Learned associations between effects of abused drugs and the drug administration environment are important in drug addiction. Histochemical and electrophysiological studies suggest that these associations are encoded in sparsely distributed nucleus accumbens neurons that are selectively activated by drugs and drug-associated cues. Although correlations have been observed between nucleus accumbens neuronal activity and responsivity to drugs and drug cues, no technique exists for selectively manipulating these activated neurons and establishing their causal role in behavioral effects of drugs and drug cues. Here we describe a new approach, which we term the 'Daun02 inactivation method', that selectively inactivates a minority of neurons previously activated by cocaine in an environment repeatedly paired with cocaine to demonstrate a causal role for these activated neurons in context-specific cocaine-induced psychomotor sensitization in rats. This method provides a new tool for studying the causal roles of selectively activated neurons in behavioral effects of drugs and drug cues and in other learned behaviors.
Poly-l-glutamic acid (PGA) has previously been demonstrated to be an effective backbone for creating a hydrophilic prodrug of the established anti-tumor agent, paclitaxel, the active agent in Taxol; this approach has obviated the need for the toxic Cremophor excipient, used to enhance the solubility of paclitaxel in the clinical formulation. In order to form hydrophilic prodrugs of the hydrophobic pro-apoptotic sphingolipid, N,N-dimethylsphingosine (DMSP), PGA was condensed with DMSP, previously modified with coumarin to allow spectroscopic detection during conjugate synthesis, to yield PGA–DMSP. Conjugates with different loadings of DMSP were prepared and evaluated for in vitro cytotoxicity against two human breast adenocarcinoma cell lines. Time- and loading-dependent expression of cytotoxicity was observed, such that endpoints essentially equivalent to those observed with free-DMSP were achieved, but in a more protracted manner, consistent with prodrug behavior. PGA–DMSP was initially evaluated for toxicity in female nude mice, and administration of high net levels of DMSP, exceeding those achievable with free-DMSP, was well-tolerated. We propose that PGA–DMSP conjugates merit evaluation for anti-tumor efficacy in pre-clinical tumor models.
C291 Numerous human tumor types, including ovarian, breast and other cancers, have a significant expression of one or more members of the CD44 family of cell-surface proteoglycans, making them potential targets for therapeutic agents. To develop tumor-targeted drugs, we have initially evaluated whether the natural CD44 ligand, hyaluronic acid (HA), could serve as a receptor-specific backbone for paclitaxel (TXL) prodrugs. HA-TXL conjugates were prepared by a modification of previous techniques in a multi-step synthesis. The in vitro cytotoxicity of HA-TXL against the CD44(+) human ovarian carcinoma cell lines, SKOV-3ip. and NMP-1, could be significantly blocked by pre-incubation with a molar excess of free HA, demonstrating the specificity of HA-TXL uptake preceding prodrug activation. Female nude mice bearing intraperitoneal (i.p.) xenografts of NMP-1 cells were treated i.p. at seven days after tumor implantation with either a single sub-MTD dose of HA-TXL, or with multiple-dose regimens of Taxol, to determine the effects of these regimens on host survival and on i.p. tumor burden, the latter being assessed by abdominal MR imaging. NMP-1 xenografts were highly resistant to treatment with Taxol regimens (at up to 10 mg/kg, qd7 x 3), as host survival was only nominally improved compared to controls (T/C ~ 120), whereas the single-dose HA-TXL (180 mg/kg, TXL equivalents) treatment significantly improved survival in this model (T/C ~ 140; p = 0.004). In both the NMP-1 and SKOV3ip. models, MR images of abdomens of HA-TXL-treated mice obtained shortly before controls required humane sacrifice revealed markedly reduced tumor burdens compared to control mice. These studies are among the first to demonstrate that HA-based prodrugs administered loco-regionally have anti-tumor activity in vivo.
Numerous human tumor types, including ovarian cancer, display a significant expression of the CD44 family of cell surface proteoglycans. To develop tumortargeted drugs, we have initially evaluated whether the CD44 ligand hyaluronic acid (HA) could serve as a backbone for paclitaxel (TXL) prodrugs. HA-TXL was prepared by modification of previous techniques. The in vitro cytotoxicity of HA-TXL against the CD44(+) human ovarian carcinoma cell lines SKOV-3ip and NMP-1 could be significantly blocked by preincubation with a molar excess of free HA. Female nude mice bearing intraperitoneal implants of NMP-1 cells were treated intraperitoneally with a single sub-maximum tolerated dose dose of HA-TXL or with multiple-dose regimens of paclitaxel (Taxol; Mead Johnson, Princeton, NJ) to determine the effects of these regimens on host survival and intraperitoneal tumor burden, with the latter being assessed by magnetic resonance imaging. NMP-1 xenograffs were highly resistant to Taxol regimens, as host survival was only nominally improved compared to controls (T/C ∼ 120), whereas singledose HA-TXL treatment significantly improved survival in this model (T/C ∼ 140; P = .004). In both NMP-1 and SKOV-3ip models, MR images of abdomens of HA-TXL-treated mice obtained shortly before controls required humane sacrifice revealed markedly reduced tumor burdens compared to control mice. This study is among the first to demonstrate that HA-based prodrugs administered locoregionally have antitumor activity in vivo.
Coumarin derivatives of N,N-dimethylsphingosine (DMSP) were prepared and chemically characterized. They were apparently biologically equivalent to DMSP in terms of tumor cell cytotoxicity and were used to establish the rapid mitochondrial localization of this sphingolipid in tumor cells, followed closely by its marked reduction of mitochondrial membrane potential.
MATERIALSAND METHODS 3-Deazauridine (3-DAU) pharmacology was studied in 20 patients who received the drug by rapid or continuous infusion. In 8 studies, the plasma clearance of 3-DAU after rapid administration was biphasic, with an average terminal ti,2 of 4.4 hr and an extrapolated volume of distribution of 0.57 liter/kg. After 5-day continuous infusion of 3-DAU, the plasma clearance was also biphasic, with an average ter minal t112of 21.3 hr and an extrapolated volume of distribu tion of 18.8 liter/kg. 2,4-Dihydroxypyridine, the aglycone of 3-DAU, was observed in plasma but not in urine of patients receiving the drug by rapid infusion. The urinary excretion of 3-DAU was low, only 7.8% 24 hr after rapid infusion and 7.2% up to 4 days after continuous infusion. Tissue distri bution of 3-DAU was determined from autopsy samples of 2 patients. Not only were high levels of 3-DAU detected in the tissues studied, but 3-DAU triphosphate, the active metab olite of 3-DAU, was present in brain, lung, and liver.
The cytotoxic and DNA-damaging effects of a novel alkylating anthracycline, yV-(5,5-diacetoxypentyl)doxorubicin, were quantified in HL-60 human leukemia cells and in an intercalator-resistant daughter line, III60/AMSA. The new drug was cytotoxic to both lines at doses as low as 50 nM for 1 h. /V-(5,5-Diacetoxypentyl)doxorubicin produced DNA interstrand cross-linking in both lines. The cross-linking appeared to increase in both lines following drug treatment, but the increase was greater in the resistant line. This appeared to be due to an underestimation of crosslinking, particularly in sensitive HL-60, secondary to time-dependent DNA fragmentation that followed drug removal. This time-dependent DNA fragmentation was probably endonucleolytic cleavage (a feature of apoptosis) as characteristic nucleosomal ladders were produced by V(5,5-diacetoxypentyl)doxorubicin treatment in a cotemporal time-depend ent fashion. This novel anthracycline is the tirsi of a family of alkylating anthracyclines designed to be water soluble, easy to formulate, and capable of producing DNA interstrand cross-linking. Because this last characteristic has previously been associated with doxorubicin analogues of great potency and low toxicity, these newer, more readily formulated drugs may have great clinical utility.
We previously reported the synthesis of bis(pivaloyloxymethyl) 2′,3′-dideoxyuridine 5′-monophosphate (POM2-ddUMP) (1a) as a membrane-transport prodrug formulation of the free parent nucleotide, ddUMP. Although successful at delivering ddUMP into cells in culture, POM2-ddUMP was rapidly degraded by plasma carboxylate esterases after intravenous administration to experimental animals, and therefore has limited therapeutic potential as a systemically administered prodrug. We now report the synthesis of bis(N,N′-dimethylcarbamoyloxymethyl)- and bis(N-piperidinocarbamoyloxymethyl) 2′,3′-dideoxyuridine 5′-m onophosphate [DM2-ddUMP (1b) and DP2-ddUMP (1c), respectively], analogues of POM2-ddUMP that were designed to be more resistant to degradation by plasma esterases..
PURPOSE:Suicide gene therapy offers the potential to increase the selective toxicity of antitumor agents by intratumoral expression of exogenous enzymes that convert nontoxic prodrugs to toxic products. The use of herpes simplex virus thymidine kinase with ganciclovir, and E. coli cytosine deaminase with 5-fluorocytosine are well-known examples of this approach. The purpose of this study was to investigate a novel suicide gene therapy using E. coli beta-galactosidase (beta-gal) as the prodrug-activating enzyme. Advantages of this approach include: (1) the ability to use prodrugs that are cleaved by beta-gal to agents that are known to possess activity against human solid tumors, and (2) the extensive experience gained with targeting beta-gal to specific tumors in experimental animals and in humans.METHODS:Two different structural types of anthracycline prodrugs, N-[4"-(beta- D-galactopyranosyl)-3"-nitrobenzyloxycarbonyl]daunomycin (Daun02) and N-[(4" R,S)-4"-ethoxy-4"-(1"'- O-beta- D-galactopyranosyl)butyl]daunorubicin (gal-DNC4) were investigated. The prodrugs were evaluated as substrates for beta-gal. Cytotoxicity studies of Daun02 were conducted against a murine tumor (Panc02), two human breast tumors (MCF-7 and T47D), and three human prostate tumors (PC3, DU145 and LNCAP) that had been transduced to express beta-gal. Antitumor studies of Daun02 were conducted against mouse tumor Panc02 xenografts implanted subcutaneously.RESULTS:Daun02 was a good substrate for beta-gal. By comparison, gal-DCN4 was a poor substrate. Except for PC3, the beta-gal-transduced tumors showed 3- to 60-fold increased sensitivity to Daun02 compared with mock-transduced control cells. Daunomycin was formed from Daun02 in tissue culture medium containing beta-gal-transduced cell lines but was not observed in the medium from mock-transduced controls. In vivo therapeutic studies of Daun02 against the Panc02 tumor in athymic mice showed no significant inhibition of tumor growth. Pharmacokinetic studies showed limited distribution of the prodrug beyond the vascular space.CONCLUSIONS:E. coli beta-gal may be useful as a prodrug-activating enzyme in suicide gene therapy and has the potential to increase the selective toxicity of conventional antitumor agents. Although this approach worked well against tumor cells in vitro, it was not effective against a xenograft model in vivo, apparently because of poor drug-tissue distribution.
1,2:4,5-Di-O-isopropylidene myo-inositol acetals were selectively deprotected at the 4,5-trans position using Amberlite-120 (H+) resin in CHCl3/MeOH at room temperature over 24–48 h to afford the corresponding cis-1,2-O-isopropylidene myo-inositol acetals in near quantitative yield.
AbstractChemInform is a weekly Abstracting Service, delivering concise information at a glance that was extracted from about 100 leading journals. To access a ChemInform Abstract of an article which was published elsewhere, please select a “Full Text” option. The original article is trackable via the “References” option.
AbstractChemInform is a weekly Abstracting Service, delivering concise information at a glance that was extracted from about 100 leading journals. To access a ChemInform Abstract of an article which was published elsewhere, please select a “Full Text” option. The original article is trackable via the “References” option.
2',3'-Dideoxyuridine (ddU) is ineffective at controlling human immunodeficiency virus type 1 (HIV-1) infection in human T cells, because it is not biotransformed to the active 5'-triphosphate. The metabolic block resides in the poor substrate affinity of ddU for cellular nucleoside kinases. This problem cannot be overcome by supplying the preformed nucleotides, because such compounds are unable to penetrate cells. To circumvent the requirement of ddU for enzymic phosphorylation, we have prepared bis(pivaloyloxymethyl) 2',3'-dideoxyuridine 5'-monophosphate (piv2 ddUMP), as a potential membrane-permeable prodrug of ddUMP, and investigated its metabolism and anti-HIV activity in two human T cell lines, one with wild-type thymidine kinase activity (MT-4) and the other deficient in thymidine kinase activity (CEM-tk-). The 5'-mono-, di-, and triphosphates of ddU were formed in both cell lines after exposure to piv2-ddUMP. In contrast, phosphorylated metabolites were not observed in cells treated with ddU or ddUMP alone. piv2-ddUMP also reduced the cytopathic effects of HIV-1 in MT-4 cells (ED50, 4.75 microM) and inhibited virus production in culture fluid (ED50, 20 microM). In addition, piv2-ddUMP protected CEM-tk- cells from HIV-1 infection, as demonstrated by inhibition of intracellular p24 antigen levels (ED50, 3 microM) and reverse transcriptase activity in culture medium (Ed50, 2.5 microM). Based on these findings, we propose that the "masked nucleotide" strategy may make available for development nucleoside analogues hitherto considered inactive because of failure to undergo biotransformation to the corresponding 5'-monophosphates. Moreover, by circumventing metabolic dependency on nucleoside kinases, the strategy may overcome acquired resistance to nucleoside analogues caused by the loss or depletion of nucleoside kinases.
The substrate kinetics of 2'-deoxy-6-thioguanosine 5'-triphosphate for DNA polymerase I (Klenow fragment) of Escherichia coli were investigated. The analog nucleotide was readily incorporated in place of dGTP and it was misincorporated in place of dATP at low but detectable frequency.