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R C Jackson

Publications and source records attributed to R C Jackson.

At least 55 records · Page 3Linked to original sources

Unresolved issues in the biochemical pharmacology of antifolates.

Despite extensive knowledge of the molecular basis for anticancer selectivity of antifolates, particularly classical antifolates, several fundamental questions remain unanswered. It is still not known why antifolate-treated cells die, rather than remain in stasis. The role of uracil misincorporation into DNA in causing irreparable damage has not yet been completely clarified, nor to what extent the antipurine effect of methotrexate (MTX) may be a desirable effect that contributes to antitumor activity. The antipurine effect may cause progression delay, with paradoxical "self-antagonism"; possibly the antipurine effect of MTX is a cause of toxic side effects. Even less is known about the molecular pharmacology of nonclassical antifolates. If they are not dependent for cellular uptake upon a neoplastic transformation-linked carrier, and since they are not subject to polyglutamylation, the molecular basis for anticancer selectivity of nonclassical antifols is unclear. The mechanism by which trimetrexate and metoprine are transported into cells is not known; if it is by passive diffusion, it is odd that resistance is sometimes associated with impaired drug uptake. Other unanswered questions are the mechanism of cross-resistance of doxorubicin-resistant cells to trimetrexate, and why the cytotoxic effect of trimetrexate, at low concentrations, is reversed by thymidine in the absence of purines. Questions also remain concerning antifolate inhibitors of thymidylate synthase (TS), such as how 5,8-dideaza-10-propargylfolic acid (CB3717) enters cells, and whether TS inhibitors will have activity against slowly growing tumors. These and related questions are discussed in relation to the design of optimal antifolate chemotherapy.

Alkylating Agents↗

Polycation inhibition of exocytosis from sea urchin egg cortex.

The Ca2+-stimulated release of vesicle contents from cortical fragments prepared from sea urchin eggs is an in vitro model for exocytosis. Cortical fragments have been isolated either in suspension (cell surface complex, CSC preparation), or attached to polycation-coated surfaces (cortical lawn, CL preparation). CL, but not CSC, have been reported to undergo a rapid "aging" process whereby they fail to respond to micromolar free Ca2+. Since, in principle, the only difference between the two preparations is the use of polycations in the CL preparation, polycations were suspected of being inhibitory. This hypothesis was tested by evaluating the effects of polycation-containing buffers on the Ca2+ threshold, rate, and extent of exocytosis in CL prepared from the eggs of Strongylocentrotus purpuratus. A sensitive microphotometric assay, based on light scattering by the individual cortical vesicles in the CL, was used to quantitate the exocytotic response. Buffers containing polylysine were found to be potent inhibitors of cortical exocytosis. The Ca2+ threshold of CL that had been treated for 15 min at room temperature with 50 micrograms/ml of polylysine was more than three orders of magnitude greater than that of freshly prepared CL. The other polycations tested (protamine, spermine and neomycin) were also found to be inhibitory, but to a lesser degree than polylysine. Two lines of evidence suggested that the polycations used in the preparation of CL are responsible for the rapid "aging" phenomenon: CSC fragments that had been affixed to polylysine-coated coverslips were shown to acquire "aging" characteristics similar to the CL preparations; control CSC that had been maintained in suspension did not. Radiolabeled poly-L-lysine was shown to dissociate from coated coverslips and redistribute onto CL.

Animals↗

The biochemical pharmacology of (2'-R)-chloropentostatin, a novel inhibitor of adenosine deaminase.

2'-Chloropentostatin is a new inhibitor of adenosine deaminase isolated from the fermentation broth of an unidentified actinomycete, ATCC 39365. It contains the aglycone of coformycin, i.e. 3,6,7,8-tetrahydroimidazo[4,5-d][1,3]diazepin-8-o1, coupled to the unusual carbohydrate, 2'-chloro-2'-deoxyribose. 2'-Chloropentostatin is a slightly weaker inhibitor of rat and human adenosine deaminases than coformycin, and considerably weaker than pentostatin. Unlike pentostatin, which appears to undergo a two-stage interaction with adenosine deaminase, 2'-chloropentostatin forms a single enzyme-inhibitor complex. The enzyme-inhibitor complex between adenosine deaminase and 2'-chloropentostatin was much more rapidly dissociable than the complex with pentostatin. The complex between adenosine deaminase and 2'-chloropentostatin dissociated with a half-life of approximately 3 hr, compared with 68 hr for the complex between adenosine deaminase and pentostatin. 2'-Chloropentostatin, at concentrations up to 10 micromolar, did not cause significant inhibition of growth of WI-L2 human B-cell lymphoblasts, or of CCRF-CEM human T-cell lymphoblasts in culture. However, it greatly potentiated the inhibitory potency of adenosine, 2'-deoxyadenosine, or arabinosyladenine towards these cell lines. This potentiating effect was equipotent for 2'-chloropentostatin and pentostatin. T-cells (CCRF-CEM) were much more sensitive to the inhibitory effect of combinations of adenosine or 2'-deoxyadenosine with 2'-chloropentostatin or pentostatin than were B-cells (WI-L2). Pentostatin and 2'-chloropentostatin had no significant antitumor activity against mouse leukemia L1210 in vivo. However, these adenosine deaminase inhibitors, at nontoxic doses, greatly potentiated the antitumor activity of ara-A 5'-phosphate. 2'-Chloropentostatin was somewhat more active in this regard than was pentostatin.

Adenine Nucleotides↗

Membrane transport alterations as a mechanism of resistance to anticancer agents.

An alteration in membrane transport is one of the most common mechanisms by which tumour cells become resistant to anticancer agents and represents one of the major obstacles in present cancer chemotherapy. A recent emphasis on understanding the mechanisms by which drugs are transported into cells should continue to assist attempts to overcome these problems. Resistance in certain instances can be overcome by modifications in the structure of a drug which increases lipophilicity. These successes have usually been obtained where well defined transport processes are present and specific deletions or modifications in the putative transport proteins are apparent, as in the case of classical antifolates. Simplicity, however, never seems to prevail and recent evidence indicates that cells can prevent transport of lipophilic drugs perhaps by modification of the chemical structure or properties of the plasma membrane, as in the case of trimetrexate. Some alkylating agents are transported by well defined carrier systems; for example, nitrogen mustard enters cells by the choline carrier, and melphalan uses two distinct amino acid carrier mechanisms. For both of these agents, tumour cell resistance is sometimes caused by transport defects. Resistance to antitumour nucleosides may be associated with impaired transport, and this has been demonstrated most clearly for cytarabine and fluorodeoxyuridine. In the case of antitumour antibiotics, although resistance is most often associated with a pleiotropic resistance phenotype in which the rate of drug efflux from the cell is increased, certain cases will be discussed in which resistance may be clearly attributed to defective drug uptake.

Alkylating Agents↗

Resistance to anthrapyrazoles and anthracyclines in multidrug-resistant P388 murine leukemia cells: reversal by calcium blockers and calmodulin antagonists.

A series of anthrapyrazoles was examined for their cytotoxic effect on P388 cells resistant (P388R) to anthracyclines, N-[4-(9-acridinylamino)-3-methoxyphenyl] methanesulfonamide, trimetrexate, and vinblastine. The degree of resistance of P388R cells to Adriamycin (ADR) and daunomycin was 50-fold and 38-fold, respectively, when compared to the parent cell line (P388S). The Adriamycin-resistant cells were highly cross-resistant to some anthrapyrazoles, but the degree of cross-resistance was not uniform and was less than 3-fold for one member of the series. The lipophilicity of these compounds appeared to correlate to some extent with the level of resistance. The calcium channel blockers verapamil (VER) and diltiazem and the calmodulin antagonist trifluoperazine potentiated the cytotoxicity of the anthrapyrazoles and ADR in P388R. This potentiating effect was concentration dependent with VER being the most efficacious. VER increased ADR cytotoxicity by greater than 10-fold and CI-937 by almost 40-fold. However, VER, diltiazem, and trifluoperazine had no effect on ADR or anthrapyrazole activity in P388S cells. The antiarrhythmic drug, quinidine, and the detergent, Tween 80, also potentiated ADR activity in P388R cells to the same extent as VER. Both the net accumulation and efflux of [3H]daunomycin were altered in P388R cells by nontoxic concentrations of Tween 80 in a fashion virtually identical to that demonstrated for VER. These data suggest that agents which potentiate drug cytotoxicity in P388R cells may do so by their interaction with the lipid domain of the plasma membrane. In addition, these results demonstrate that some members of the new series of DNA binding drugs, the anthrapyrazoles, may be active against anthracycline-resistant tumors and that, where cross-resistance to them occurs, it can be partially reversed by agents such as VER.

Animals↗

In vitro DNA strand scission and inhibition of nucleic acid synthesis in L1210 leukemia cells by a new class of DNA complexers, the anthra[1,9-cd]pyrazol-6(2H)-ones (anthrapyrazoles).

CI-937 and CI-942 belong to a new class of DNA complexers, the anthra[1,9-cd]pyrazol-6(2H)-ones (anthrapyrazoles), and are being further developed as antitumor drugs based on their curative properties against murine solid tumour models. The biochemical effects of these agents were studied in L1210 leukemia in relation to other clinically used intercalators. After a 1-hr exposure, CI-937 and CI-942 reduced the cloning efficiency of L1210 cells by 50% at 3.0 X 10(-8) and 1.5 X 10(-7) M respectively. Based on an ethidium displacement assay, these drugs bound strongly to DNA, reducing the fluorescence of an ethidium-DNA complex by 50% at concentrations of 23 and 33 nM for CI-937 and CI-942 respectively. This was comparable to mitoxantrone at 15 nM, but much more potent than Amsacrine which required over 1.3 microM. A distinct property of the anthrapyrazoles was a much more potent inhibitory effect on whole cell DNA synthesis than on RNA synthesis. After L1210 cells were exposed to drug for 2 hr the concentration needed to inhibit DNA synthesis by 50% was 0.33 and 0.57 microM for CI-937 and CI-942, respectively, whereas 2.0 and 11.3 microM were required to inhibit RNA synthesis by the same extent. This was in contrast to Adriamycin and mitoxantrone which inhibited both activities equally at similar concentrations. It was apparent that the inhibition of these processes was not due to substrate depletion since intracellular ribonucleoside and deoxyribonucleoside triphosphates either remained constant or were elevated after a 2-hr exposure to 1 or 10 microM drug. A similar discriminatory effect was observed on DNA and RNA polymerase in permeabilized cells, and the inhibition of nucleic acid synthesis in this system could be reversed by exogenously added DNA. Since the high incidence of cardiotoxicity associated with the administration of anthracyclines has been related to the formation of reactive oxygen species, the ability of the anthrapyrazoles to augment superoxide dismutase sensitive oxygen consumption was observed in a rat liver microsomal system. CI-937 and CI-942 induced 5- and 10-fold less oxygen consumption than Adriamycin, producing rates of 12.4, 24.2 and 138.9 nmoles/min/mg microsomal protein, respectively, at a drug concentration of 0.5 mM.(ABSTRACT TRUNCATED AT 400 WORDS)

Aminoacridines↗

Biochemical and antitumor activity of tiazofurin and its selenium analog (2-beta-D-ribofuranosyl-4-selenazolecarboxamide).

2-beta-D-Ribofuranosyl-4-selenazolecarboxamide (selenazofurin, CI-935), the selenium analog of tiazofurin (CI-909), was 3- to 10-fold more cytotoxic to murine or human tumor cells in vitro than tiazofurin and was also more active against P388 mouse leukemia in vivo. In vitro cytotoxicity could be reversed by guanosine or guanine but not by other purine nucleosides or bases. Three human tumor cell lines selected for selenazofurin or tiazofurin resistance showed cross resistance between selenazofurin and tiazofurin. Treatment with tiazofurin, selenazofurin, or mycophenolic acid decreased guanylate pools and caused an accumulation of IMP in WIL2 human lymphoma cells. The decrease in guanylate pools was accompanied by inhibition of RNA and DNA synthesis. The NAD analogs of tiazofurin and selenazofurin were inhibitors of L1210 IMP dehydrogenase (IMP:NAD oxidoreductase, EC 1.2.1.14), and both showed uncompetitive inhibition with respect to NAD having Kii values of 5.7 X 10(-8)M and 3.3 X 10(-8)M respectively.

Animals↗

Peptide products of the cleavage of bovine preprolactin by signal peptidase.

Cleavage of preprolactin (pPL) by detergent-solubilized signal peptidase produced mature prolactin and two small peptides derived from the signal peptide region of the pPL molecule. The production of both peptides was dependent on functional signal peptidase; the peptides were not generated at detergent concentrations that abolished signal peptidase activity. The amount of both peptides was proportional to the concentration of signal peptidase in the assay. The appearance of both peptides was insensitive to protease inhibitors, as was signal peptidase activity. The size, labeling characteristics, and amino acid sequence of the larger peptide, peptide 1, corresponded to those of the intact signal peptide of pPL. The smaller peptide, peptide 2, lacked the carboxy terminus of the signal peptide, and was, therefore, a fragment of intact signal peptide. These results demonstrate the endoproteolytic nature of signal peptidase.

Amino Acid Sequence↗

Dezaguanine mesylate: a new antipurine antimetabolite.

3-Deazaguanine (dezaguanine, USAN; CI-908) is a new antipurine antimetabolite which is entering Phase I studies in the USA. This compound differs from guanine only in the substitution of a carbon for the 3-nitrogen of guanine. Dezaguanine has an unusual spectrum of activity against experimental rodent tumors; its activity against transplantable rodent leukemias is only modest, but it has significant activity against transplantable rodent solid tumors, particularly mammary adenocarcinomas. Mammary adenocarcinoma models against which this compound is active include slow and fast-growing tumors, hormone sensitive and hormone insensitive tumors, and the subrenal capsule implanted human breast cancer xenograft, MX-1. Dezaguanine must be converted to its nucleotides to be active. Dezaguanine nucleotides inhibit synthesis of guanine nucleotides, and can be incorporated into nucleic acids in place of guanine nucleotides; incorporation into DNA may be particularly important in the cytotoxicity of this compound. Addition of certain purines or purine nucleosides can prevent dezaguanine cytotoxicity in vitro. Preclinical studies suggest that dezaguanine does not undergo deamination to 3-deazaxanthine, and is not metabolized by xanthine oxidase. Therefore, this compound may not be subject to metabolic inactivation in vivo, and active metabolites may have a prolonged half-life. This concept is supported by the prolonged half-life of radiolabelled dezaguanine in rats. Finally, dezaguanine can cross the blood-brain barrier. In summary, the novel biochemical and experimental antitumor properties of dezaguanine indicate that this compound could have better activity against some human solid tumors than currently used purine antimetabolites.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenocarcinoma↗

The biochemical pharmacology of CI-920, a structurally novel antibiotic with antileukemic activity.

CI-920 is a structurally novel, phosphate-containing polyene lactone antitumor agent isolated from a previously undescribed subspecies of Streptomyces pulveraceus cultured from a Brazilian soil sample. CI-920 was active against murine leukemia P388, and highly active and curative against L1210 leukemia in vivo. CI-920 was less active or inactive against the murine solid tumors tested. Daily administration for five to nine days was more effective against L1210 leukemia than a single dose or doses every four days. Given three times daily for five days, CI-920 was more toxic and less active. CI-920 had similar activity intravenously and intraperitoneally. Oral administration was inactive and nontoxic. Subcutaneous treatment was less effective and more toxic. Structure-activity relationship studies showed that the phosphate group was essential for antitumor activity in vivo and in vitro. Hydrolyzing the lactone ring also resulted in loss of antitumor activity, as did acetylation of the 6-hydroxyl group. Hydroxylation at the 5-position of the lactone ring resulted in partial retention of antitumor activity, but in greater toxicity to mice. Removal of the 13-hydroxyl group resulted in retention of high antitumor activity with approximately three-fold improvement in dose-potency. CI-920 is not cytotoxic to prokaryotic cells. CI-920 causes inhibition of biosynthesis of RNA and DNA in intact L1210 cells. Protein synthesis is also inhibited at higher drug concentrations. The inhibition of nucleic acid synthesis is not an antimetabolite effect, since pools of ribonucleoside triphosphates and deoxyribonucleoside triphosphates are not depleted. CI-920 does not cause DNA strand breakage, as measured by alkaline elution, and is not mutagenic in the Ames test at concentrations up to 200 micrograms/ml. CI-920 does not cause direct inhibition of RNA polymerase or DNA polymerase in permeabilized cells. It is possible that CI-920 must be metabolically activated within the target cells; alternatively it may interact with a component of chromatin other than DNA or the polymerases. Flow cytometry studies showed that growth-inhibitory levels of CI-920 caused accumulation of cells in the G2+M region. Higher drug concentrations caused an S-phase block. CI-920 is an inhibitor and irreversible inactivator of reduced folate membrane transport, and appears to enter cells by this receptor. L1210 cells selected for resistance to CI-920 are cross-resistant to methotrexate, and deficient in reduced folate transport.(ABSTRACT TRUNCATED AT 400 WORDS)

Alkenes↗

Mild proteolytic digestion restores exocytotic activity to N-ethylmaleimide-inactivated cell surface complex from sea urchin eggs.

The Ca2+-stimulated release of cortical vesicle (cortical granule) contents from the cell surface complex (CSC) of the sea urchin egg is an in vitro model for exocytosis. To gain insight into the molecular mechanism of exocytosis we investigated the sensitivity of this model to sulfhydryl modification and proteolytic digestion. Our findings include the following: (a) Proteolytic treatment with trypsin or pronase of CSC prepared from the eggs of Strongylocentrotus purpuratus increased the free Ca2+ concentration required to elicit exocytosis. Although a small increase in the Ca2+ threshold was detected after mild proteolysis, high concentrations of trypsin (0.5 mg/ml) and prolonged incubation (3 h) were required to render the CSC unresponsive to high concentrations of Ca2+ (0.5 mM). Despite the severity of the proteolytic digestions required to inactivate the CSC, the individual cortical vesicles remained intact, as gauged by the latency of ovoperoxidase, a cortical vesicle enzyme. (b) As previously shown (Haggerty, J. C., and R. C. Jackson, 1983, J. Biol. Chem. 258:1819-1825), cortical exocytosis can be blocked by sulfhydryl-modifying reagents such as N-ethylmaleimide (NEM). In this report we demonstrate that NEM inhibits by increasing the Ca2+ threshold required for exocytosis. When CSC that had been completely inactivated by NEM modification was briefly digested, on ice, with a low concentration of trypsin (or several other proteases), exocytotic activity was restored. Although the Ca2+ threshold of the reactivated CSC was slightly higher than that of untreated CSC, it was nearly identical to that of control CSC, which was trypsinized but not treated with NEM. We discuss the significance of these results with regard to the molecular mechanism of exocytosis.

Animals↗

In vitro reconstitution of exocytosis from plasma membrane and isolated secretory vesicles.

We describe the reconstitution of exocytotic function through recombination of purified cortical secretory vesicles (CVs) and plasma membrane from sea urchin eggs. CVs were dislodged from a cell surface complex preparation by gentle homogenization in an isotonic dissociation buffer, and purified by differential centrifugation. CV-free plasma membrane fragments were obtained by mechanically dislodging CVs from cortical lawn (CL) preparations with a jet of CL isolation buffer. This procedure produced a "plasma membrane lawn" preparation, consisting of plasma membrane fragments attached via their vitelline layer (an extracellular glycocalyx) to a polylysine-coated microscope slide. When freshly prepared CVs were incubated with plasma membrane lawns, CVs reassociated with the cytoplasmic face of the plasma membrane, forming an exocytotically competent, reconstituted cortical lawn (RL). Exocytosis in RLs was monitored by phase-contrast microscopy, and quantitated with a sensitive microphotometric assay. Half-maximal exocytosis in RLs occurred at 18.5 microM free Ca2+; half-maximal exocytosis in control lawns occurred at 5.7 microM free Ca2+. Greater than 90% of the purified CVs that were not attached to a plasma membrane lawn remained intact when bathed in a buffer containing millimolar Ca2+. This result excluded the possibility that Ca2+-triggered CV lysis was responsible for our observations, and confirmed that the association of CVs with the plasma membrane was required for exocytosis in RLs. Evidence that the Ca2+-stimulated release of CV contents in CLs and RLs is the in vitro equivalent of exocytosis was obtained with an immunofluorescence-based vectorial transport assay, using an antiserum directed against a CV content protein: stimulation of RLs or partially CV-depleted CLs with Ca2+ resulted in fusion of the CV and plasma membranes, and the vectorial transport of CV contents from the cytoplasmic to the extracytoplasmic face of the egg plasma membrane.

Animals↗

Anthrapyrazoles, a new class of intercalating agents with high-level, broad spectrum activity against murine tumors.

A series of 5-[(aminoalkyl)amino]-substituted anthra[1,9-cd] pyrazol-6(2H)ones (anthrapyrazoles) were synthesized. These compounds, which differ from the anthracenediones in that an additional pyrazole ring has been fused to the anthracene system in place of one carbonyl group, were evaluated in vivo for their anticancer activity in eight different mouse tumor systems. Compounds were selected for testing primarily on the basis of their high levels of activity P388 leukemia and occasionally for structural considerations. Sixty-seven % of the 21 analogues studied were curative in the National Cancer Institute P388 screen. Many of the compounds tested were highly active against each of the tumors of the National Cancer Institute panel. Thus 82, 73, 45, and 80% of the compounds tested were curative for L1210 leukemia, B16 melanoma, M5076 sarcoma, and the MX-1 mammary xenograft, respectively. Several of the compounds studied were curative against every tumor of the above panel. Because of the high activity of the anthrapyrazole series as a class in the National Cancer Institute tumor panel, additional testing was necessary to allow selection of clinical candidates. Twenty-one anthrapyrazoles were tested against mammary adenocarcinoma 16C, colon adenocarcinoma 11a, and the Ridgway osteogenic sarcoma. Four compounds, PD 113,309 (Cl-937), PD 113,785 (Cl-941), PD 111,815 (Cl-942), and PD 115,593, were judged superior to the rest on the basis of the expanded panel testing. The preclinical data to date suggest that these anthrapyrazoles are similar to doxorubicin in both degree and spectrum of activity. Each of these anthrapyrazoles were significantly more active than were the other synthetic intercalating agents, the anthracenediones mitoxantrone and ametantrone, against the tumors of the expanded panel. On the basis of their high level of broad spectrum activity in preclinical systems, ease of formulation, possible lack of cross-resistance with doxorubicin, and potential lack of cardiotoxicity, Cl-937, Cl-941, and Cl-942 have been selected for further preclinical evaluation and possible clinical development.

Animals↗

Studies on the biochemical mechanism of the novel antitumor agent, CI-920.

Biochemical studies on a new antitumor antibiotic, CI-920, have been directed toward understanding its mode of action. The most striking effect brought on by CI-920 was a marked inhibition of macromolecular synthesis. L1210 leukemia cells exposed to 10 microM CI-920 exhibited a decreased rate of DNA, RNA, and protein synthesis within 45 min, and maximal inhibition occurred within 60 min. The reduction in nucleic acid synthesis was not due to precursor depletion, since ribonucleoside and deoxyribonucleoside triphosphate levels in cells exposed to 10 microM CI-920 for 2 h either remained unchanged relative to control cells or were elevated, suggesting a block more directly at the level of nucleotide incorporation. Nevertheless, CI-920 (50 microM) had no effect on DNA or RNA polymerase activity as assessed in permeabilized L1210 cells. However, if viable cells were exposed to 20 microM CI-920 for 1 h prior to permeabilization and then the polymerases assayed in the absence of drug, there was a 60% depression in enzyme activity. The inhibition of RNA polymerase appears to result from an effect on the enzyme rather than the template, since inhibition of RNA polymerase activity in cell-free systems from drug-treated cells could not be restored by addition of excess DNA template. DNA polymerase, however, was at least partially restored by addition of template and therefore was inconclusive in this respect. The data, then, suggest that CI-920 inhibits nucleic acid synthesis directly at the level of nucleotide incorporation, either by direct inhibition of DNA or RNA polymerase or by inactivation of an essential component of these enzyme systems. Since the drug in its parent form did not inhibit nucleic acid synthesis in cell-free systems the effects may possibly be mediated through conversion of this agent to another chemical form within viable cells.

Alkenes↗

Biochemical pharmacology of the lipophilic antifolate, trimetrexate.

Trimetrexate is a novel lipophilic folate antagonist that causes growth inhibition, inhibition of nucleic acid biosynthesis, and cytotoxicity at nanomolar concentrations in tissue cultures. The potency of trimetrexate cytotoxicity against most cell lines is greater than that of methotrexate. Trimetrexate has antitumor activity in vivo in several murine leukemia and solid tumor systems, including tumors in which methotrexate is inactive. Antitumor activity was seen following oral, intravenous, or intraperitoneal administration. Trimetrexate causes a pronounced and early depression in incorporation of deoxyuridine into DNA. In tumor cell lines resistant to methotrexate because of a drug transport defect, trimetrexate retains activity. In many such cases the methotrexate-resistant tumors show collateral sensitivity to trimetrexate. In methotrexate-resistant cells with impaired drug transport, trimetrexate sensitivity was even more pronounced when cells were grown in folate-free medium supplemented with physiological levels of tetrahydrofolate cofactor. In the human tumor stem cell colony assay, trimetrexate, at concentrations achievable in vivo, gave activity against many human tumors, including samples that were unresponsive to methotrexate. Trimetrexate crosses the blood-brain barrier, and at very high doses may cause neurotoxicity. At conventional doses the primary toxic effects in mice are gastrointestinal. This toxicity is reversible at therapeutic doses. Unlike earlier lipophilic antifolates, trimetrexate has rapid plasma clearance (t1/2 in mice of 45 minutes). Trimetrexate is a tight-binding competitive inhibitor of dihydrofolate reductase. The Ki,slope for inhibition of the human enzyme was 4 X 10(-11) M. A dose-dependent decrease in cellular purine ribonucleotide pools is given by trimetrexate. Pyrimidine ribonucleotide pools tend to increase in treated cells. Trimetrexate caused a marked depression of cellular pools of dTTP and dGTP, and a lesser depression in dATP. Cytotoxicity of trimetrexate in vitro was prevented by leucovorin. Leucovorin also protected mice from trimetrexate toxicity. Thymidine protected cells from lethal effects of low concentrations of trimetrexate, but not from high concentrations. The combination of thymidine and hypoxanthine completely protected cells from low and high concentrations of trimetrexate. A new, stable and highly water-soluble formulation of trimetrexate has been developed. Because of the interesting biochemical and pharmacological properties of trimetrexate, and its experimental antitumor activity, clinical trials are planned.

Animals↗