Fludarabine phosphate in the treatment of chronic lymphocytic leukemia: biology, clinical impact, and future directions.
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Biomedical subjects
Publications and source records attributed to M J Keating.
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PURPOSE: To assess the response rate, remission duration, and survival of patients with Waldenström's macroglobulinemia treated with the adenine nucleoside analogue fludarabine. PATIENTS AND METHODS: Twenty-eight patients with Waldenström's macroglobulinemia, of whom only 2 were previously untreated, received fludarabine at a dose of 20 to 30 mg/m2 intravenously daily for 5 days (20 patients) or 30 mg/m2 intravenously daily for 3 days (8 patients). Treatment was continued until maximum response was achieved. Responding patients were followed with no further treatment until relapse. RESULTS: Ten patients responded (36%), including the 2 previously untreated patients and 8 of 26 patients (31%) who were resistant to prior therapies. Unmaintained remissions lasted for a median of 38 months. There were no fatalities associated with this treatment. Previously untreated patients and those with a primary resistant disease of relatively short duration were more likely to benefit from this treatment. CONCLUSION: Fludarabine is an effective salvage agent for the treatment of patients with resistant Waldenström's macroglobulinemia. Further investigations of fludarabine in untreated patients and in combination with other active agents are warranted.
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PURPOSE: A protocol was designed to test the hypothesis that fludarabine infusion before arabinosylcytosine (cytarabine [ara-C]) would increase the accumulation of the active metabolite ara-C triphosphate (ara-CTP) in acute myelogenous leukemia (AML) blasts during therapy. PATIENTS AND METHODS: Patients (n = 5) received 1 g/m2 of ara-C infused intravenously (IV) for 2 hours, followed at 20 hours by 30 mg/m2 of fludarabine for 30 minutes. At 24 hours, another identical dose of ara-C was infused. To determine the optimal duration of ara-C infusion following fludarabine, five additional patients were treated on an amended protocol in which the ara-C infusion was extended to 3 g/m2 infused over 6 hours. RESULTS: Comparison of ara-CTP pharmacokinetics in circulating AML cells demonstrated that the area under the curve (AUC) of ara-CTP increased significantly (median, 1.8-fold; range, 1.6 to 2.4; P = .004) after fludarabine infusion. Neither the median plasma ara-C concentrations, the levels of its deamination product arabinosyluracil, nor the rate of ara-CTP elimination from circulating blasts was affected by fludarabine infusion. However, the rate of ara-CTP accumulation by AML cells was increased by a median of 2.0-fold (range, 1.8 to 2.2; P = .001) after fludarabine; the peak occurred within 1 hour of the end of the infusion. In vitro incubation of these cells with arabinosyl-2-fluoroadenine (F-ara-A) before ara-C also produced a median 1.7-fold increase in the ara-CTP accumulation rate. Pharmacology studies in patients receiving 6-hour infusions of ara-C demonstrated that the rate of ara-CTP accumulation was potentiated beyond 2 hours, but not for 6 hours. CONCLUSION: Infusion of fludarabine before ara-C augments the rate of ara-CTP synthesis in circulating AML blasts during therapy. Evaluation of 6-hour ara-C infusions demonstrated that potentiation of ara-CTP synthesis is maximal up to 4 hours in most patients; this pharmacologically optimized regimen should be considered for combination with other antileukemia drugs.
PURPOSE: The incidence, clinical features, laboratory findings, and treatment results of 39 patients with Richter's syndrome (RS) are reported. PATIENTS AND METHODS: Thirty-nine of 1,374 patients with chronic lymphocytic leukemia (CLL) developed RS. RESULTS: Features associated with RS included systemic symptoms (59%), progressive lymphadenopathy (64%), extranodal involvement (41%), elevation of lactate dehydrogenase (LDH; 82%), and a monoclonal gammopathy (44%). Analysis of the CLL karyotype showed no specific chromosomal abnormality that conferred increased risk; however, multiple abnormalities were common. Patients at all Rai stages and in complete response (CR) were at risk, including three CR patients with no residual disease at the level of detection by dual-parameter flow cytometry or restriction analysis for immunoglobulin (Ig) gene rearrangements. The incidence was not higher in patients who had received prior fludarabine or chlorodeoxyadenosine. The median survival duration was only 5 months, despite multiagent therapy. Patients who responded had prolonged survival durations (P < .001). Three of eight patients who survived more than 1 year had a de novo presentation of both CLL and large-cell lymphoma (LCL). Comparison of surface light-chain analysis from both low- and high-grade components demonstrated isotypic light-chain expression in 12 of 15 patients. Ig heavy- and light-chain gene rearrangement analysis showed identical rearrangement patterns in five of five patients. CONCLUSION: The clinical, laboratory, and survival characteristics of our RS patients were similar to those reported in earlier studies. Ig gene rearrangement and light-chain isotype analysis support a common origin for CLL and LCL. Despite progress in the treatment of CLL, the development of LCL remains a serious complication and continued surveillance in all CLL patients is warranted.
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Autoimmune hemolytic anemia (AHA) is a frequent complication of chronic lymphocytic leukemia (CLL). Although the pathogenesis of AHA is still unknown, an imbalance of normal residual T cells is believed to play a central role. Since fludarabine is reported to affect primarily T lymphocytes, we conducted a retrospective study to evaluate the incidence and outcome of AHA in 112 CLL patients treated with fludarabine alone. Eight patients had AHA before therapy; only one achieved remission of both CLL and AHA after fludarabine alone. In the other seven patients, we observed no effect or even a worsening of AHA, although the CLL was responding to fludarabine. Five patients developed AHA from 1 to 19 months after fludarabine therapy while the CLL was responding. One additional patient developed pure red cell aplasia (PRCA) 3 months after starting therapy. Most patients in both groups responded to steroids or other immunosuppressive therapy. The study showed that in these patients, AHA evolved independently of CLL and was not affected by fludarabine.
Sixty-eight patients with Waldenstrom's macroglobulinemia were treated either with fludarabine (28 patients) or 2-chlorodeoxyadenosine (40 patients) and responding patients were followed without further treatment. Both programs were well tolerated and myelosuppression was moderate but reversible. Overall, 35 patients responded including 93% of previously untreated patients, 83% of those relapsing off therapy, 48% of patients with primary refractory disease and 15% of those treated during refractory relapse. With a median follow up of 18 months, only two of 15 previously untreated patients have relapsed whereas the median remission duration and survival of previously treated patients were 38 and 43 months respectively. Fludarabine and 2-chlorodeoxyadenosine are both highly active agents against Waldenstrom's macroglobulinemia, especially when administered early in the disease course.
Chronic lymphocytic leukemia (CLL) is considered to be an incurable hematologic malignancy using conventional therapy. Complete remissions (CR) were unusual with conventional approaches such as chlorambucil with or without prednisone or cyclophosphamide, vincristine, and prednisone (CVP). Pathologic complete remissions including negative bone marrow biopsies were seldom mentioned in the literature. Two parameter flow cytometry has demonstrated that CLL cells co-express CD5 and pan-B cell antigens such as CD19 and CD20. In addition, immunoglobulin gene rearrangement occurs predictably in B-cell CLL and can be used as a further marker of completeness of remission. The National Cancer Institute (NCI) has published criteria for complete remission which allow persistent lymphoid nodules to be present on the bone marrow biopsy and the patient can be considered in complete remission. Our group has considered these patients to have a nodular CR (Nod CR) to separate them from having a true remission on bone marrow biopsy (CR-bx). Thus bone marrow biopsy criteria, two parameter flow cytometry, and immunoglobulin gene rearrangement are now available for routine clinical application to re-define completeness of remission in CLL. With the use of fludarabine monophosphate (Fludara), complete and partial responses are obtained in 50-55% of previously treated patients with CLL and 75-80% of patients with previously untreated CLL. There was a strong correlation of probability of response with degree of previous therapy, stage of disease, age, hemoglobin level, platelet count, serum albumin and beta 2-microglobulin, and bone marrow infiltration with lymphocytes. Patients can be identified as being at high/low risk of achieving a complete or partial response.(ABSTRACT TRUNCATED AT 250 WORDS)
The major complication during therapy of chronic lymphocytic leukemia (CLL) with the purine nucleotide analogue fludarabine is infection, which is also the main cause of morbidity and mortality in the disease. As the incidence of infectious episodes during therapy correlated with severity of neutropenia, stage of disease, and response to therapy, an effort was made to reduce therapy-related myelosuppression and improve response by altering the conventional therapy regimen. The protocol which yielded a response rate of 57% in previously treated patients with CLL consisted of five consecutive daily doses of 25-30 mg/m2 fludarabine given every three to four weeks. Based on observations from intracellular pharmacology studies it was hypothesized that repetitive single weekly doses of fludarabine would allow normal bone marrow cells to recover while maintaining cytotoxic levels in the leukemic cells. The cumulative four-week dose of the once-weekly regimen was approximately 80% of the original protocol. Eleven out of 46 evaluable patients (24%) responded to the therapy. Seven patients (15%) achieved a complete remission, and four (9%) a partial remission. While myelosuppression was reduced by about 30% compared with the original protocol, the incidence of febrile episodes was increased by 17%. Pretreatment serum IgG levels below the normal range correlated significantly with a high incidence of infectious episodes and with a short median survival time. These observations suggest that in addition to myelosuppressive therapy, disease related depressed immune function causes morbidity and mortality due to infections. The results further show that changes in the scheduling of the therapy regimen, associated with a slightly lower dose, resulted in reduced efficacy as measured by the response rate.
Twenty-seven patients with B-cell chronic lymphocytic leukemia (CLL) or a related lymphoid malignancy were treated with high-dose cytosine arabinoside (ara-C) at a dosage of 3 gm/m2 administered over 2 hours every 12 hours at one to four doses per course, which were repeated at 4-week intervals. Median patient age was 60 years. Fifty-four percent of CLL patients had Rai stage III or IV disease and the median number of prior therapies was three. Two patients achieved a complete response, five had a partial response, and two had clinical improvement for an overall response rate of 33%. The median duration of response was 9 months. Myelosuppression and infection were the main toxicities. Intracellular levels of the active metabolite ara-C triphosphate varied among patients, but comparisons of pharmacokinetic parameters revealed no significant differences between responders and non-responders. We conclude that high-dose ara-C has modest activity in CLL and that its use in combination with other agents in the treatment of CLL is warranted.
The pharmacology of fludarabine triphosphate (F-ara-ATP) in leukemic lymphocytes was studied during a phase II trial of fludarabine in 24 patients with chronic lymphocytic leukemia (CLL). Fludarabine was given as a 30-min i.v. infusion at a dose of 25 or 30 mg/m2 daily for 5 days. The concentrations of F-ara-ATP, the active metabolite of fludarabine, were determined in leukemic lymphocytes at intervals up to 24 hr after the first infusion. A median peak concentration of 19 microM (range, 6-52 microM) was generally reached 4 hr after the beginning of the infusion. No significant relationship was observed between clinical response and the median peak level of F-ara-ATP or the retention of F-ara-ATP in leukemic lymphocytes. In vitro incubation of CLL cells with the parent nucleoside of fludarabine, arabinosyl-2-fluoroadenine (F-ara-A), indicated that F-ara-ATP accumulated in a linear fashion in response to the product of the F-ara-A concentration times the duration of incubation. Exposing cells longer with lower F-ara-A concentrations or shorter with higher F-ara-A concentrations resulted in similar intracellular levels of F-ara-ATP as long as the products of fludarabine concentration and time of exposure were equal. These results and the fact that the fludarabine dose rate currently administered is well tolerated suggest that it may be the optimal dose rate for F-ara-ATP accumulation in CLL cells.
There is a strong association between ability of leukemia blasts to accumulate ara-CTP, the active metabolite of ara-C, and response to ara-C in patients with relapsed or refractory AML. Ara-C dose rates in excess of 0.5 g/m2/h do not produce further ara-CTP formation. In contrast, when given 4 h prior to ara-C at this dose rate, fludarabine, at doses that are free of neurotoxicity in CLL, enhances ara-CTP accumulation. This led us to administer fludarabine and ara-C to 59 patients with AML in relapse or unresponsive to initial therapy. Fludarabine was given at 30 mg/m2 once daily for 5 doses and ara-C at 0.5 g/m2/h for 2-6 h daily for 6 doses. Doses of fludarabine preceded those of ara-C by 4 h. Results with fludarabine and ara-C (FA) were compared with those of patients treated at M.D. Anderson with high-dose ara-C (HDAC) or intermediate-dose ara-C (IDAC). The complete remission rate with FA was 21/59 (36%) and the actuarial median CR duration 39 weeks. FA produced significantly higher remission rates than HDAC or IDAC in patients with initial remissions > 1 yr (14/20 vs 9/23 vs 6/18, p < 0.05). Response rates were similar for all three treatments in patients with initial remissions < 1 yr or with primary refractory disease. The regimen was well tolerated; one patient developed peripheral neuropathy. This low level of toxicity encourages combination with other antileukemia agents.
Analysis of different ribonucleotide reductase inhibitors to modulate arabinosylcytosine (ara-C) metabolism suggested that pretreatment with arabinosyl-2-fluoroadenine (F-ara-A) significantly potentiated the rate of ara-CTP (5'-triphosphate of ara-C) accumulation in both quiescent lymphocytes (p = 0.046) and in cycling blasts (p = 0.017). In vitro incubations of freshly isolated leukemia cells from patients with chronic (n = 7) or acute (n = 5) leukemias with F-ara-A, increased the rate of ara-CTP accumulation by a median of 1.5 or 1.7-fold, respectively, when subsequently incubated with ara-C. The objective of the present investigation was to test the hypothesis that ara-C can be biochemically modulated during therapy of leukemias. To test the biochemical modulation of ara-C in the clinical setting, we designed two protocols to administer fludarabine (clinical formulation of F-ara-A) and ara-C in a pharmacologically directed sequence for patients with chronic lymphocytic leukemia (CLL) refractory to conventional fludarabine therapy or for patients with acute myelogenous leukemia (AML) in relapse. Comparison of ara-CTP pharmacokinetics demonstrated a significant increase in the area under concentration curve (AUC) of ara-CTP both in CLL (median 1.5-fold) and AML cells (median 1.8-fold) after fludarabine infusion. Analyses of different processes involved in the metabolism of ara-CTP indicated that the increase in AUC was due to potentiation of the rate of ara-CTP accumulation. These studies demonstrate that protocols designed on biochemical and pharmacological rationales modulate ara-C metabolism during therapies.
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The nucleoside analogs fludarabine monophosphate, 2-chlorodeoxyadenosine, and 2-deoxycoformycin (pentostatin) all have activity in chronic lymphocytic leukemia. The most widely studied drug is fludarabine which is able to obtain complete or partial responses in more than 50% of previously treated patients. The response rate is 44% for 2-CDA and approximately 25% for pentostatin. Fludarabine has also been used to treat patients as initial therapy, and has resulted in overall response rate of 79% with 75% of the patients achieving complete remission. The NCI and International Working Group for CLL criteria for complete remission allow for persistent nodules or lymphoid infiltrates in the bone marrow biopsy. Studies have now demonstrated persistent lymphoid aggregates are associated with a shorter time to progression for responders but no survival disadvantage. There is a strong association of documented refractoriness to alkylating agents with probability of response to fludarabine and also survival. The major morbidity associated with the use of these drugs are infections, which, in some circumstances, are associated with neutropenia but in other circumstances are probably related to the hypogammaglobulinemia and T-cell immunodeficiency which are part of the disease. The T-cell immunodeficiency is aggravated by the nucleoside analogs. Even after discontinuation of therapy the immunodeficiency as measured by CD4 cell number is sustained for 12 to 24 months. Opportunistic organisms such as herpes simplex, herpes zoster, Listeria monocytogenes, and pneumocystis carinii are being noted in patients treated with these agents. The potency of these drugs and low incidence of toxicities to other organs suggests that they will be effectively combined with other agents.(ABSTRACT TRUNCATED AT 250 WORDS)
L-asparaginase is an enzyme which hydrolyses asparagine. Since the 1960s it has been known that some leukemic cells are deficient in asparagine synthetase and therefore cannot manufacture sufficient quantities of this essential amino acid to maintain cell viability. L-asparaginase is predominantly useful in acute lymphocytic leukemia (ALL) although responses have been noted in patients with acute myeloid leukemia, lymphoma, and rarely other tumors. L-asparaginase has been used in conjunction with methotrexate and ara-C in combination programs in leukemia. The major side-effect limiting the usefulness of L-asparaginase is allergic reactions. In addition, it is probable that neutralizing antibodies develop which shorten the half life of the drug so that the goal of depletion of plasma levels of asparagine cannot be attained or maintained. Polyethylene glycol (M.W. 5000) can be conjugated to L-asparaginase at sites not involving the active site of the enzyme. This enables free access of a small molecule, asparagine, to the active site of the enzyme but prevents uptake by the reticuloendothelial system, greatly decreasing the probability of developing antibodies against the asparaginase and prolongs the circulating half life of the drug. In a phase I/II study conducted at the M.D. Anderson Cancer Center, 37 heavily pretreated patients with refractory hematologic malignancy were treated. The age range from 15 to 73 years, median 49 years. Nineteen patients had ALL, 15 lymphoma, two myeloma, and one Hodgkin's disease. The dose levels of PEG L-asparaginase varied from 250 IU/m2 up to 8000 IU/m2. The pharmacokinetic profile demonstrated a monophasic half life consistent with a one compartment model with a single elimination phase.(ABSTRACT TRUNCATED AT 250 WORDS)
The increasing incidence of therapy-related leukemia and myelodysplastic syndrome reflects (1) a longer period at risk resulting from successful treatment of solid tumors; (2) more intensive treatment regimens combining high-dose chemotherapy and irradiation; (3) broader utilization of adjuvant chemoirradiation in melanoma, colon, lung, breast, and head and neck cancers; and (4) environmental pollution and widespread exposure to chemicals and carcinogens in industrialized nations. The availability of novel therapies, including growth factors, has increased the referral of these patients to comprehensive cancer centers, partially explaining the increased awareness of the entity.