600/microliter. WBC nadirs occurred between days 9 and 21 (median 14). Drug-induced thrombocytopenia occurred in only one patient (350 mg/m2 per day, nadir 85,000/microliter). Neither hyponatremia nor symptomatic hypo-osmolality was observed. Radiation-induced hemorrhagic cystitis may have been worsened in one patient. Nausea and vomiting were mild. Objective remissions were not observed. The maximum tolerated dose for previously treated patients is 350 mg/m2 per day for 5 days. This dose approximates the doses of cyclophosphamide commonly used with bolus administration. Plasma steady-state concentrations (Css) of cyclophosphamide, measured by gas liquid chromatography, were 2.09-6.79 micrograms/ml. Steady state was achieved in 14.5 +/- 5.9 h (mean +/- SD). After the infusion, cyclophosphamide disappeared from plasma monoexponentially, with a t 1/2 of 5.3 +/- 3.6 h. The area under the curve of plasma cyclophosphamide concentrations versus time (AUC) was 543 +/- 150 micrograms/ml h and reflected a cyclophosphamide total-body clearance (CLTB) of 103 +/- 31.6 ml/min. Plasma alkylating activity, assessed by p-nitrobenzyl-pyridine, remained steady at 1.6-4.3 micrograms/ml nor-nitrogen mustard equivalents. Urinary excretion of cyclophosphamide and alkylating activity accounted for 9.3% +/- 7.6% and 15.1% +/- 2.0% of the administered daily dose, respectively. The t1/2 and AUC of cyclophosphamide associated with the 5-day continuous infusion schedule are similar to those reported after administration of cyclophosphamide 1500 mg/m2 as an i.v. bolus.(ABSTRACT TRUNCATED AT 400 WORDS)

Adult↗

In vivo, synergestic inhibition of MAT-LyLu rat prostatic adenocarcinoma growth by polyamine deprivation and low-dose cyclophosphamide.

Polyamine deprivation in vivo produces significant tumor growth inhibition of the hormone-resistant, metastatic Dunning Mat-LyLu murine prostatic carcinoma. In order to produce a cytotoxic effect in addition to the cytostatic effect of polyamine deprivation, various chemotherapy regimens, combined with drug-containing polyamine-deficient chow (DC-PDC), were assessed. Triple chemotherapy combining methotrexate, cyclophosphamide and vindesine; and monochemotherapy with high-dose cyclophosphamide (90 mg. kg-1) and low-dose cyclophosphamide (20 mg.kg-1) were studied alone and in combination with DC-PDC. A variant of DC-PDC excluding the polyamine oxidase inhibitor MDL 72527 was also studied in combination with low-dose cyclophosphamide. The triple-chemotherapy regimen alone or in combination with polyamine deprivation was effective on tumor growth inhibition but was also toxic. High-dose cyclophosphamide alone produced significant tumor growth inhibition and an increase in life span. High-dose cyclophosphamide in combination with DC-PDC was also effective on tumor growth but was also toxic. Low-dose cyclophosphamide alone was moderately effective on tumor growth inhibition with a marginal increase in life span. When combined with polyamine deprivation, results with low-dose cyclophosphamide compared favourably with those of high-dose cyclophosphamide alone and prevented the formation of lung metastases. The polyamine oxidase inhibitor does not appear to be mandatory to achieve this effect if DC-PDC is combined with low-dose cyclophosphamide. Polyamine deprivation appears to be an important tool in anticancer therapy, allowing the use of reduced doses of cytotoxic agents with the same antitumoral efficacy.

Adenocarcinoma↗