Resistance of human tumor cell lines to antifolates.
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Biomedical subjects
Publications and source records attributed to R C Jackson.
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Cl-920 is a structurally novel phosphate ester antibiotic that contains an unsaturated lactone and a conjugated triene system. It has potent antileukemic activity in mice. At doses of 25 mg/kg given i.p. once daily for 5 days to mice bearing approximately 10(7) L1210 leukemia cells, Cl-920 is curative in about 10% of the mice. Life span increases in noncured mice are typically in excess of 150%. The unsaturated lactone and phosphate ester moieties are required for activity against L1210 leukemia. Ring hydroxylation or removal of the terminal hydroxyl group have only modest effects on activity. Schedule studies suggest that prolonged exposure to low levels of Cl-920 is considerably more toxic than is daily or intermittent administration. Daily administration produces optimal activity against L1210 leukemia. Administration i.p. and i.v. of Cl-920 produce roughly equal toxicity and equal activity against an i.p. implant of L1210 leukemia. Cl-920 is inactive when given p.o. or s.c. Cl-920 failed to show confirmed activity against the following tumors in mice: M5076 sarcoma, B16 melanoma, and Ridgway osteogenic sarcoma. The lack of solid tumor activity in mice may be caused by a transport deficiency similar to that found with methotrexate.
The biochemical effects of the antitumor agent N-(4-(N-(( 2-amino-4-hydroxy-6-quinazolinyl)methyl)prop-2-ynylamino) benzoyl)-L -glutamic acid (CB3717) were studied in WI-L2 cultured human lymphoblastoid cells. CB3717 was a potent inhibitor of human thymidylate synthetase; the inhibition was competitive with 5,10-methylenetetrahydrofolate (Ki = 4.9 X 10(-9) M). CB3717 also inhibited human dihydrofolate reductase, competitively with dihydrofolate (Ki = 2.3 X 10(-8) M). The growth-inhibitory effect of CB3717 could be prevented completely by 10 microM thymidine. Administration of thymidine could be delayed for up to 8 hr after CB3717 treatment without cytotoxicity but, if thymidine was delayed for 24 hr, severe toxicity resulted. Incubation for 16 hr in the presence of a growth-inhibitory concentration of CB3717 did not result in the appearance of dihydrofolate in WI-L2 cells. These results indicate that, in the presence of CB3717, thymidylate synthetase, rather than dihydrofolate reductase, became rate-limiting for the cycle of dihydrofolate oxidation and reduction. Treatment of cells for 16 hr at an IC50 concentration of CB3717 caused a decrease of 88% in cellular dTTP and a 2,300% increase in dUMP. The level of dUDP also increased, and traces of dUTP appeared in treated cells. No large changes were seen in ribonucleotide pools. A kinetic analysis was made, by computer simulation, of predicted consequences of metabolic effects of compounds that inhibit both dihydrofolate reductase and thymidylate synthetase. It was concluded that, even if the Ki of the inhibitor for thymidylate synthetase were 3 orders of magnitude higher (weaker) than the Ki for dihydrofolate reductase, thymidylate synthetase could still become rate-limiting.
We have developed a rapid turbidimetric assay for the release of cortical granule contents from cortices prepared from eggs of the sea urchin, Strongylocentrotus purpuratus. The decrease in turbidity of cortex suspensions which occurs when the free calcium ion concentration is increased to 0.38-0.62 microM can be followed spectrophotometrically. Kinetic experiments demonstrate that this calcium-triggered turbidity change occurs rapidly and with no detectable lag period. Evidence indicating that the observed decrease in turbidity results from the release of cortical granule contents was obtained by correlating the free calcium ion concentration required to initiate the turbidity change with the free calcium ion concentration required in microscopic and enzymatic assays. All three assays exhibited similar calcium dependence. In the microscopic assay, morphological changes are used to assess the extent of cortical granule exocytosis. The enzymatic assay is based upon the latency of ovoperoxidase, a cortical granule enzyme. Ovoperoxidase catalyzed a 30-125-fold increase in the incorporation of [125I]iodine into trichloroacetic acid-precipitable cortex protein at and above threshold calcium ion concentrations. We have utilized the turbidimetric assay to screen several potential inhibitors of the cortical reaction. In confirmation of previous reports, we find that the phenothiazine drugs, chlorpromazine and trifluoperazine, are inhibitory. Sulfhydryl-modifying reagents, N-ethylmaleimide and sodium tetrathionate, are also inhibitory. Inhibition of cortical granule enzyme release by N-ethylmaleimide was confirmed with the ovoperoxidase latency assay.
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Methotrexate (MTX)-resistant sublines of malignant human cells were selected in vitro by stepwise increase in drug concentration in the medium. By this procedure a subline of Burkitt's lymphoma cells (RAJI) was made 290-fold resistant (RAJI/MTX-R), T-cell leukemia cells (CCRF-CEM) were obtained 210-fold resistant (CEM/MTX-R), and 3 MTX-resistant human osteosarcoma lines were selected: TE-85/MTX-R (19-fold resistant; relative to wild-type); MG-63/MTX-R (8-fold resistant); and SAOS-2/MTX-R (200-fold resistant). We also studied a B-cell lymphoblastoid line, WI-L2/m4, that was 13,000-fold resistant. Assay of cellular dihydrofolate reductase (DHFR) showed the following pattern of activity in resistant cell lines, relative to parental cell activity: RAJI/MTX-R, 550-fold increased; CEM/MTX-R, unchanged; TE-85/MTX-R, 4-fold increased; MG-63/MTX-R, 6-fold increased; SAOS-2/MTX-R, unchanged; and WI-L2/m4, 110-fold increased. Measurement of MTX membrane transport showed decreased uptake in CEM/MTX-R and SAOS-2/MTX-R, relative to parental cell lines. The other DHFR-overproducing cells all gave normal initial MTX uptake rates but increased total uptake. The DHFR-overproducing lines all had significant cross-resistance to both metoprine and trimetrexate; the two lines with defective MTX transport were not cross-resistant, and the CEM/MTX-R cells showed collateral sensitivity to these agents. Only minor cross-resistance to homofolic acid was found in all MTX-resistant lines. The highly MTX-resistant RAJI/MTX-R and WI-L2/m4 cells showed minor cross-resistance to the dual inhibitor of thymidylate synthetase and DHFR, CB3717 (5- and 15-fold, respectively). These studies demonstrated that, depending upon the mechanism of resistance, MTX-resistant human tumor cells may be effectively killed by antifolates with different routes of uptake into cells, or with a different enzyme target. Thus, there are at least three functionally distinct classes of folate antagonist with antitumor activity.
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We studied mechanisms governing production of the neutral proteinase collagenase by synovial cells. We used a model system of monolayer cultures of rabbit synovial fibroblasts stimulated to produce collagenase by treatment with phorbol myristate acetate or crystals of monosodium urate monohydrate. mRNAs from these and untreated cells were translated in a wheat germ cell-free system. Collagenase was not present in the culture medium or in the in vitro translation products of mRNA from untreated cells but was present in both the medium and translation products of stimulated cells, as analyzed by gel electrophoresis and immunoprecipitation with monospecific antibody. Induction of collagenase was prevented by treatment of the cells with alpha-amanitin (2 mug/ mL), an inhibitor of mRNA synthesis. We have concluded that the induction of collagenase synthesis by either phorbol myristate acetate or urate crystals is due to an increased level of translatable mRNA.
Hepatoma 8999 was sensitive to Lycurim [1,4-di-(methylsulfonyloxy-ethylamino)-1,4-dideoxy-ms-erythritol] with a mean lethal dose (LD50) of 8.1 X 10(-8) M for a 6-hour treatment in vitro. The drug dose lethal to 10% of the rats with Lycurim (10 mg/kg) injected ip 12 times into hepatoma 8999-bearing BUF rats at 10-day intervals provided a mean increase in life-span (ILS) of 156%. The more rapidly growing, less differentiated hepatoma 3924A was tenfold less sensitive to Lycurim in vitro, and three treatments in vivo (10 mg/kg given every 8 days) gave an ILS of only 18% in ACI/N rats. Because hepatoma 8999 had a high adenosine kinase activity, the effect of Pyrazofurin (PF; 3-beta-D-ribofuranosyl-4-hydroxypyrazole-5-carboxamide) was examined in vitro: The LD50 was 8.5 X 10(-8) M in a 6-hour exposure. In hepatoma 3924A, with a fifteenfold lower adenosine kinase, the LD50 was 22-fold higher. Three treatments with PF (4 mg/kg given every 2 days) in hepatoma 8999 caused an 18% ILS and no host toxicity, but in hepatoma 3924A no significant ILS was observed. Lycurim combined with PF (0.05 microM each) in hepatoma 8999 cells in vitro provided synergistic kill, but Lycurim and PF (0.3 and 1 microM, respectively) in hepatoma 3924A cells yielded summation. When 10 rats with hepatoma 8999 were treated 15 times with the optimal dose of Lycurim (7.5 mg/kg every 10 1/2 days), 1-year survivors numbered 7. Alternate doses of Lycurim (7.5 mg/kg) and PF (3 mg/kg) at 5-day intervals for 4 months to 10 rats gave an ILS of 152% with eight 1-year survivors and no host toxicity.
Tissue contents of NADPH and NADP+ were measured in freeze-clamped samples of normal rat liver and in four transplantable rat hepatomas covering a wide range of growth rates. Lowry cycling procedures were employed for analysis, using alkaline extracts for NADPH and acid extracts for NADP+. The mean NADPH content in 33 normal livers was 515 nmol/g wet weight, and mean NADP+ content was 311 nmol/g wet weight. In the four hepatomas, the amounts of both NADPH and NADP+ were low, and the extent of decrease correlated with tumor growth rate. In the slowly growing hepatoma 9618A, total NADP was slightly decreased (63% control) and more extensive decreases were observed in the medium growth rate tumors 47C and 8999 (38% and 19%, respectively, of control). In the rapidly growing hepatoma 3924A, total NADP was drastically decreased to 3% of the control liver value. Measurement of NADPH and NADP+ recovery from extracts of hepatoma 3924A showed that there were no inhibitors that might have blocked the activity of the assay enzymes. The NADPH/NADP+ ratio was close to the normal liver value in all four hepatomas. A 30-sec period of ischemia did not cause significant change in NADPH, but gave 33% decrease in liver NADP+. A 5-min period of ischemia decreased NADP+ to 50% of the zero-time value in liver, and to 71% in hepatoma 3924A, but was without effect on NADPH.
mRNA extracted from rabbit synovial fibroblasts which had been induced to produce large amounts of collagenase (EC 3.4.23.7) by urate crystals was translated in a cell-free wheat germ system. Collagenase was identified by immunoprecipitation using mono-specific antibody to rabbit synovial collagenase. In the absence of microsomal membranes, a single precursor with Mr = 59,000 was synthesized. This polypeptide was susceptible to proteolytic degradation. In the presence of canine pancreatic microsomes, the nascent protein was processed to a polypeptide with Mr = 57,000 (identical in mobility on sodium dodecyl sulfate-gel electrophoresis to the major latent collagenase secreted from cells) and was protected from tryptic digestion unless a detergent was used to disrupt the membranes. In addition to Mr = 57,000 material, cells secreted immunologically reactive latent collagenase with Mr = 61,000. High molecular weight collagenase was separated from Mr = 57,000 species by binding to concanavalin a-Sepharose, suggesting that this enzyme was a product of post-translational glycosylation. Both latent enzymes were activated by trypsin and human plasma kallikrein to Mr = 45,000 and 49,000. The evidence indicates that rabbit synovial fibroblast collagenase is synthesized and secreted as a single polypeptide zymogen, not as an enzyme-inhibitor complex.
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The behavior of the activities of GMP synthetase (xanthosine-5'-phosphate: L-glutamine amino-ligase(AMP-forming),EC 6.3.5.2) and GMP kinase (ATP: (d)GMP phosphotransferase,EC 2.7.4.8) was elucidated in cytosol preparations of rat tissues, including fetal, neonatal and regenerating liver, in a transplantable kidney tumor, and in a spectrum of 11 hepatomas of different growth rates. GMP kinase activity was 60-fold or more higher than GMP synthetase activity in all of the examined tissues. GMP synthetase activity was increased in all hepatomas and in the kidney tumor, compared to control tissues, reaching 5.5-fold the normal liver values in the most rapidly growing hepatoma. This increase correlated with the tumor growth rates. GMP kinase activity showed no consistent pattern of alteration in the tumors. In both fetal and neonatal rat liver the activity of GMP synthetase was 2.5-times higher than in livers of adult rats, but GMP kinase activity did not change markedly during liver development. After partial hepatectomy GMP synthetase activity was elevated, reaching a peak of 155% of the sham-operated control values by 36 h after the operation. GMP kinase activity was not affected by partial hepatectomy. After 3 days starvation hepatic GMP kinase activity decreased slightly faster than total cytosol protein, while GMP synthetase activity was preferentially maintained. These results indicate that GMP synthetase activity was linked with cellular proliferation in differentiating, regenerating and neoplastic tissues.
The ability of canine pancreatic signal peptidase to remove the signal peptide portion of presecretory proteins in a translocation-independent assay is shown to require phospholipid. Sodium deoxycholate extracts of canine pancreatic rough microsomes containing both signal peptidase and phospholipid were delipidated by gel filtration chromatography on Sepharose CL-6B equilibrated with 0.2% deoxycholate. Column fractions were assayed for signal peptidase activity both with and without the addition of ethanol-extracted soybean phospholipid at a final concentration of 1.0 mg/ml. A peak of signal peptidase activity was detected only when the fractions were assayed with added phospholipid. Phospholipid assays demonstrated that the peak of signal peptidase activity was cleanly separated from phospholipid. The ratio of protein to phospholipid in the deoxycholate extract of rough microsomes was 1.76 while that of the most active signal peptidase fractions ranged from 46.1 to 138. The peak of signal peptidase activity exhibited an apparent Stokes radius of 55 A. Highly purified preparations of phosphatidylcholine were most effective in restoring activity to delipidated signal peptidase. Phosphatidylinositol was much less effective. Phosphatidylserine, phosphatidylethanolamine, sphingomyelin, and lysophosphatidylcholine were all ineffective.
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