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Protracted venous infusion 5-fluorouracil with concomitant radiotherapy compared with bolus 5-fluorouracil for unresectable pancreatic cancer.

Radiation therapy (RT) with concurrent 5-fluorouracil (5-FU) administered by protracted venous infusion (PVI) replaced our prior institutional protocol of RT with bolus administration of 5-FU as standard therapy for unresectable pancreatic cancer in 1994. In this article, we compare the treatment intensity, toxicity, and outcome for patients with unresectable pancreatic cancer treated on these sequential protocols. Fifty-four patients, 27 on each protocol, with biopsy-confirmed pancreatic cancer received chemoradiotherapy. The radiotherapy field included the gross tumor volume and regional lymph nodes to a dose of 45 Gy, followed by "boost" to the gross tumor volume to 54 Gy to 60 Gy. From 1987 to 1994, patients received concurrent 5-FU administered by bolus injection, at a dose of 500 mg/m2 on days 1 to 3 and days 29 to 31 of RT. After December 1994, 5-FU was administered by PVI (200-250 mg/m2) beginning on day 1 and continuing until the completion of RT. The chemotherapy treatment intensity was increased in the group receiving 5-FU by PVI, as evidenced by an increased average weekly and cumulative dose of 5-FU (p < 0.01). The radiotherapy treatment intensity was equivalent between the two groups. The incidence of objectively quantified toxicity was not statistically different between treatment groups. Overall survival remained poor in both treatment groups. With a median follow-up of 18 months (range: 3-30 months) for surviving patients, the 6-month, 1-year, and 2-year survivals for the PVI 5-FU-treated group versus the bolus 5-FU-treated group were 56% versus 52%, 34% versus 18%, and 22% versus 13%, respectively (p = 0.9). Radiotherapy with concomitant 5-FU by PVI results in a greater weekly and total dose of chemotherapy. The method of 5-FU administration (bolus versus PVI) did not change the RT treatment intensity, experienced toxicity, or overall survival.

Adult↗

CMF (cyclophosphamide, methotrexate, 5-fluorouracil) versus cnf (cyclophosphamide, mitoxantrone, 5-fluorouracil) as adjuvant chemotherapy for stage II lymph-node positive breast cancer: a phase III randomized multicenter study.

A multicenter phase III randomized study compared the efficacies of two adjuvant polychemotherapeutic regimens in 145 patients with stage II node-positive breast cancer. The standard chemotherapy combination, CMF (cyclophosphamide, methotrexate, 5-fluorouracil), was administered to 77 women. The experimental protocol, CNF (cyclophosphamide, mitoxantrone, 5-FU), in which mitoxantrone (Novantrone) replaced methotrexate, was given to 68 patients. Follow-up of the 145 patients by six participating hospitals showed no statistically significant difference (p = 0.6) between the two treatment regimens during a median follow-up of 4.5 years in terms of overall survival. There was, however, a significant advantage (p = 0.04) in the disease-free survival for those receiving mitoxantrone (mean survival 4.4 years for CNF versus 2.7 years for CMF). Toxic side effects associated with CNF (particularly alopecia and myelotoxicity) were relatively more frequent but acceptable and did not lead to dose reduction. In light of its association with improved disease-free survival in this study, larger studies should be undertaken on the role of mitoxantrone as adjuvant treatment in stage II breast cancer.

Adult↗

Development of a novel form of an oral 5-fluorouracil derivative (S-1) directed to the potentiation of the tumor selective cytotoxicity of 5-fluorouracil by two biochemical modulators.

We have focused our attention on the development of a novel form of a tegafur-based [FT; a prodrug of 5-fluorouracil (5-FU)] antitumor agent. We have used two biochemical and pharmacological modulators of 5-FU to improve its overall activity. To potentiate the antitumor activity of FT, 5-chloro-2,4-dihydroxypyridine (CDHP) was used as a potent reversible inhibitor of 5-FU degradation. The reduction of gastrointestinal (GI) toxicity, induced in the host by 5-FU, was modulated by potassium oxonate (Oxo), an inhibitor of orotate phosphoribosyltransferase that catalyzes the phosphorylation of 5-FU, a process believed to be responsible for the toxic effects of 5-FU. When CDHP and FT were simultaneously given orally to Yoshida sarcoma-bearing rats in various molar ratios, the antitumor effect of FT was significantly potentiated by the combination consisting of at least a 0.2 versus 1 molar ratio of CDHP to FT, respectively. This augmentation of an antitumor activity was supported by potent and prolonged inhibition of dihydrouracil dehydrogenase activity (5-FU degrading activities) in the liver of tumor-bearing rats after oral CDHP (0.2:0.8 molar ratio) and furthermore by elevation and over 12 h retention of 5-FU levels in the tumors following combined administration of FT and CDHP at a molar ratio of 1:0.4, respectively. Moreover, to reduce the severe GI injury and subsequent loss of body weight, observed in parallel with an increased antitumor efficacy, Oxo was given orally to Yoshida sarcoma-bearing rats and nude rats xenografted with H-81 human gastric carcinoma, during consecutive administration of the FT-CDHP mixture. Combined treatment with Oxo and FT (1:2 molar ratio) supplemented with 0.4 molar CDHP resulted in protection of body weight loss without affecting the high antitumor efficacy of the FT-CDHP mixture. When [2-14C]FT plus CDHP was administered with Oxo, the 14C-labeled fluoronucleotide content was objectively decreased in the GI tract of the tumor-bearing rats but not in the tumor and bone marrow, which supports our initial hypothesis. Based on these promising data, we propose a suitable formulation of a FT-based anticancer drug, called S-1, and consisting of FT, CDHP and Oxo at a 1:0.4:1 molar ratio and showing tumor-selective cytotoxicity of 5-FU.

Animals↗

Relationship between plasma concentrations of 5-fluorouracil and 5-fluoro-5,6-dihydrouracil and toxicity of 5-fluorouracil infusions in cancer patients.

This study investigated the relationship among the pharmacokinetics of 5-fluorouracil (5-FU) and 5-fluoro-5,6-dihydrouracil (5-FDHU); the activity of dihydropyrimidine dehydrogenase (DPD) in peripheral blood mononuclear cells; and treatment-related toxicity in 26 patients with surgically resected colorectal cancer treated with short daily infusions of 5-FU adjuvant chemotherapy, each cycle consisting of 5 consecutive days every 4 weeks. After the first chemotherapeutic cycle, severe stomatitis and diarrhea occurred in 5 patients and were related to the variations in the systemic disposition of the drug rather than to DPD activity. These patients showed a significant decrease in 5-FU clearance, and an increase in the 5-FU/5-FDHU area under the time-concentration curve (AUC) ratio, as compared with patients who experienced mild toxicities, whereas a low DPD activity was observed in only 2 patients. In conclusion, the results of this study demonstrate that the alterations in 5-FU and 5-FDHU pharmacokinetics are related to severe toxicities in patients treated with short intravenous infusion of 5-FU.

Aged↗

Improved analysis of 5-Fluorouracil and 5,6-dihydro-5-Fluorouracil by HPLC with diode array detection for determination of cellular dihydropyrimidine dehydrogenase activity and pharmacokinetic profiling.

Administration of 5-fluorouracil (5-FU) may be associated with severe toxicities in patients who are deficient of dihydropyrimidine dehydrogenase (DPD) activity. For this reason, a sensitive HPLC method for the analysis of 5-FU and 5-fluoro-5,6-dihydrouracil (5-FDHU) was developed in the present study for the determination of DPD activity in nucleated cells of peripheral blood and pharmacokinetic analysis of 5-FU and 5-FDHU in humans. 5-FU and 5-FDHU were extracted from biologic matrices by adding sodium acetate, sodium sulfate, and diethyl ether/propanol. Dried samples were reconstituted in a mobile phase (KH2PO4 35 mmol/L, pH 4.0), isocratically eluted with a Hypersil C18 stationary phase (25 cm x 4.6 mm, 10 microm), and detected by a diode array detector (measurement and reference wavelengths, 215 and 360 nm, respectively). 5-Fluorocytosine (internal standard), 5-FDHU, and 5-FU were eluted within 13 minutes of the injection without interferences. Recoveries ranged between 81% to 85% for all compounds, and the method proved to be linear, with a coefficient of linearity of 0.999. The limits of detection and quantification were 3.2 and 16 ng/mL, respectively, and the within-day and between-day CV were less than 10% for both 5-FU and 5-FDHU. The present assay proved to be sufficiently sensitive and specific to evaluate cellular DPD activity and measure 5-FU and 5-FDHU plasma concentrations in cancer patients, thus allowing therapeutic 5-FU monitoring in patients and identification of DPD-deficient subjects at major risk of severe toxicities.

Aged↗

A rapid and inexpensive method for anticipating severe toxicity to fluorouracil and fluorouracil-based chemotherapy.

Dihydropyrimidine dehydrogenase (DPD) deficiency leads to dramatic overexposure to fluorouracil (5-FU), resulting in a potentially lethal outcome in patients treated with standard doses. The aim of this study was to validate, in a routine clinical setting, a simple and rapid method to determine the DPD status in a subset of cancer patients, all presenting with life-threatening toxicities following 5-FU or capecitabine intake. In this study, 80 out of 615 patients (13%) suffered severe toxicities, including 5 lethal ones (0.8%), during or after chemotherapy with a fluoropyrimidine drug. Patients with severe toxicities were treated with 5-FU (76 patients) or capecitabine-containing protocols (4 patients). Simplified uracil to di-hydrouracil (U/UH2) ratio determination in plasma was retrospectively performed in these 80 patients, as a surrogate marker of DPD activity. When possible, 5-FU Css determination was performed, and screenings for the canonical IVS14+1G>A mutation were systematically carried out. Comparison of the U/UH2 ratios with a reference, non-toxic population, showed abnormal values suggesting impaired DPD activity in 57 out of the 80 toxic patients (71%) included in this study, and in 4 out of 5 patients (80%) with a fatal outcome. Similarly, drug exposures up to 15 times higher than the range observed in the non-toxic population were also observed. Importantly, no IVS14+1G>A mutation was found in these patients, including those displaying the most severe or lethal toxicities. These data warrant systematic detection of DPD-deficient patients prior to fluoropyrimidine administration, including when oral capecitabine (Xeloda) is scheduled. Finally, the simplified methodology presented here proved to be a low cost and rapid way to identify routinely patients at risk of toxicity with 5-FU or capecitabine.

Adult↗

Pharmacokinetic modulation of plasma 5-fluorouracil concentrations to potentiate the antitumor activity of continuous venous infusion of 5-fluorouracil.

Methods for pharmacokinetic modulation of the plasma 5-fluorouracil (5-FU) level to increase antitumor activity during continuous venous infusion (CVI) of low doses of 5-FU were examined in Yoshida sarcoma-bearing rats. These methods were additional infusion of 5-FU for a short period (4 h) or oral administration of UFT or Tegafur during long-term CVI of 5-FU that alone gave a plasma 5-FU level of about 50 ng/ml. The antitumor effect on Yoshida sarcoma was markedly potentiated when an additive dose of 5-FU combined with 3-cyano-2,6-dihydroxypyridine (CNDP), a potent inhibitor of 5-FU degradation, giving a plasma level of about 500 ng/ml, was infused for 4 h. A similar increase in the antitumor effect was observed with oral administration of a conventional dose of UFT during CVI of 5-FU without CNDP, giving a plasma level of 30 to 60 ng/ml. These results suggest that the antitumor effect of CVI of 5-FU can be potentiated by pharmacokinetic modulation of the 5-FU concentration in the blood.

Animals↗

Fluorouracil catabolism in the combination treatment of cyclophosphamide, methotrexate and fluorouracil.

The CMF-regimen is amongst the most effective chemotherapeutic approaches in the treatment of breast cancer. It is generally accepted that the efficacy of the combination of the three agents used in the regimen, i.e., cyclophosphamide (CY), methotrexate (MTX) and fluorouracil (FUra), is based on interactions between the drugs at the intratumoral level. In WAG/Rij rats we previously demonstrated that change of FUra clearance at the first day of the CMF-regimen occurs owing to concomitant CY + MTX. In the present study clearance of FUra and the first product of FUra catabolism, FUraH2, were monitored at day 1 and day 8 of the regimen upon treatment with single agent FUra (F), MTX + FUra (MF), CY + FUra (CF), and CY + MTX + FUra (CMF). At the first day of treatment, FUra and FUraH2 systemic exposure was demonstrated to be increased in CMF-treated rats owing to concomitant CY+MTX. At the eighth day of treatment it was found that repeated CY administration during the previous seven days in CF-treated rats resulted in increased FUra and FUraH2 systemic exposure and therefore increased the dose of FUra artificially. It is concluded that altered FUra clearance owing to extratumoral interactions by concomitant CY and MTX contributes to the efficacy of the CMF-regimen.

Animals↗

In vivo effects of 5-fluorouracil and ftorafur[1-(tetrahydrofuran-2-yl)-5-fluorouracil] on murine mammary tumors and small intestine.

The in vivo anti-tumour and toxic effects of ftorafur (FT) and 5-fluorouracil (FU) were studied in the C3H mouse. On a molar basis, FU was two to three times more potent than FT with respect to growth inhibition of murine mammary adenocarcinomas. However, FT produced less host toxicity than FU when both drugs were compared at dose levels which produced equivalent anti-tumor effects. The differences between FT and FU with respect to tumor growth inhibition and host toxicity were reflected in their ability to suppress deoxyuridine incorporation into tumor cell and intestinal DNA, respectively. Flow cytometry (FCM) studies indicated that FT and FU were capable of producing pertubations in the DNA distribution of tumour cells. Both drugs induced an initial accumulation of cells in S phase following their administration at equivalent anti-tumour dose levels. At later intervals, an apparent block of cell progression at the G1/S boundary was observed. Drug-induced perturbations in the DNA distribution of tumour cells as detected by FCM correlated with results obtained by classical autoradiographic techniques using tritiated thymidine. Both procedures showed that tumor cells were capable of moving through S phase even in the presence of an apparently near complete inhibition of deoxyuridine incorporation into DNA. That such cells were, in fact, capable of synthesizing DNA at moderate rates was shown by their ability to incorporate 32P into DNA. The possible relationship of these findings to the therapeutic and toxic activities of FT and FU is discussed.

Animals↗

Mitoxantrone, 5-fluorouracil and high-dose leucovorin (NFL) in the treatment of metastatic breast cancer: randomized comparison to cyclophosphamide, methotrexate and 5-fluorouracil (CMF) and attempts to improve efficacy by adding paclitaxel.

The combination of mitoxantrone (12 mg/m2 i.v., day 1) 5-fluorouracil (350 mg/m2 i.v. days 1-3) and leucovorin (300 mg i.v. days 1-3) is an active and well-tolerated regimen for metastatic breast cancer. We compared this regimen to a standard CMF regimen (cyclophosphamide 600 mg/m2 i.v. day 1, methotrexate 40 mg/m2 day 1; 5FU 600 mg/m2 i.v. day 1) in a randomized, phase II study. One hundred and twenty-eight women receiving first-line chemotherapy for metastatic breast cancer were treated. NFL produced higher response rates (45% vs. 26%) and longer remissions (9 months vs. 6 months) than did CMF; overall survival was not different (19 months vs. 16 months). Both regimens were well tolerated. In an attempt to improve efficacy, we added paclitaxel (135 mg/m2 i.v. 1-h infusion) to the NFL regimen. Although this regimen was active (51% response rate in first-second-line treatment), myelosuppression was greater than expected. These results confirm the utility of NFL as an active, well-tolerated regimen for the palliative treatment of metastatic breast cancer.

Adult↗

Stability studies on admixtures of 5-fluorouracil with carboplatin and 5-fluorouracil with heparin for administration in continuous infusion regimens.

The therapeutic index of several anticancer agents may be improved by replacing rapid infusion/bolus injection schedules with prolonged continuous infusion regimens. Admixtures of 5-fluorouracil (5FU) with carboplatin and 5FU with heparin were subjected to stability studies to establish the feasibility of administering these infusions on an in-patient and out-patient basis, respectively. In the first study the stability of carboplatin was determined in an admixture of carboplatin and 5FU for neoadjuvant treatment of in-patients with oesophageal carcinoma by 5-day infusion. A previous study had reported significant carboplatin degradation in 5FU/carboplatin admixtures. Our results were consistent with this study and demonstrated that under ward conditions (25 degrees C) carboplatin also degraded (16% in 24 h) in dilute admixtures with 5FU. However, the addition of a citric acid buffer, which reduced infusion pH from 8.65 to 6.5, increased the stability of carboplatin (4.8% degradation in 24 h), without compromising 5FU solubility or stability. In a second study, the stability of an infusion containing 5FU and heparin was determined. Prolonged continuous infusion is routinely used for adjuvant treatment of colorectal carcinoma but episodes of thromboses and occlusion of the central venous catheter have been associated with this treatment.(ABSTRACT TRUNCATED AT 250 WORDS)

Carboplatin↗

Radiation therapy combined with cis-diammine-glycolatoplatinum (nedaplatin) and 5-fluorouracil for Japanese stage II-IV esophageal cancer compared with cisplatin plus 5-fluorouracil regimen: a retrospective study.

To evaluate the treatment outcome of radiotherapy combined with cis-diammine-glycolatoplatinum (nedaplatin) plus 5-fluorouracil (5-FU) for esophageal cancer. From January 2000 to December 2004, a total of 12 esophageal cancer patients with locally advanced and metastatic esophageal cancer (stages II-IVB) were treated with radiation therapy (50.4 Gy) combined with nedaplatin (80 mg/m(2), bolus infusion) and 5-FU (800 mg/m(2)/24 h, continuous infusion for 4 days) (NDP group). We compared the data with those of patients during the same period receiving a different chemotherapy regimen consisting of cisplatin (75 mg/m(2), bolus infusion) and 5-FU (1000 mg/m(2)/24 h, continuous infusion for 4 days) (n = 29, CDDP group) combined with the same radiation therapy. The median survival period was 11.5 months in the NDP group and 13.1 months in the CDDP group. The overall survival rates at 1-, 2-, and 3-years were 40%, 13%, and 13% in the NDP group and 56%, 42%, and 8% in the CDDP group (P = 0.2472), respectively. Grade III and IV leukocytopenia was observed in six (50%) and none of the patients in the NDP group and 14 (48%) and seven (24%) in the CDDP group, respectively. Grade III thrombocytopenia was observed in three (25%) in the NDP group and four (14%) in the CDDP group. Radiation combined with nedaplatin and 5-FU is a safe and effective method for treating esophageal cancer. We recommend that NDP should be used rather than dose-reduction of CDDP combined with 5-FU in patients with impaired renal function as indicated by low creatinine clearance value (40-60 mL/min).

Adenocarcinoma↗

19F nuclear magnetic resonance analysis of 5-fluorouracil metabolism in wild-type and 5-fluorouracil-resistant Nectria haematococca.

A mutant (furA3) was isolated from the S1 wild-type strain of Nectria haematococca on the basis of its resistance to 5-fluorouracil (5FU). This mutant has greatly reduced activity of uracil phosphoribosyltransferase, a pyrimidine salvage enzyme catalyzing the synthesis of UMP from uracil. The metabolism of 5FU was examined in both strains by using 19F nuclear magnetic resonance spectroscopy. In the S1 strain, 5FU appears to be metabolized by two pathways operating simultaneously: (i) conversion to fluoronucleotides and (ii) degradation into alpha-fluoro-beta-alanine. The furA3 mutant shows metabolic changes consistent with a uracil phosphoribosyltransferase lesion, since it takes up 5FU and forms a small amount of alpha-fluoro-beta-alanine but does not synthesize fluoronucleotides. Since pigment synthesis is strongly enhanced by 5FU in the S1 wild-type strain but not in the furA3 mutant, these results support the hypothesis that 5FU stimulation of secondary metabolism in N. haematococca is not mediated by the drug itself but involves a phosphorylated anabolite.

Agar↗

Carbogen and nicotinamide increase blood flow and 5-fluorouracil delivery but not 5-fluorouracil retention in colorectal cancer metastases in patients.

PURPOSE: To examine whether carbogen and nicotinamide increases 5-fluorouracil (5-FU) delivery to colorectal cancer metastases. EXPERIMENTAL DESIGN: Six patients were scanned using positron emission tomography. Two scans were done to coincide with the start of separate chemotherapy cycles. At the second positron emission tomography session, 60 mg/kg nicotinamide was given orally 2 to 3 hours before 10-minute carbogen inhalation. In the middle of carbogen treatment, [15O]H2O (to measure regional tissue perfusion) and then [18F]5-FU (to measure 5-FU tissue pharmacokinetics) were administered. RESULTS: Regions of interest were drawn in 12 liver metastases, 6 spleens, 6 livers, and 12 kidneys. Nicotinamide and carbogen administration increased mean blood pO2 from 93 mm Hg (95% confidence interval, 79-198) to 278 mm Hg (95% confidence interval, 241-316; P = 0.031). Regional perfusion (mL(blood)/min/mL(tissue)) increased in metastases (mean change = 52%, range -32% to +261%, P = 0.024), but decreased in kidney (mean change = -42%, range -82% to -11%, P = 0.0005) and liver (mean change = -34%, range -43% to -26%, P = 0.031). 5-FU uptake at 3.75 minutes (m(2)/mL) increased in tumor (mean change = 40%, range -39% to +196%, P = 0.06) and decreased in kidney (mean change = -25%, range -71% to 12%, P = 0.043). 5-FU delivery measured as K1 increased in tumor (mean change = 74%, range -23% to +293%, P = 0.0039). No differences were seen in [18F]5-FU tumor exposure (net area under curve) and retention. CONCLUSION: Nicotinamide and carbogen administration can increase 5-FU delivery to colorectal cancer liver metastases. Despite an increase in perfusion and 5-FU delivery, the effects were not directly related and did not increase 5-FU retention or tissue exposure.

Administration, Inhalation↗

High-dose 5-Fluorouracil with uridine-diphosphoglucose rescue increases thymidylate synthase inhibition but not 5-Fluorouracil incorporation into RNA in murine tumors.

5-Fluorouracil (5FU) shows a steep dose response curve in several experimental systems, but the clinical use of high doses is hampered by the toxic side effects of this drug. Uridine diphosphoglucose (UDPG) rescue allows an increase in the maximum tolerated dose of 5FU in mice from 100 (FU(100)) to 150 mg/kg (5FU(150)+UDPG) and the higher dose is more effective than the standard treatment against several tumors. In the present paper we report on the effect of high-dose 5FU on thymidylate synthase (TS) levels and on 5FU incorporation into RNA. In the resistant murine tumor (Colon 26A) high-dose 5FU inhibited TS catalytic activity 8 h after treatment (4-fold; p = 0.00041) and the inhibition persisted until day 3 (p < 10(-4)). Standard-dose 5FU did not significantly inhibit TS activity. In a relatively sensitive tumor (Colon 26-10), there was no difference in the initial extent of TS inhibition by the two 5FU doses, but TS was still inhibited (2-fold) on day 3 after (5FU(150)+UDPG) while it was within the normal range after 5FU(100). In both tumor types TS activity showed an impressive rebound (3-fold) on days 3-7, and this occurred after both 5FU doses. In Colon 26A, however, a new 5FU injection on day 7 was still able to inhibit TS but not as effectively as the first dose. 5FU incorporation into RNA reached similar peak values (8 pmol/microg RNA) after the two 5FU doses, but the clearance was faster in mice receiving UDPG rescue. We conclude that UDPG does not interfere with the extent of TS inhibition by 5FU, but UDPG allows the use of a higher dose of 5FU resulting in enhanced TS inhibition. UDPG, however, increases 5FU clearance from RNA. In this experimental system the inhibition of TS seems essential in order to obtain a good antitumor activity, while 5FU incorporation into RNA does not seem to play a role in the antitumor activity of 5FU. Since preliminary results indicate that UDPG is well tolerated by patients, the use of higher 5FU doses may improve the response rate of human tumors.

Animals↗

Adjuvant chemotherapy in stage III colon cancer with 5-fluorouracil and levamisole versus 5-fluorouracil and leucovorin.

BACKGROUND: Adjuvant chemotherapy for colon cancer has been established during the past decade. From 1990 until recently treatment with 5- fluorouracil (5-FU) and levamisole (LEV) lasting 12 months was recommended as standard treatment. At the initiation of this study in 1993 improvement of adjuvant therapy was expected by the modulation of 5-FU with folinic acid (FA). Therefore, we decided to perform a prospective randomized multicenter trial to compare standard 5-FU/LEV to 5-FU/FA for either 6 or 12 months. PATIENTS AND METHODS: Patients with stage III colon cancer after curative en bloc resection were randomized in 3 treatment groups: arm A (5-FU/LEV, weekly, 12 months), arm B (5-FU/FA, days 1-5, every 4 weeks, 12 months) and arm C (like B, 6 months). RESULTS: Between March 1993 and November 1997, 180 patients were randomized into the study, 155 were eligible for further evaluation. The interim analysis in November 2000 showed no significant difference for recurrence and disease-free survival in arm B and C, therefore the data from both 5-FU/FA treatment arms (B+C) were combined for comparison with 5-FU/LEV-treatment (A). Most pronounced toxicity in all treatment arms was mild nausea, loss of appetite and leukopenia. A tendency for more diarrhea and stomatitis was observed in arm B+C. After a median follow-up of 36.2 months no significant difference was seen for disease free survival (p = 0.9) and overall survival (p = 1.0). 3-year recurrence rates were 39.6% in arm A and 39.1% in arm B+C, 3-year survival rates amounted to 74.1% in arm A and 74.9% in arm B+C. CONCLUSION: Only a limited number of patients could be recruited in this study. The observed data support the results of other studies, which concluded that 6 months (or 12 months) treatment with 5-FU/FA is equivalent to 12 months treatment with 5-FU/LEV. Therefore the 6 months treatment with 5-FU/FA can be supported as standard for adjuvant therapy of stage III colon cancer.

Adult↗

Intra-aortal therapy with 5-fluorouracil- polyethylene glycol stealth liposomes: does the metabolism of 5-fluorouracil into 5-fluoro-2'-deoxyuridine depend on ph value?. An animal study in VX-2 liver tumor-bearing rabbits.

BACKGROUND: The application of liposome-encapsulated cytostatics results in higher concentrations in tumor tissue. This effect can be further increased by blood flow retardation with longer retention time in the tumor and by arterial administration realized in abdominal stop-flow therapy, a separate partial circulation with a defined flow under hypoxic conditions. The pH changes under stop-flow therapy may affect the further metabolism of 5-fluorouracil (5-FU), used here. METHODS: The in vitro 5-fluoro-2'-deoxyuridine (5-FUrd) concentrations at increasing pH values were measured using liposomal encapsulated and free 5-FU. Subsequently, 20 chinchilla rabbits were treated intra-aortally with 5-FU or 5-FU-polyethylene glycol (PEG) liposomes. The pH value was maintained in the physiological range by continuous NaHCO3 application. After 20 min, concentrations of 5-FU and its metabolite 5-FUrd were determined in different organs, the perfusate, serum and the VX-2 tumor by HPLC. RESULTS: The in vitro 5-FUrd concentrations, which occur only in the physiological pH range, were doubled by the use of 5-FU-PEG liposomes. In the animal trial, NaHCO(3) titration doubled the 5-FUrd concentrations found in our preliminary studies. Compared to free 5-FU, 5-FU-PEG liposomes significantly increased the concentrations in the VX-2 liver tumor by 6.6-fold and in the para-aortal lymph nodes by 8.76-fold. CONCLUSION: The metabolism of 5-FU into its active metabolite 5-FUrd depends on the pH value and can be modulated. 5-FUrd concentrations can be approximately doubled with the intra-aortal application of 5-FU-PEG liposomes compared to free 5-FU.

Animals↗

A new perspective on cardiotoxicity of 5-fluorouracil. A novel research tool 'cardiac ultrasonic integrated backscatter analysis' indicates transient, subclinical myocardial dysfunction due to high-dose leucovorin and infusional 5-fluorouracil regimen.

BACKGROUND: The pathophysiology of 5-fluorouracil (5-FU) cardiotoxicity is still controversial. The objective of this study was to assess the influence of high-dose leucovorin and infusional 5-FU regimen (HDLV5FU) on cardiac tissues. METHODS: We monitored 28 patients (median age 68 years) under HDLV5FU chemotherapy with complete blood counts, cardiac enzymes, C-reactive protein, coagulation tests, Holter electrocardiogram, and conventional echocardiography. Cardiac ultrasonic tissue characterization with integrated backscatter (IBS) analysis was performed in the 16 last enrolled patients. RESULTS: The magnitude of both anterior and posterior cardiac IBS values significantly decreased at the 48th hour of treatment compared to both 0th hour and day 15 (p < 0.003). Cardiac IBS values on the 15th day were not different from the 0th hour. Clinical cardiotoxicity was not observed and other monitored parameters did not change significantly in any patient (p > 0.5 for all). CONCLUSION: Cardiac IBS analysis suggests that 5-FU might cause reversible subclinical myocardial dysfunction.

Aged↗