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J C Drake

Publications and source records attributed to J C Drake.

At least 55 records · Page 3Linked to original sources

Determinants of the sensitivity of human small-cell lung cancer cell lines to methotrexate.

We have characterized the determinants of methotrexate (MTX) responsiveness in eight patient-derived cell lines of small-cell lung cancer (SCLC). Clonogenic survival was correlated with factors known to affect sensitivity to drug. NCI-H209 and NCI-H128 were most drug sensitive, with drug concentrations required to inhibit clonogenic survival by 50% with less than 0.1 microM MTX. Six cell lines (NCI-H187, NCI-H345, NCI-H60, NCI-H524, NCI-H146, and NCI-N417D) were relatively drug resistant. In all cell lines studied, higher molecular weight MTX-polyglutamates (MTX-PGs) with 3-5 glutamyl moieties (MTX-Glu3 through MTX-Glu5) were selectively retained. Relative resistance to low (1.0 microM) drug concentrations appeared to be largely due to decreased intracellular metabolism of MTX. Five of the six resistant lines were able to synthesize polyglutamates at higher (10 microM) drug concentrations, although one resistant cell line (NCI-N417D) did not synthesize higher molecular weight MTX-PGs, even after exposure to 10 microM drug. Two cell lines with resistance to 10 microM MTX (NCI-H146 and NCI-H524) synthesized and retained higher molecular weight MTX-PGs in excess of binding capacity after exposure to 10 microM drug. However, the specific activity of thymidylate synthase in these cell lines was low. MTX sensitivity in patient-derived cell lines of SCLC requires the ability of cells to accumulate and retain intracellular drug in the form of polyglutamate metabolites in excess of dihydrofolate reductase, as well as a high basal level of consumption of reduced folates in the synthesis of thymidylate.

Biological Transport, Active↗

Competitive protein-binding assay for trimetrexate.

A competitive protein-binding assay has been developed for trimetrexate (TMTX) based on the tight binding of this drug to human dihydrofolate reductase (tetrahydrofolate dehydrogenase). In this assay, TMTX competes with 3H-methotrexate for binding to the enzyme. Free drug is separated from that bound to reductase by adsorption with dextran-albumin-coated charcoal. TMTX is measurable over a range from 2 X 10(-9) to 5 X 10(-8) M in plasma, with a coefficient of variation of less than 10%. Measurements of TMTX in plasma, cerebrospinal fluid, and urine agreed closely with parallel determinations in aqueous solutions.

Animals↗

Mechanism of pyrimethamine resistance in recent isolates of Plasmodium falciparum.

Clones of Plasmodium falciparum prepared from recent isolates of infected blood were studied to determine the molecular mechanism of naturally occurring pyrimethamine resistance. Total DNA, as well as thymidylate synthetase and dihydrofolate reductase activities, were characterized from these lines. Restriction analysis of DNA from pyrimethamine-susceptible and -resistant lines of the parasite showed no obvious amplification of any DNA fragment. Further, analysis of DNA from resistant and susceptible lines by centrifugation in cesium chloride-ethidium bromide revealed no extrachromosomal amplification in the resistant line. Comparison of the dihydrofolate reductase enzyme activity in the two lines revealed similar KmS for substrate but a large difference in the inhibition constant for pyrimethamine. Additionally, the enzyme from the resistant line was considerably more stable in vitro than the corresponding enzyme from the susceptible line. The thymidylate synthetase activity in the two lines was similar and unaffected by pyrimethamine. The mechanism of drug resistance in this isolate involves altered properties of the dihydrofolate reductase conferring both a different affinity for the drug and increased stability.

Animals↗

Test dose for predicting high-dose methotrexate infusions.

Eighteen evaluable patients were studied to determine whether individual methotrexate (MTX) kinetics, determined by test-dose bolus injection, could be used to predict plasma drug concentrations during and after high-dose infusion. Small nontoxic doses of MTX (10 mg/m2) was given to patients who were followed for 12 to 24 hr and the kinetic data were used to predict subsequent kinetic behavior of moderate- and high-dose methotrexate infusions (150 to 1500 mg/m2 over 12 to 18 hr). After test-dose injection, MTX clearance varied from 36 to 138 ml/min/m2 and decreased with advancing age (r = -0.49, P less than 0.05). MTX clearance varied from 24 to 100 ml/min/m2 after high-doses. Although there was a trend to decreasing clearance with advancing age, this was not as clear as with the test dose (r = -0.42, P greater than 0.05). There was no correlation between MTX clearance and creatinine clearance in this group of patients in whom creatinine clearance varied from 32 to 63 ml/min/m2. When the kinetic parameters derived from the test-dose data were used, accurate predictions could be made of the infusion plateau (r = 0.89, P less than 0.001) and 24-hr (r = 0.92, P less than 0.001) MTX concentrations after high-dose infusions. Our results indicate that test-dose MTX kinetics may serve as a guide to dose modification of MTX infusions in some high-risk patients.

Adult↗

Synthesis, retention, and biological activity of methotrexate polyglutamates in cultured human breast cancer cells.

To determine the pharmacologic importance of methotrexate (MTX) polyglutamates, we examined the formation, retention, and effect of these metabolites in cultured human breast cancer cells. Two cell lines (MCF-7 and ZR-75-B) converted the drug to gamma-polyglutamate derivatives in a dose- and time-dependent reaction. After 24-h incubations with 2 muM MTX, polyglutamates of two to five amino acids in length accounted for 55.4% (51.9 nmol/g) of intracellular drug in the MCF-7 cells and 87.6% (62.4 nmol/g) of drug in ZR-75-B cells. In contrast, MDA-231 cells showed lesser accumulation of MTX, and only 32% (4.06 nmol/g) of the intracellular drug was in the form of polyglutamates, a difference that could only partially be explained by decreased ability of these cells to take up free drug from the medium. When MCF-7 and ZR-75-B cells containing polyglutamates were transferred to drug-free medium for 24 h, 22 and 51% of the total intracellular drug were, respectively, retained in each cell line. The loss of intracellular drug was primarily accounted for by disappearance of parent compound and polyglutamates containing 1-3 additional glutamyl residues. The rates of disappearance from cells decreased with increasing glutamyl chain length. All of the 4-NH(2)-10-CH(3)-PteGlu(5) and 47 and 38% of the 4-NH(2)-10-CH(3)-PteGlu(4) remained in the MCF-7 and ZR-75-B cells, respectively, and could be identified in the cytosol after 24 h in drug-free medium. The retention of MTX polyglutamates in these two cell lines in excess of dihydrofolate reductase binding capacity led to prolonged inhibition of thymidylate synthesis and loss of cell viability after removal of extracellular MTX. After 24-h incubation with 2 muM MTX and an additional 24 h in drug-free medium, [(3)H]deoxyuridine incorporation was still inhibited to 30% of control in the MCF-7 cells and 34.7% of control in ZR-75-B cells; this persistent inhibition was associated with a 30% reduction in cell numbers in each cell line during the 24-h period in drug-free medium. In contrast, [(3)H]deoxyuridine incorporation and cell growth quickly recovered to normal in the MDA-231 cells following removal of 2 muM MTX from the medium after a 24-h incubation. Prolonged inhibition of both thymidylate synthesis and cell growth was observed in this cell line in drug-free medium only after a 24-h incubation with 10 muM MTX, a condition that leads to the synthesis of 11.3 nmol/g of MTX polyglutamates. These studies demonstrate that polyglutamate formation allows a prolonged retention of drug in a noneffluxable form and prolonged inhibition of both thymidylate synthesis and cell growth following removal of extracellular drug.

Breast Neoplasms↗

Presence of 2,4-diamino-N10-methylpteroic acid after high-dose methotrexate.

Assay of plasma methotrexate has been established as important to its safe use. We have investigated the specificity of 2 assay procedures for methotrexate: the competitive dihydrofolate reductase binding assay (CRBA) and the radioimmunoassay (RIA). The RIA of plasma methotrexate resulted in consistently higher values than the CRBA, with greater differences at later measurement times. A compound that strongly cross-reacts in the RIA, but not the CRBA, has been identified in plasma and urine of patients on high-dose methotrexate therapy, and appears to be the carboxypeptidase cleavage product (2,4-diamino-N10-methylpteroic acid) on the basis of chromatographic and ultraviolet spectral properties. Although this compound is present as a minor contaminant in commercial methotrexate preparations, quantitative assessment of urinary excretion suggests that in man a major portion of the compound is derived from methotrexate metabolism.

Biological Assay↗

Ara-C metabolism: implications for drug resistance and drug interactions.

Clinical studies of resistance to cytosine arabinoside have not produced agreement as to the specific biochemical lesions responsible for altered sensitivity, although experimental and clinical work supports the concept that a decreased ability to generate ara-CTP must be the ultimate effect of this lesion. 3-deazauridine, an inhibitor of CTP synthetase, was found to enhance ara-CTP production in murine tumor cells, and in the present study, was shown to inhibit deamination of ara-C at both the nucleoside and nucleotide level. Enhanced ara-CTP formation was observed in cells lacking cytidine deaminase (L1 210 and HL60), indicating that 3-deazauridine inhibition of deoxycytidylate deaminase may be important in this drug interaction.

3-Deazauridine↗

In vitro correlates of clinical response to methotrexate in actue leukaemia and Burkitt's lymphoma.

The response of drug-resistant patients with acute leukaemia and Burkitt's lymphoma to treatment with a 24 h infusion of methotrexate (MTX) followed, in some cases,by cytosine arabinoside was correlated with in vitro measurements of total intracellular MTX, exchangeable intracellular MTX, and suppressibility of deoxyuridine (UdR) incorporation in isolated marrow blast cells at extracellular MTX concentrations of 10(-8)M, 10(-7)M, 10(-6)M and 10(-5)M. Total intracellular MTX levels and exchangeable intracellular MTX levels were not significantly different in responding or non-responding patients at any MTX concentration, but increased four-fold for every ten-fold concentration increment studied. Extracellular MTX levels in excess of 10(-7)M appeared necessary to allow accumulation of exchangeable intracellular MTX. UdR incorporation at 10(-6)M and 10(-5)M differed significantly between responding and non-responding patients, with responders having less than 20% of control values and non-responders having greater than 40% of control values. Further, increasing the extracellular MTX concentration from 10(-6)M to 10(-5)M produced no significant decrease in UdR incorporation in either group. The therapeutic implications of this apparent threshold are discussed.

Adolescent↗

Deoxycytidine kinase: properties of the enzyme from human leukemic granulocytes.

Deoxycytidine kinase, which phosphorylates deoxycytidine (CdR) and its analog, cytosine arabinoside (ara-C), has been purified 71-fold from human leukemic cells. Biochemical properties of the partially purified enzyme included a molecular weight of 68,000, Kms of 7.8 muM for CdR and 25.6 muM for ara-C, and optimal activity with ATP and GTP as phosphate donors. Ara-C phosphorylation was strongly inhibited by CdR (Ki = 0.17 muM) and dCTP (Ki = 7.3 muM) and was weakly inhibited by ara-CTP (Ki = 0.13 mM). Purification by calcium phosphate gel elution and DEAE chromatography effectively separated this enzyme from cytidine deaminase, which deaminates both CdR and ara-C, and from uridine-cytidine kinase, the enzyme which phosphorylates 5-azacytidine. CdR kinase activity was found to decrease and cytidine deaminase to increase with maturation of normal and leukemic granulocytes. Myeloblasts purified by Ficoll sedimentation revealed an average kinase activity of 15.4 U/mg protein in acute myelocytic leukemia and 12.3 U/mg protein in blastic crisis of chronic myelocytic leukemia (CML). The average ratio of CdR kinase to deaminase activity in crude cell extracts varied from 0.197 in AML and 0.089 in blastic crisis to 0.0004 in normal granulocytes, reflecting the changes which take place with cellular maturation. The absolute levels of kinase and deaminase and the ratio of these two enzymes varied considerably among patients with AML, indicating that quantitative differences may be found in the metabolism of CdR and its analogs in leukemic cells.

Azacitidine↗

Purification and properties of cytidine deaminase from normal and leukemic granulocytes.

Cytidine deaminase, an enzyme that catalyses the deamination of both cytidine and its nucleoside analogues including the antineoplastic agents cytosine arabinoside (ara-C) and 5-azacytidine (5-azaC), has been partially purified from normal and leukemic human granulocytes. The purification procedure included heat precipitation at 70 degrees C, ammonium sulfate precipitation, calcium phosphate gel ion exchange, and Sephadex G-150 gel filtration. The enzyme has mol wt 51,000, isoelectric pH of 4.8, and maximum activity over a broad pH range of 5-9.5. The enzyme is stabilized by the presence of the sulfhydryl reagent, dithiothreitol. Cytidine deaminase from normal human granulocytes has a greater affinity for its physiologic substrate cytidine (K(m) = 1.1 x 10(-5) M) than for ara-C (8.8 x 10(-5) M) or 5-azaC (4.3 x 10(-4) M). Halogenated analogues such as 5-fluorocytidine and 5-bromo-2'-deoxycytidine also exhibited substrate activity, with maximum velocities greater than that of the physiologic substrates cytidine and deoxycytidine. No activity was observed with nucleotides or deoxynucleotides. The relative maximum velocity of the enzyme for cytidine and its nucleoside analogues remained constant during purification, indicating that a single enzyme was responsible for deamination of these substrates. Tetrahydrouridine (THU) was found to be a strong competitive inhibitor of partially purified deaminase with a K(i) of 5.4 x 10(-8) M. The biochemical properties of partially purified preparations of cytidine deaminase from normal and leukemic cells were compared with respect to isoelectric pH, molecular weight, and substrate and inhibitor kinetic parameters, and no differences were observed. However, normal circulating granulocytes contained a significantly greater concentration of cytidine deaminase (3.52+/-1.86 x 10(3)/mg protein) than chronic myelocytic leukemia (CML) cells (1.40+/-0.70 x 10(3) U/mg protein) or acute myelocytic leukemia (AML) cells (0.19+/-0.17 x 10(3) U/mg protein). To explain these differences in enzyme levels in leukemic versus normal cells, the changes in cytidine deaminase levels associated with maturation of normal granulocytes were studied in normal human bone marrow. Myeloid precursors obtained from bone marrow aspirates were separated into mature and immature fractions by Ficoll density centrifugation. Deaminase activity in lysates of mature granulocytes was 3.55-14.2 times greater than the activity found in the lysates of immature cells. Decreased enzyme activity was also found in immature myeloid cells from a patient with CML as compared to mature granulocytes from the same patient. These observations support the conclusion that the greater specific activity of cytidine deaminase in normal mature granulocytes as compared to leukemic cells is related to the process of granulocyte maturation rather than a specific enzymatic defect in leukemic cells.

Adolescent↗