Conclusions regarding leukemia long-term survival.
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Publications and source records attributed to M J Keating.
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The major actions of nucleoside analogs such as arabinosylcytosine (ara-C) and fludarabine occurs after their incorporation into DNA, during either replication or repair synthesis. The metabolic salvage and DNA incorporation of the normal nucleoside, deoxycytidine, is functionally compartmentalized toward repair synthesis in a process regulated by ribonucleotide reductase. The aim of this study was to investigate the metabolic pathways by which nucleoside analogs that do (fludarabine, gemcitabine) or do not (ara-C) affect ribonucleotide reductase are incorporated into DNA in proliferating human leukemia cells. Using alkaline density-gradient centrifugation to separate repaired DNA from replicating DNA and unreplicated parental DNA strands, approximately 60% of ara-C nucleotide in DNA was incorporated by repair synthesis in CCRF-CEM cells; the remainder was incorporated by replication. In contrast, fludarabine and gemcitabine, nucleosides that inhibit ribonucleotide reductase and decreased deoxynucleotide pools, were incorporated mainly within replicating DNA. Hydroxyurea also depleted deoxynucleotide pools and increased the incorporation of ara-C into DNA by replicative synthesis. Stimulation of DNA repair activity by UV irradiation selectively enhanced the incorporation of all nucleosides tested through repair synthesis. These findings suggest that the pathways by which therapeutically useful nucleoside analogs are incorporated into DNA are affected by cellular dNTP pools from de novo synthesis and by the relative activities of DNA repair and replication. The antitumor activity of these drugs may be enhanced by combination with either ribonucleotide reductase inhibitors to increase their incorporation into replicating DNA or with agents that induce DNA damage and evoke the DNA repair process.
Fludarabine (9-beta-arabinofuranosyl-2-fluoroadenine-5'-monophosphate) is clinically active against chronic lymphocytic leukemia and low-grade lymphomas. We reported previously that fludarabine nucleoside synergistically enhanced cisplatin (CDDP)-induced cytotoxicity in vitro, and that the synergism was concomitant with inhibition of removal of cellular CDDP-induced DNA interstrand cross-links, which are presumably repaired by homologous recombinational repair. To extend our work, we investigated whether fludarabine inhibits nucleotide excision repair (NER) of CDDP-induced DNA intrastrand adducts. The effect of fludarabine on NER was determined using a cell-free system in which a plasmid containing the DNA adducts served as the substrate for repair enzymes in whole-cell extracts from repair-competent cells. To prevent the cell-bound high mobility group box-containing proteins from interfering with repair, cell extracts were depleted with high mobility group box proteins by immunoprecipitation prior to the assay. Repair synthesis, measured by the incorporation of [(32)P]dATP or [(32)P]dCTP, was inhibited by 50% at 26 or 43 microM fludarabine triphosphate, respectively; the effect was dose dependent and may have resulted from the termination of repair-patch elongation. These results were consistent with those from pulse-chase experiments demonstrating the conversion of nicked circular plasmid to the closed circular form by cell extracts filling the repair gaps. When proliferating cell nuclear antigen-depleted cell extracts were used and aphidicolin was added in the repair assay to arrest NER at the incision/excision stage, 100 microM fludarabine triphosphate inhibited about 55% of the conversion of nicked plasmids from the closed circular damaged plasmid substrate; the inhibition was dose dependent. We conclude that fludarabine triphosphate inhibited NER at the steps of incision and repair synthesis. These results suggest that fludarabine may serve as a potential repair modulator to improve the antitumor efficacies of combination regimens containing agents that induce NER.
Retinoic acid receptors (RARs) alpha, beta, and gamma contain retinoic acid response elements (RAREs) in their promoter regions and respond to their own activation, thus forming an autoregulatory loop. We generated transgenic mice that expressed an antisense construct of the RAR alpha. Homozygous transgenic mice demonstrated 30% to 80% reduction in RAR alpha protein expression in various tissues. Unlike RAR alpha null mice generated by knockout, our antisense mice demonstrated significant compensatory increases in the expression of RAR beta and RAR gamma proteins. Coarse fur, male sterility, and low body weight were other abnormalities observed in these mice. Most importantly, lymphoma developed in 44% of our homozygous transgenic mice at an early stage of life. These data suggest that RAR alpha is necessary for appropriate response of the RAR beta and RAR gamma genes to physiologic changes and deregulation of the RAR alpha in transgenic mice, which resulted in upregulation of RAR beta and RAR gamma, can be associated with lymphomagenesis. Thus, the data support the hypothesis that a balance among the RARs is necessary for appropriate response to various homeostatic needs.
The MDM-2 oncoprotein exists in an autoregulatory feedback loop with the tumor suppressor protein p53. Therefore, intracellular levels of these two proteins may play important roles in cell proliferation and tumorigenesis. Several MDM-2 proteins (Mr 35-100 Kd) have been demonstrated in human cell lines. We report here the expression profile of MDM-2 and p53 proteins in 87 cases of chronic lymphocytic leukemia (CLL) as detected by immunoblot analysis. The MDM-2 proteins (p57, p59, p67, and p90) were found to be overexpressed in different combinations in 56/87 (64%) of cases of CLL when compared with normal volunteers. The MDM-2 protein p57 was predominantly overexpressed 46/87 (53%) in CLL. In 22/87 (25%) cases of CLL p57 was overexpressed alone, and in 24/87 (28%) cases it was co-overexpressed with other MDM-2 proteins p59/p67/p90. Six of the 87 cases of CLL showed overexpression of the tumor suppressor protein p53 by immunoblot analysis, and five of those cases also co-overexpress MDM-2 protein p57. No statistically significant correlation of MDM-2 protein overexpression to clinical disease stage and history of previous chemotherapy of CLL patients has been found. However, considering the oncogenic potential of overexpressed MDM-2 proteins, a possible role of MDM-2 proteins in the promotion of CLL disease remains to be evaluated.
BACKGROUND: The benefit of splenectomy, performed for complications of chronic lymphocytic leukemia (CLL) including autoimmune hemolytic anemia, thrombocytopenia, hypersplenism, and symptomatic splenomegaly, has not been clearly demonstrated. The objective of this study was to determine if splenectomy achieves a predictable hematologic and survival advantage over conventional chemotherapy in patients with CLL. STUDY DESIGN: A retrospective review was performed of 77 consecutive patients with CLL who underwent splenectomy between 1970 and 1994 at the University of Texas M. D. Anderson Cancer Center. Indications for splenectomy, pre- and postoperative hematologic profiles, response to splenectomy, and time to progression and death were recorded. Kaplan-Meier life tables were constructed, and a comparison to an age- and gender-matched cohort of CLL patients treated with fludarabine and no splenectomy was performed using log rank statistical analysis. RESULTS: Seventy-six percent of the patients studied were Rai stage III/IV. Twenty of 29 patients with hemoglobin counts (Hb) < or = 10 g/dL and 11 of 18 patients with platelet counts (plt) < 50 x 10(9)/L achieved an excellent hematologic response to splenectomy. Splenectomy significantly improved survival in patients with Hb < or = 10 g/dL or plt < or = 50 x 10(9)/L (p = 0.025). Thrombocytopenia did not significantly increase postoperative morbidity, and mortality rate was not significantly different between treatment groups. CONCLUSIONS: Splenectomy significantly improves survival in selected subgroups of patients with advanced-stage CLL over that achieved with conventional chemotherapy. Based on these results, splenectomy should be performed early in the course of the disease in CLL patients with either an Hb < or = 10 g/dL or plt < or = 50 x 10(9)/L.
The aim of this analysis was to evaluate the efficacy of alpha-interferon (alpha-IFN) regimens in late chronic phase (diagnosis >12 months) chronic myelogenous leukemia (CP-CML). Long-term follow-up results were evaluated in 137 patients with Philadelphia chromosome (Ph)-positive late CP-CML. The alpha-IFN programs were sequential studies with human leukocyte alpha-IFN (seven patients), recombinant alpha-IFN alone (15 patients) or with IFN-gamma (29 patients), hydroxyurea (HU) (19 patients), or low-dose cytarabine (Ara-C) (67 patients). Overall, 57% of the patients achieved complete hematological response (CHR), and 7% obtained partial hematological response. Nineteen patients (15% of the 123 evaluable patients) had a cytogenetic response which was major (Ph-positive <35%) in 10 patients (8%). A trend for better responses was observed with shorter disease duration. The median overall survival from start of therapy was 49 months, with an estimated 5-year survival rate of 41%. Some common pretreatment prognostic factors associated with response did not show statistical associations when applied in late CP-CML; however, characteristics such as smaller spleen size, and lower percentages of peripheral blood and marrow blasts and basophils were associated with better survival experience. When patients were subgrouped according to risk, no significant differences in the incidence of cytogenetic response and in survival outcomes were observed among various risk groups. This study confirms that alpha-IFN-based regimens have a modest activity in late CP-CML, and supports the need to develop investigational strategies aimed at improving patient prognosis in this phase.
The study was designed to determine whether administration of granulocyte colony-stimulating factor (G-CSF) following fludarabine would reduce the incidences of myelosuppression and infections. Twenty-five previously treated patients with Rai stage III-IV chronic lymphocytic leukemia (CLL) received fludarabine 30 mg/m2 daily for 5 days each month. G-CSF was given at 5 microg/kg subcutaneously starting 1 day after chemotherapy (day 6) and continued until the next course unless the granulocyte count was > or =10000/microl. The incidences of myelosuppression and infection were compared with those seen in an historical control population of 145 previously treated patients with Rai stage III-IV CLL who were given the same schedule of fludarabine without growth factor. There was a significant decrease in myelosuppression; patients receiving G-CSF developed neutropenia at a neutrophil count <1000/microl or 500/microl in 45% and 15% of courses vs 79% (P=0.002) and 63% (P < 0.001) of historical controls. Twenty percent of G-CSF-treated patients had therapy delayed by >35 days per course, vs 50% of historical controls (P=0.005). The incidence of pneumonia was 8% with G-CSF and 37% without in historical controls. Other infection rates (sepsis, fever of undetermined origin, minor infections) were similar. This decrease in pneumonia was noted even in high-risk groups such as patients older than 60 years and patients with hypogammaglobulinemia. The use of G-CSF following fludarabine in high-risk patients with CLL resulted in a significant decrease in myelosuppression and pneumonia. Larger trials to verify these results and to compare costs are indicated.
The outcome of allogeneic haemopoietic transplants including the rate of immune complications for patients with chronic lymphocytic leukaemia (CLL) refractory to or relapsing after chemotherapy with fludarabine was analysed. Fifteen patients with advanced CLL who received allogeneic transplantation were prospectively analysed. All patients had previously received chemotherapy with fludarabine for 3-15 courses; 12 were refractory. The median number of circulating CD4+ and CD8+ lymphocytes at the time of transplant was 0.49 x 10(9)/l and 0.23 x 10(9)/l, respectively. One patient was transplanted from a one HLA-antigen mismatched unrelated donor. Three others received a one or two antigen mismatched graft and 11 had HLA-identical sibling donors. Patients received cyclosporine or tacrolimus in addition to methotrexate or methylprednisolone for prophylaxis of acute graft-versus-host disease (aGVHD). Fourteen patients engrafted; one patient had graft failure, but recovered after therapy with intravenous immunoglobulin. 13 (87%) achieved complete remission (CR). Nine (53%) remain alive and in CR with a median follow-up of 36 (range 3-60) months. None developed visceral graft-versus-host disease. These data compared favourably to published reports in other leukaemia patients and for patients with CLL who received a comparable immunosuppressive therapy but without prior fludarabine exposure. This data indicates that allogeneic haemopoietic transplantation can induce durable remission in patients with CLL refractory to fludarabine and that it is reasonable to delay transplantation until failure of fludarabine therapy. It also suggests that prior exposure to fludarabine may decrease the incidence of severe aGVHD, possibly through its immunosuppressive effects. Further studies are warranted to evaluate this observation.
Low-grade lymphoma is the commonest form of lymphoma in the USA and Europe with a long natural history with multiple responses and relapses. The tendency has been to use simple oral medication until patients have more advanced aggressive disease but new agents such as the purine analogues, mitoxantrone and monoclonal antibodies has led to re-evaluation of this approach. As purine analogues inhibit DNA repair in lymphoid cells, a new combination of fludarabine, mitoxantrone, and dexamethasone (FND) has been developed that is well tolerated and very effective. In a phase II study, in 51 patients 47% complete remissions and 47% partial remissions were noted. FND is now being used in a randomization comparative trial with alternating triple therapy as frontline treatment for low-grade lymphoma at the M.D. Anderson Cancer Center with monitoring by polymerase chain reaction for rearrangement of the bcl-2 gene in blood and bone marrow cells. The high activity and low morbidity of FND makes it as attractive as initial therapy for patients.
We demonstrated previously that the nucleoside of fludarabine (F-ara-A), a clinically effective agent against chronic lymphocytic leukemia and low-grade lymphoma, produces synergistic cytotoxicity against cisplatin-resistant CP2.0 human colon tumor cells when administered in combination with cisplatin. The purpose of this study was 2-fold: (i) to determine whether the synergy occurs in K562 human chronic myelogenous leukemia cells, which, unlike CP2.0 cells, are relatively resistant to drug-induced apoptosis because they express P210(bcr-abl) and (ii) to study the underlying mechanism for the synergy if the enhancement of cytotoxicity occurs in K562 cells. When K562 cells were treated with fludarabine nucleoside and cisplatin as single agents for 4 hr, IC50 values for fludarabine and cisplatin were 3.33 and 2.28 microM, respectively, as measured by a clonogenic survival assay. The simultaneous treatment of K562 cells with the two agents resulted in synergistic cell killing as determined by median-effect analysis. Such synergistic cell killing by combined cisplatin and fludarabine could not be detected in repair-deficient human xeroderma pigmentosum cell lines. Within the range of cytotoxic concentrations, fludarabine (2.5-15 microM) and cisplatin (3-30 microM) as single agents produced no detectable internucleosomal DNA fragmentation as revealed by gel electrophoresis, nor did the combination of the two drugs induce apoptotic DNA degradation. The effects of fludarabine on the repair of cisplatin-induced DNA adducts and interstrand cross-links in K562 cells were analyzed to determine their correlation with the cytotoxic synergy. The interstrand cross-links were measured by the ethidium bromide binding fluorescence assay and quantitative Southern blotting technique. Repair of the intrastrand adducts was detected with whole-cell extracts using a cisplatin-damaged plasmid as the substrate for the in vitro repair assay. Fludarabine at clinically achievable concentrations (1.5-4.5 microM fludarabine nucleoside; 20-100 microM fludarabine triphosphate) inhibited the repair of the DNA lesions induced by cisplatin in a dose-dependent fashion in K562 cells but not in xeroderma pigmentosum cells. Cotreatment with fludarabine preferentially increased the number of interstrand cross-links induced by cisplatin in actively transcribed genes in K562 cells. These data demonstrate the DNA-repair-inhibitory effect of fludarabine and suggest that this effect may contribute to the synergistic cytotoxicity of the fludarabine/cisplatin combination that resulted in decreased clonogenic survival of apoptosis-resistant K562 cells.
PURPOSE: This retrospective analysis was performed to evaluate critically the morbidity and mortality of splenectomy in patients with chronic lymphocytic leukemia and to determine the probability of hematologic response. Further, using a case/control format based on multivariate analysis-derived predictors of survival, we evaluated the influence of splenectomy on survival. PATIENTS AND METHODS: Between 1971 and 1993, 55 patients with chronic lymphocytic leukemia underwent splenectomy. They were compared with 55 fludarabine-treated patients who had been matched for age, serum albumin level, sex, hemoglobin level, Rai stage, number of prior therapies, and time from diagnosis. RESULTS: In the perioperative period, blood-product usage was modest, and common morbidities were limited to minor infections in 18% of the patients and pneumonia/atelectasis in 25%. Perioperative mortality was 9%. Deaths were related to septic complications in all cases and associated with a preoperative performance status > or = 2 (P = .05). The only predictor identified for hemoglobin and neutrophil increments was spleen weight (P < .05). No factors predictive of platelet increment were identified. The early death rate (within 30 days) and overall survival of splenectomy and control patients were not significantly different (P > .2). Among Rai stage IV patients, those who were splenectomized displayed a strong trend for improved overall survival (P = .15 by log-rank test). The 2-year actuarial survival rate of Rai stage IV patients was 51% +/- 9% in the splenectomy group and 28% +/- 9% in the control group. CONCLUSION: Splenectomy can be performed with modest morbidity, mortality, and resource utilization in patients with advanced chronic lymphocytic leukemia and significant cytopenias. The procedure results in major hematologic benefits in most patients, with hemoglobin and neutrophil increments correlated with spleen weight. Overall, the survival of splenectomized patients is equivalent to control patients. Thrombocytopenic patients (< 100 x 10(9)/L) are most likely to obtain hematologic benefit, and potentially enjoy improved survival. These patients would be suitable for a randomized study to establish definitively the role of splenectomy in chronic lymphocytic leukemia.
PURPOSE: The discovery of effective therapy for hairy cell leukemia (HCL) has increased the relevance of long-term outcome. We have therefore examined the incidence of second cancers. PATIENTS AND METHODS: Data on 350 HCL patients was obtained from the M.D. Anderson Cancer Center Cancer Registry's computerized data base and from chart review. Standardized incidence ratios (SIRs) and standardized mortality ratios (SMRs) (observed/expected [O/E]) were calculated with the expected number determined using age, sex, and calendar-year-specific rates from the Connecticut Tumor Registry and from national mortality data, respectively. RESULTS: The median age of the patients was 50 years and the median follow-up duration was 6 years. Twenty-six patients developed a second cancer at least 6 months after the HCL diagnosis (O/E ratio, 1.34; P = .08). There was no excess of malignancy among patients treated with interferon alfa (IFN-alpha; P = .27), 2-chlorodeoxyadenosine (2CDA; P = .37), or deoxycoformycin (DCF; P = .7). However, an excess of myeloma-related neoplasms (O/E, 13.04; P < .001) and lymphomas (O/E, 8.7; P = .03) was observed. Survival from the advent of systemic therapy for HCL was better than before this time (P = .0009). Nevertheless, mortality remained excessive (O/E, 6.17; P < .001), mainly because of HCL-related infections and secondary malignancy. CONCLUSION: Among 350 patients with HCL, there was an increase in the number of second cancers; however, it did not reach statistical significance and was not associated with therapy. The incidence of lymphoid neoplasms was significantly higher than expected. Survival since the advent of effective systemic therapy was excellent, although excess mortality was still observed.
The purpose of this study was to review the progress in clinical and translational research in chronic myelogenous leukemia (CML) over the past 20 years at M.D. Anderson Cancer Center. The CML database updating the clinical and basic research investigations was reviewed as the source of this report. Publications resulting from these investigations were summarized. The long-term results with intensive chemotherapy, IFN-alpha therapy alone or in combination, autologous stem cell transplantation, and new agents such as homoharringtonine and decitabine showed encouraging results. Biological studies related to the BCR-ABL molecular abnormality, other molecular events, and the detection of minimal residual disease were detailed. Future strategies with potential promise in CML were outlined. Significant progress in understanding CML biology and in treating patients afflicted with the disease has occurred. Several therapeutic and research tools are currently investigated, which should hopefully improve further the prognosis of patients with CML.
Purine nucleoside phosphorylase deficiency leads to a dGTP-mediated T-lymphopenia, suggesting that an analogue of deoxyguanosine would be selectively effective in T-cell disease. 9-beta-D-Arabinofuranosylguanine (ara-G) is relatively resistant to hydrolysis by purine nucleoside phosphorylase and selectively toxic to T cells, but its low solubility has prevented its use in the clinic. 2-Amino-6-methoxy-arabinofuranosylpurine (GW506U) serves as the water-soluble prodrug for ara-G. A Phase I trial in patients with refractory hematological malignancies demonstrated that the clinical responses to this agent were directly related to the peak levels of ara-G 5'-triphosphate (ara-GTP) in target cells. The aim of the present study was to develop and test strategies to increase intracellular accumulation of ara-GTP in primary human leukemia cells of myeloid and B-lymphoid origin. Three strategies were tested. First, incubations with 100 microM ara-G for 4 h produced a linear median accumulation rate of 19 microM/h (range, 2-45 microM/h; n = 15) in lymphoid leukemia cells and 16 microM/h (range, 0.5-41 microM/h; n = 11) in myeloid leukemia cells. Saturation of ara-GTP accumulation was achieved only after 6-8 h exposure in both lymphoid and myeloid leukemia cells, suggesting a rationale for prolonged infusion. Second, a dose-dependent increase in ara-GTP accumulation was observed with incubations of 10-300 microM ara-G for 3 h. Hence, dosing regimens that achieve high plasma levels of ara-G during therapy may increase cellular levels of ara-GTP. Finally, a biochemical modulation approach using in vitro incubation of leukemia cells with 10 microM 9-beta-D-arabinofuranosyl-2-fluoroadenine for 3 h, followed by either 50 or 100 microM ara-G for 4 h, resulted in a statistically significant median 1.3-fold (range, 1.1-9.0-fold; P = 0.034) and 1. 8-fold (range, 0.9-10.6 fold; P = 0.018) increase in ara-GTP compared to cells incubated with ara-G alone. Extension of these studies to ex vivo incubations confirmed our in vitro findings. These strategies will be used in the design of clinical protocols to increase ara-GTP accumulation in leukemia cells during therapy.
Early attempts at preclinical model development for cancer drug development relied heavily on mouse leukemias and lymphomas to detect agents with antitumor activity. These models were applied clinically, and the concepts of combination chemotherapy, remission induction, and maintenance treatment all developed in leukemia. Subsequently, the predominant impact of cytogenetics on probability of response to treatment and survival was first illustrated in leukemia. The power of a single drug to change the natural history of a disease was noted in acute myelogenous leukemia, in which a previously incurable disease was rendered potentially curable with 1-beta-D-arabinofuranosylcytosine. Additional studies illustrated the exquisite relationship between karyotype and response to specific agents. The ability to achieve a high proportion of complete remissions and to control the complication of intravascular coagulation, acute promyelocytic was noted with all-trans retinoic acid. The concept that new drug activity would only be demonstrated in patients with minimal prior therapy has been challenged by the curative potential of a number of agents in far-advanced hairy cell leukemia. In addition, fludarabine monophosphate (Fludara) was sufficiently active in advanced refractory patients that approval for this agent in chronic lymphocytic leukemia was granted by the Food and Drug Administration without comparative clinical trials. Fludara was initially a drug with limited therapeutic range, active only in indolent lymphoproliferative disorders. However, understanding of the multiple biochemical actions of this agent has led to its use in combinations with 1-beta-D-arabinofuranosylcytosine in acute myelogenous leukemia and myelodysplastic syndrome and with DNA active agents such as novantrone and cyclophosphamide in other lymphoproliferative disorders. The understanding of the various actions of this drug gives rise to a wide range of possibilities for biochemical modulation with agents active in solid tumors. The evolution of this understanding of the new role of Fludara has occurred over a period of 10 years. A drug with similar potential in the next decade is compound 506U78, an analogue of arabinosyl guanosine. This agent has potent activity in acute T-cell leukemia. Because it shares many of the activities of Fludara in interfering with enzyme systems important in DNA and RNA synthesis and DNA repair, it is likely that this agent will also have a wider scope than is presently obvious. The unique accessibility of leukemia cells for study has allowed hematologists to understand more fully the range of activities of new agents and has led to important new concepts in the area of drug development.
1-beta-d-Arabinofuranosylcytosine (ara-C), an effective drug for acute leukemias, must be phosphorylated to its 5'-triphosphate, ara-CTP, for activity. Our previous studies during therapy of acute myelogenous leukemia (AML) patients demonstrated that the accumulation of ara-CTP in circulating leukemia blasts was increased by a median of 2-fold when fludarabine (30 mg/m2/day over 30 min) was infused 4 h prior to intermediate dose ara-C. The augmentation was dependent on the cellular concentration of fludarabine triphosphate (F-ara-ATP). To determine the lowest dose of fludarabine needed for modulation of ara-C metabolism, the present study administered fludarabine at a test dose (15 mg/m2 over 30 min) followed by 2 g/m2 ara-C infused over 4 h. The next day, the fludarabine/ara-C couplet was repeated but with a standard dose (30 mg/m2) of fludarabine. There was a dose-dependent accumulation of F-ara-ATP in circulating leukemia blasts; the median peak concentrations were 33 and 41 microM with 15 and 30 mg/m2 of fludarabine, respectively. These intracellular levels of F-ara-ATP effectively increased ara-CTP accumulation to similar levels. To further titrate the dose of fludarabine, the next cohort of patients (n = 4) initially received fludarabine test doses of 7.5 or 5 mg/m2, followed by the 30 mg/m2 dose of fludarabine on the next day; each dose was infused 4 h prior to 2 g/m2 of ara-C. The peak levels of F-ara-ATP at 7.5 and 5 mg/m2 fludarabine were between 3 and 39 microM. The AML blasts that achieved >/=10 microM intracellular F-ara-ATP accumulated ara-CTP similar to the levels achieved after 30 mg/m2 of fludarabine. However, <10 microM intracellular F-ara-ATP resulted in less ara-CTP accumulation compared to that observed after the conventional dose of fludarabine. These data suggest that the modulation of the ara-CTP accumulation by fludarabine is dependent on the cellular concentration of F-ara-ATP, and that 15 mg/m2 fludarabine infused over 30 min consistently produces cellular F-ara-ATP levels that maximize ara-CTP accumulation in AML blasts. These findings point to the feasibility of intensifying the fludarabine-ara-C regimen by using fludarabine as a 15 mg/m2/dose twice daily with intermediate-dose ara-C.
Erythropoietin (EPO) plays a key role in erythropoiesis and is expressed predominantly in the fetal liver and in the adult kidney. The EPO gene is up-regulated at the transcriptional level under hypoxic/anemic conditions. We studied the role of the 5'- and 3'-flanking sequences of the mouse EPO gene in its tissue-specific and hypoxia-induced expression by developing transgenic mouse lines carrying chimeric EPO-lacZ gene constructs. Transgenic mice carrying a 6.5 kb segment of the 5'-sequence and most of the EPO gene in which lacZ was substituted for exon 1 (5'-lacZ-EPO) demonstrated induction of lacZ expression following hypoxia/ anemia induction in both the liver and kidney of adult mice. However, transgenic mice carrying the above construct along with the 1.2 kb 3'-flanking sequence (5'-lacZ-EPO-3') showed a high level of lacZ expression following hypoxia/anemia induction in adult kidney but not in adult liver. With the aim of further understanding the role of the 3'-flanking sequence in tissue-specific expression of the EPO gene, we studied the interactions of protein factors with this 1.2 kb 3' region and demonstrated that multiple sets of protein factors interact tissue specifically with a 10 bp sequence, TCAAAGATGG, located downstream of the previously characterized 3' hypoxia-responsive enhancer element.